Apparatus for picking up a liquid sample and dispensing measured amounts thereof
8 claims: 2 independent, 6 dependent
- 1Apparatus for picking up a liquid sample from a sample container and dispensing measured amounts of the test sample into separate testing containers for conducting separate tests in a chemical testing apparatus in which a plurality of different chemical tests are performed on a liquid test sample, comprising, a pick up and dispensing conduit, a water filled line connected to the conduit, means connected to the water filled line for hydraulically moving fluid in the water filled line, actuating means connected to the fluid moving means for aspiration of a sample from the sample container into the conduit and line and dispensing measured portions of the aspirated sample into separate testing containers, and means connected to the line for flushing water through the line and conduit for cleaning and refilling the line and conduit with water after dispensing the separate samples.
- 2Apparatus according to Claim 1 including control means connected to the actuating means for expelling a portion of the sample back into said sample container prior to dispensing samples into the testing containers thereby insuring constant delivery of the sample to the containers.
- 4Apparatus according to Claim 5 including control means connected to the actuating means for providing a first air interface, a first sample interface, a second air interface, and a second sample interface in said line.
- 5Apparatus according to Claim X, 2, 5 or 4, .wherein said means connected to the water filled line comprises an aspiration and piston assembly.
- 6Apparatus according to Claim 5, wherein said actuating means are rigidly connected to said aspiration and piston assembly.
- 8Apparatus according to Claim 1, substantially as described with reference to Figures 7 -16.
Independent claims7
313 paragraphs in 2 sections, as filed
The present invention relates to improvemer^.' in an automated chemical testing apparatus which provides automation of routine chemistry procedures to provide more uniform procedures, greater efficiency, accuracy and at a lower unit cost than can be performed manually as well as providing discretionary selectivity of the tests to be performed on each sample, as described in the specification of Israel Patent Application lio. 32516. The present apparatus can generally automate most laboratory tests that can be performed in a single reaction tube by automatically and selectively picking up the test samples and dispensing the proper amounts in the programmed reaction tube, applying the necessary reagents at the appropriate position, heating the desired tubes to the proper temperatures, optically analyzing the results of the chemical tests, and washing and drying the tubes in preparation for the next tests.
The object of the present invention is to provide an improved means for dispensing test samples into the tubes which includes a rotary sample table supporting the test samples, a pick-up and dispensing conduit connected to a water filled line with a cylinder and piston assembly connected to the line for aspiration of a sample from the sample table and for dispensing portions of the sample into programmed tubes with a threaded screw actuating the assembly for accurately controlling the amount of sample picked up or dispensed, and including an air interface piston and cylinder connected to the line for creating air interfaces in the line for reducing any dilution effects or contamination effects on the dispensed samples, and further including cleaning means for flushing cleaning media through the conduit and line for reducing the possibility of contamination between test samples.
In order that the invention may be better understood and more readily carried into effect, an embodiment of it will now be described with reference to the accompanying drawings, in which;
־ Fig. 1 is a perspective overall view of a chemical testing apparatus;
Fig. 2 is a front skeleton elevational view of the apparatus of Fig. 1;
Fig. 3 is a rear skeleton elevational view of the apparatus of Fig. 1;
Fig. 4 is an elevational view of one example of a plurality of reaction tubes showing the positions sample <sub>z </sub>entry station, the reagent stations, the heating stations, the readout stations, and indicating possible types of tests that can be performed;
Fig. 5 is a diagrammatic elevational view of the conveyor of the present apparatus carrying the reaction tubes, and also indicating possible tube wash and dry stations;
Fig. 6 is an electrical schematic showing the power supply to the various components of the apparatus;
Fig, 6A is a view of the circuit breaker board;
Fig. 7 is a fragmentary elevational view, partly in section, illustrating the sample pick-up and dispensing components of the present invention;
Fig. 8 is a view taken along the line 8-8 of Fig. 7;
Fig. 9 is a view taken along the line 9-9 Of
Fig. 7i
Fig. 10 is a view taken along the line 10-10 of
Fig. 9J
Fig. 11 is a view taken along the line 11^^ of Fig. 9;
Fig; 12 is a diagrammatic perspective view of the operation of the carriage and car pick-up arm shown in a dispensing position;
Fig. 13 is a view similar to Fig. 12 showing the carriage car and arm in a sample pick-up position;
Fig. 14 is a schematic and perspective view, partly in cross section, illustrating the hydraulic sample pick-up and dispensing assembly of the present invention;
Fig. 15 is a view taken along the line 15-15 of Fig. 14;
Fig. 16 is a schematic view of the operation and control of the pick-up and dispensing assembly of the present apparatus;
Fig. 17 is a fragmentary elevational view of the endless conveyor assembly supporting and carrying the reaction tubes;
Fig. 18 is a view taken along the line 18-18 of Fig. 17;
Fig. 19 is a view taken along the line 19-19 of Fig. 17;
Fig. 20 is a view taken along line 20-20 of
Fig. 19;
Fig. 21 is a perspective view of the actuating linkages actuating the endless conveyor, the heating baths and the tube drying means of the present apparatus;
Fig. 22 is an elevational view, partly in cross section, of the actuating linkages for indexing the conveyor, raising and lowering the heater baths, and extending and
- ίretracting the tube drying means, and showing the linkages in their first and second positions;
Fig. 25 is a view similar to Fig. 22 showing the actuating linkages in their fourth and fifth positions;
Fig. 24 is an enlarged fragmentary elevational view, partly in cross section, illustrating the operation of an indexing pawl engaging the sprocket wheel of the conveyor and shown in its first and second positions;
Fig. 25 is a view similar to Fig. 24 illustrating the position of the indexing pawl and its third, fifth and sixth positions;
Fig. 26 is an enlarged fragmentary perspective view, partly in cross section, of the indexing pawl of the Figs. 24 and 25;
Fig. 27 is an enlarged elevational view of a portion of the conveyor illustrating details of construction;
Fig. 28 is an enlarged fragmentary perspective view illustrating a method of securing the reaction tubes to the slats of the conveyor;
Fig. 29 is a fragmentary cross-sectional view of the conveyor of the present apparatus illustrating the position of the heating baths relative to the reaction tubes;
Fig. 50 is a view taken along the line 50-30 of Fig. 29;
Fig. 51 is a diagrammatic view of the water connections to the water heating baths;
Fig. 32 is an enlarged elevational view, taken in cross section, of a portion of the conveyor 111natrating the tube and slat wash assemblies;
Fig. 33 is a perspective view of the electrical tube heating assembly of the apparatus;
Fig. 34 is a schematic view of the control system of the end wash assembly;
Fig. 35 is an enlarged fragmentary elevattonal view, partly in cross section, illustrating schematically the connections of the reagent dispensing assembly;
Fig. 36 is an enlarged elevational view, in cross section, illustrating the lower portion of one of the reagent metering assemblies;
Fig. 37 is an enlarged elevational view in cross section of the upper portion of the reagent metering dispensing assembly of Fig. 36;
Fig. 33 is an enlarged fragmentary perspective of the connection of the supports for the outlet line of the reagent dispensing assembly at a position above the reagent tabes;
Fig. 39 is an enlarged fragmentary elevational view, in cross section, showing the position of the outlet line of a reagent dispensing assembly relative to a reaction tube;
Fig. 40 is an enlarged elevational view of the readout assembly;
Fig. 41 is a view taken along the line 41-41 of Fig. 40;
Figi 42 is a view taken along the line 42-42 of Fig. 40;
Fig. 43 is a view taken along the line 43-43 of Fig. 41 shown in position for aspirating the contents of the tubes into the cuvettes;
Fig44 ״ is an enlarged fragmentary elevation view, in cress section, of-the fill and expel cylinder and piston assembly, reaction tubes up into the readout cuvettes;
Fig. 45 is a view similar to Fig. 43 illustrating the movement of the cylinder relative to the piston for draining the cuvettes;
Fig. 46 is a view similar to Fig. 44 showing the relationship of the cylinder and drain port relative to the piston for draining the cuvettes;
Fig. 47 is a view taken along the line 47-47 of Fig. 40;
Fig. 48 Is a view taken along the line 48-48 of Fig. 47i '
Fig. 49 is a view taken along the line 49-49 of Fig. 47;
Fig. 50 is a view taken along the line 50-50 of Fig. 47s
Fig. 51 is a view taken along the line 51-51 of Fig. 47;
Fig. 52 is an exploded perspective view of the covers above the exciter lamp in the photocell readout block assembly;
Fig. 53 is an electrical and mechanical schematic of the readout system;
Fig. 54 is a mechanical and electrical schematic of the mechanical operation of the testing assembly;
Fig. 55 is a mechanical and electrical schemata r> of the optical readout system of the present apparatus;
» Ql. «»
Fig. 56 is an enlarged fragmentary elevati05£l view, partly in cross section, illustrating the two-way clutch assembly used in the present apparatus;
Fig. 57 is a view taken along the line 57-57 of
Fig. 56;
Fig. 58 is a view taken along the line 50*58 of Fig. 56»
Fig. 59 is a view taken along the line 59-59 of Fig. 58»
Fig. 60 is a fragmentary view of the program control board of the present apparatus;
Fig. 61 is an enlarged fragmentary view of the program control board illustrating the actuating switches and indicating lights;
Fig. 62 is a cross-sectional view taken along the line 62-62 of Fig. 61;
Fig. 63 is an electrical block diagram of the control system;
Fig. 64 is an enlarged fragmentary elevations! view, partly in cross section, showing the mechanical structure of the computer of the present apparatus;
Fig. 65 is a cross-sectional view of the sweep and fixed boards of the computer showing the mode of indexing of one relative to the ether;
Fig. 66 is an enlarged cross-sectional view taken along the line 66-66 of Fig. 65; and
Fig. 67 is an electrical schematic of the synchronization circuit of the present apparatus.
*kt Ml*
Referring now to the drawings and particularly to Figs. 1 through 5, the automatic chemical testing apparatus or discretionary sequential multiple analysis apparatus is generally indicated by the reference numeral 20 and generally includes (1) a loop conveyor or endless belt 22 which carries a plurality of rows of open topped containers or reaction tubes 24 in which the various separate, longitudinal rows 26 indicate different chemical tests which may be performed while each separate transverse row 28 is provided to receive a single individual sample on whichthe various tests may be performed as the conveyor 22 is sequentially indexed carrying the reaction tubes 24 along various stations at which various steps in the chemical testing is performed, (2) a sample dispensing assembly 30 which may include a rotary indexing table 32 for holding the samples to be tested and a pick-up and dispensing apparatus 34 for picking up the required amount of sample from the indexing table 32 and dispensing each sample in a single transverse row 28 of tubes 24 in the required amounts and for the tests programmed, (3) a reagent dispensing assembly 36 (Fig, 35) which may include a plurality of containers of reagents 38 connected to metering dispensing units 40 which in turn are connected to outlets positioned above the reaction tubes 24 at the desired position or station on the conveyor 22 for dispensing reagents in the proper sequence at the proper station in the tests being performed, (4) suitable heating means 42 which are positioned for heating the reaction tubes 24 at the desired stations as the tubes 24 are indexed along the conveyor 22 as required by the chemical tests being performed,
5) ; .ין) a readout or testing assembly 44 for analyzing the results i <sup>,</sup>!of the chemical tests being performed, (6) cleaning means for ׳ I . I '׳> ' cleaning the tubes 24 after the tests in a particular transverse row 28 has been concluded, (7) tube drying means for I '‘ j , , drying the tubes in preparation for re-use and recycling, and
l. ' .
8) , ץ) suitable control means for selectively controlling the '’ ׳ sequential multiple analysis and synchronization of the above ί mentioned components.
' ‘ &,<sub>י</sub> ; By way of example, the apparatus 20 will be described . <sup>1</sup> , י ' j in use in running a multiple number of tests in blood serum * j although, of course, the present apparatus can be used for a 1 .' variety of discretionary sequential multiple analysis chemistry ' , י that can be performed in a single reaction tube. For example <sup>1</sup> only, and referring to Figures 4 and 5 a plurality of ten longitudinal rows 26 of sixty tubes 24 each are supported and sequentially indexed by the conveyor 22, As will be more fully described hereinafter, a test sample will be dispensed into one or more of the ten tubes in a single transverse row 28 and as 1 ׳ the transverse row 28 is indexed, will become positioned at the
I various reaction positions or stations where the desired chem: iatry for the different tests performed in the individual ! longitudinal rows 26 will be performed such as heating, mixing, , I and adding of reagents to perform the desired chemical analysis, such as by example only, as listed in conjunction with the Indi<sup>1</sup> ׳ vidual longitudinal rows 26 in Figure 4, after which the horiI , ! zontal rows will reach the readout station which will analyze ; and record the measured values. After the end of the readout, <sup>1</sup> as best seen in Figure 5, the tubes 24 are inverted, draining <sup>1</sup><sub>(</sub> י־ ί the contents and pass through one or more wash stations and at ! least one drying station where they are again returned to the sample entry position or station for recycling, <sub>u</sub> Referring now to Figures 7 through 16, the sample
I : i ' / ' '<' , »<sup>1</sup>* 1 י , . ״.1 ״ ,!'.r <sup>;</sup> . -u-
l. <sup>1</sup>' . ' <sup>1</sup>?.!
1' ׳ .dispensing assembly 30 includes a pick-up and dispensing appa• ׳ i j ; jratua'34 which performs the function of moving towards the i , ; rotary indexing table 3? and picking up a sample to bo tested ; ' and moves over one of the transverse rows 28 of reaction tubes
1׳ <sup>1,1</sup>׳ ׳ , <sup>1</sup> ,'24 and injects a measured amount of sample into each of the i’ 1' ! tubes 24 therein for which a test has been programmed. The
J 1 ί ׳' ׳Llj >.,, ' :j rotary indexing table 32 is best seen in Figures 7, 8, 9 and . < 16, and includes־ a plurality of sample containers 46 which may ’׳. . ;be inserted into a plurality of openings 48 which are circularי ' , \ Xy and'evenly spaced on the Indexing table 32. A water cooling ί
׳ :'׳ Jacket 50 may be positioned beneath the indexing table 32, as . best seen in Figures 7, 8 and 9, having an inlet 54 and an י . ־ .I outlet 56 to provide a temperature controlled environment for | the test samples in the containers 46 in order that they are 5׳ not adversely affected by temperature and particularly the
J heat generated by the components of the apparatus 20. A rotary ' , table indexing motor 52 drives the table 32 through a gear box ' 58 at periodic Intervals to incrementally index the sample containers 46 individually to a pick-up position in response to a control system which will be more fully described hereinafter.
The pick-up and dispensing apparatus 34 includes a ן pick-up and dispensing conduit such as needle 62 which Is ΐ carried by a carriage car 64 which in turn is movable on and ' . is supported by a carriage arm 66 which in turn is supported ' י I for a swinging movement about one end, as best seen in Figures » 71 8, 9, 10, 13 and 16, whereby the pick-up and dispensing
I conduit or needle 62 may be moved over the sample container 46 ' ί on the indexing table 32 in the pick-up position, as best seen : in the dotted outline in Figure 7, to pick up a sample to be , ן tested after which the carriage arm 66 18 returned to the full . ' line position shown in Figure 7, over a transverse row 28 0('
Η
ו’'' י '1 ’’ I j <sup>1</sup> י' ;tubes 24 for Injecting portions of the sample into the Indi) <sup>1</sup> u <sup>1</sup> ;'vldual tubes 24 for which the programmed tests are to be per׳ j' formed.<sup>1</sup>
As best seen in Figures T, 9> 12, 13 and 16, an air ','<sup>,</sup>.'י piston and cylinder 68 is connected to an arm ?0, which in t turn is connected to the carriage arm 66 for rotating the arm 66 and thus the carriage car 64 outwardly over the rotary ’<sup>,</sup>.j Indexing table 32 and, after a sample has been picked up, ί again retracting the carriage arm 66 into a position over a transverse row 28 of reaction tubes 24, The air supply for <sup>1</sup> actuation and retraction of the piston and cylinder assembly <sup>1</sup>d <sup>1</sup> < 68 and thus the carriage arm 66 18 supplied through an air '! valve 71 (Figure 16).
| The longitudinal movement of the carriage car 64 along the carriage arm 66 is best seen from Figures 12, 13 and ; 16 in which a carriage motor 72 drives a pulley 74 through a ’ reversing clutch 6ך which in turn extends, retracts and controls the position of the car 64 along the arm 66 through a control cable 78 which passes around idler pulleys 80, 82, 84, i
I 86 and 88 and is secured to block 9θ on the car 64 whereby the
I position of the car 64 along the arm 66 may be controlled by <sup>1</sup> connecting, disconnecting and reversing the clutch ?6.
! An overall view of the pick-up and dispensing appa1 j ratus 34 is best seen in Figure 14 which includes a waste and wash cup 81, 85 (Figures 9, 11, 7, 14 and 16) in which the cup 81 has an outlet 83 for disposal of excess sample fluid and a wash cup 85 is provided with a cleaning media or water wash, inlet 87 for admission of a cleaning media such as water which
I overflows the wash cup 85 into the waste cup 81 and out the
I outlet 83. As best seen in Figures 7 and 9 the waste and wash I cup 81, 85 ia positioned In line with a transverse row 28 of 1 tubes at the inner end of the arm 66. Since a single sample!
* , 1 ׳ i ’ 13 - י : .
, ι ϊ , j which is to be picked up from the indexing table 32 la to be dispensed into the tubes 24 in a single transverse row in <sup>1</sup> ץ accordance with the tests programmed, after which any excess : ' ,1 ן sample is: expelled and a new sample is to be picked up i ' Ϊ from the table 32 and dispersed into a different transverse i׳
1; ' row 28 of tubes, it is Important that there be no undesired
1' '. ׳ י ., . contamination or mixing from one sample to another sample, <sup>3</sup>nd ‘ . I 5
I / additionally it is desirable that the dispensing of a single sample into the various tubes In a transverse row be under the , . , same conditions to avoid variations in the samples dispensed J I in the various tubes, such as by example might be caused by ׳ j dilution. Thus It is preferred, as best seen in Figure 10, . to provide a line 89 connected to the pick-up and dispensing <sub>(</sub> ׳ j conduit or needle 62 which forms a portion of the pick-up and
1, <sub>י</sub>י dispensing apparatus 34 and Is generally a closed water system such as water 91 followed by an air interface 92, a second
Ί interface 94 comprising a portion of the sample to be tested, a ו second air interface 96 followed by an extra sample aliquot and ן :׳ then the main sample 98 to be dispensed. By way of example i only, assuming that each of the tests to be performed requires !'a sample amount of 0.1 co, the sample 94 may be 0,1 co and the ;main sample 98 may have a volume equal to the number of tests . . to be programmed times 0.1 cc plus an additional 0.2 cc amount.
<sup>1</sup>;Thus, while the air interfaces 92 and 96 serve the function of ! 'preventing mixing between the water 91 and the main sample 98, i , ^the additional sample 94 and the extra sample aliquot picked
i.'up from the indexing table 32 prior to dispensing the samples f .llnto the tubes 24 will wash the interior of the line 89 with ׳ !׳ u <sup>1</sup> ׳ י׳ ;׳;‘jthe same type of material to be dispensed thereby reducing any
Lit] tendency of the previously washed tube 89 to have for example a dilution effect on the main sample 98.
' i
<img file="IL42893A_D0001.tif" />
to be tested and dispensed in the tubes 24, the pick-up and dispensing apparatus 34, as best seen in Figure 14, includes a sample pick-up and dispensing cylinder and piston 100, a water wash piston and cylinder assembly 102, a needle raising and lowering air piston and cylinder assembly 104, and an air piston and cylinder assembly 106 for creating air interfaces in the line 89.
Aa shown in Figure 14 the needle 62 is in the down position having been actuated to the down position by piston and cylinder assembly 104. When the needle 62 is lowered, the water wash piston and cylinder 102 is actuated back and forth by wash motor 108 through a rotating arm 110 to suck water into the needle 62 and line 89 and expel it therefrom thereby cleaning the line 89 and needle 62 as fresh water flows through the water inlet 87 into the wash cup 85 and out the drain outlet 83♦ After the needle 62 and line 89 are washed, the wash motor 108 is stopped, the piston and cylinder assembly 104 is actuated to raise the needle 62 and the pick-up and dispensing apparatus 34 is then ready to׳move into sample pick-up posltion over the indexing table 32. When the pick-up position is reached (Figures 7 and 13) the piston and cylinder assembly 104 is actuated to cause the needle to move downwardly, carrying and moving the piston 107 in cylinder 106 therewith causing an air interface 92 (Figure 10) to be sucked in the line 89 and into the sample container 46 which has been indexed at the pick-up position by the table 32. Assembly 100 aspirates a sample 94 into line 89 by the rotation of worm gear 116 by the motor 112 which moves the cylinder 118 relative to piston 117. Piston and cylinder 104 is again actuated to raise needle 62' and to lower the needle back.into the container thus aspirating another air interface 96 into the line 89. The aspiration and dispensing motor 112 operating through reversing ; <sup>!</sup> clutch 114 rotates worm gear 116 and. thus the cylinder 118 of
I) I' the aspiration and dispensing piston and cylinder assembly 100
P I to aspirate the programmed amount of test sample 98 Into the ,, needle 62 and the line 89. When the programmed amount of ' sample Is picked up from a sample container 46, the motor 112
'. stops, the piston assembly 104 is actuated to raise the needle
I '<sup>1</sup> ί
I . <sup>11</sup>‘ ,62 | , ן, the motor 112 is reversed thereby reversing worm gear 116 'Ij
I I to retract the cylinder 118 to dispense a segment of the sample ' , I ! 98 back Into sample cup 46 to insure that the status for dis• , . , j pensing of the sample into the tubes 24 will all be similar.
i The carriage arm 66 is moved back over the transverse row 28 ; of reaction tubes 24 and the control system actuates the carrlage car 64 to place the needle 62 over the first reaction •1 tube 24 which has been programmed, for testing. The reversing ; clutch 114 is actuated and a measured amount of sample is dis1' . 1 j pensed into a reaction tube 24. The reversing clutch 114 is deactuated, the carriage 64 is then moved along to the next , tube 24 in the transverse row which has been programmed for a i test, the reversing clutch 114 is again actuated and a measured amount of sample is dispensed in that reaction tube 24, The
I process of dispensing a measured amount of sample fluid into each of the reaction tubes 24 in a transverse row is continued ί until all of the programmed tests have received a sample.
After the last programmed test receives a sample, the carriage j 64 moves to the waste cup 81 and the extra sample aliquot la I dispensed into the waste cup 81, the needle 62 is lowered and I the wash cycle is again performed.
Referring now to Figure 16 the sequence of operation
I and control of the pick-up and dispensing apparatus 34 is beat
ץ <sup>1</sup> j seen. Information is received in a sample selection control 115 ן from the control system, which will be more fully discussed j hereinafter, as to which testa will be performed and therefore ί I ’ ' J f-W >.'<sup>1</sup> ' ״ into which longitudinal rows 26 of tubes 24 the tested will'be dispensed.
air the the carriage motor clutch 76 position on the table 32 sample to be Upon signals from the sample eelecWon control u<sub>5</sub>, air valve 71 1־ actuated ,
M־to״ and cylinder <sub>68 M</sub> ,<sub>wlBg </sub>sample table 32 and at the same time carriage ccntrol 119 and aspiration timer 121 rlage motor 72 is actuated through Its clutch 76 and to move the carriage car 64 towards the sample table reverses and ־tops over the pick-up and air valve 120 1־ actuated and In ״״> actuates the piston and cylinder assembly 104 to lower the ־־״die into the ־ample container 46 on the table <sub>M</sub>. <sub>t</sub>he air interface 9־, <sub>sa</sub>.p<sub>ls 9</sub>,. <sub>a</sub>״<sub>a א</sub> fined, the aspiration and dispensing motor 11״ ־ actuated ״־d ploks up the programmed amount of sample, the dispenser motor ua 1־ then reversed, air valve !20 1־ d־״־.־rgl«d ־U־»l״g oyllnder assembly !04 to raise the needle 62. One ״־^־t cf the sample 1־ dispensed back 1״<sub>t0 t</sub>he sample ־<sub>U</sub>p and the arm 66 1־ moved back ever the reaction tubes 24. the
- . J when the tube 24. Dispenser a measured sample is dispensed in clutch 76 is actuated and programmed test tube where dispensing process continues have received a sample. The wash cup 81. <sub>At thls </sub>needle 62 and line 89 preparation for the to in turn actuate _! arm 66 towards a signal la eent to and the carpulley 74 32. The aspiration timer 121 starts a dispensing timer 123 carriage 64 stops over a programmed reaction clutch 114 is actuated and the proper tube 24. The carriage the carriage 64 moves to the next another sample is dispensed. The until all of the programmed tests carriage 64 then moves to the waste and time the wash control 108 starts and the are washed and filled <sub>with fresh Watep ln </sub>next cycle.
«־rerrlng no» to <sub>Flgur־</sub> ״ <sub>3־οη</sub>״<sub>־ω</sub>.
־,״־״per״־״־ <sub>arel</sub> function <sub>of</sub> , <sub>pr</sub>־par־d
<td></td><td> . . ׳ . <sup>:</sup> 1 . . . י יי י'׳' !י׳ י . ־ .. .׳: .i ו י <sup>1</sup> י י' <sup>!</sup>| י י י<sup>1</sup></td>
<td></td><td> ' י ' <sup>1 1</sup> יו ' ' יי 1 י ' II ' i 1!« 'י'<sup>,</sup>) י י י ;. <sub>v</sub>. 1</td>
<td> I</td><td> -</td>
<td> i'</td><td> 1 ן conveyor or endless belt 22 is best seen. Preferably, the</td>
׳! ,, ' oonveyor'22 .comprises a .pluraHty I'ofigixidiVidiial rigid hints ! I
,.' j 1 122, each of which hold a transverse row 28 of reaction tubes '1 , ; 24 . . ׳, the slats 122, being secured at each end to a chain 124 by . ן י screws 126 (Figure 27), and the chains are in turn carried by ; <sup>1</sup> I .;־ I', ׳sprocket wheels 128, 130, 132 and 134 which are carried on י .’׳.י ' ; ' axles 136 and 138 respectively. The rigid slats 122 are advanI
I , tageous in that while allowing the conveyor to rotate around • j
׳. . jthe wheels, they securely hold the tubes in fixed positions.
. | Referring now to Figure 28, the method of Inserting
..','׳ I '<sup>!</sup> ' !and accurately aligning the tubes 24 in the individual slats
122 before the slats 122 are connected to the chains 124 is <sup>II</sup> . best seen. The slats 122 have a plurality of openings 140 ' sized to receive the tubes 24 and are placed on a holder 142 i ׳ j having a base 144 and the tubes 24 are inserted in the holes ‘ >140. Holes 146 are drilled in the slats 122 extending to the ' יי openings 140. A holding pin 148 is threaded into the holes 146
I . ׳ I
1 against a resilient protector 150 which protects the tubes 24 ן
I ן from being broken as the pin 148 is secured. Thus, the tubes ! ‘ 24 are all held in the identical vertical positions relative to the slats 122 and are securely fastened to prevent them from i
later slipping relative to the slats 122 and becoming mis’ * jaligned.
, : ί j The conveyor 22 is periodically indexed a predeter' mined distance, such as one transverse tube row, to move the ן ' rT*br-tt^rT<sup>t</sup>rr'11׳ on ־~~1— ׳׳ ץ* • ! ΙυΙ׳ι:η '.<sup>1,</sup>״I ij.uiii out: p.0.1 1(10 ;01.1׳״ station to blie next 00 limb th<:
i 1 appropriate chemical steps may be performed upon the programmed ' samples at the proper station, time and sequence. Therefore, U1Z * * ״״*<sup>f 1</sup> suitable means are provided for periodically Indexing the con“ ׳ ί <sub>(</sub> veyor 22 a predetermined distance. However, since some of the
I other functions to be performed on the tubes 24 require a clone
CO'ic:) ו־ייו with tiic 1.0|ר,יי׳ו , l,ho,';c I'line t i יי!חיז :'חיו r'rri irl »»» η״ιιι.Ι1 יו׳ יו ί .
j; zatlon with the movement of the conveyor 22. For instance,
J during the chemical testing process being performed in the ♦ ’
Γ. tubes 24 heat may be required, and the preferred embodiment i provides heating means 42 which may include one or more heat3 <sup>1</sup><sub>(</sub><sup>1</sup> ing baths or heaters to satisfy the heating requirements of - H the chemical analysis. In addition suitable drying means 152 ׳' '; i is provided which may include a plurality of Individual elecj ׳ trie heaters 154 connected to drying heater mount 186 for ’ ׳ ; insertion into the tubes 24 for drying them after they have ,י‘ י י been washed. Since these components during their functional » ,* operation coact with the tubes 24 in suoh a way as to prevent i indexing of the conveyor 22, these components are synchronized , ’ '1 with the conveyor movement 22 for allowing movement of the | tubes 24 from station to station.
Thus, referring to Figures 19 through 26, a power air and piston assembly 156 is provided to supply the power for retracting the tube heating means 42 and the tube drying <sup>:</sup> means 152, indexing the conveyor 22 a predetermined amount, ׳ and again extending the tube heating means 42 and the tube ן drying means I52 into their functional position. Referring to Figures 20 through 23, a heating bath supporting structure 158 ’ is provided which generally includes supports 160, 162, 164 and 166 connected together by linkages 168, 170 and 172 and supported on shafts 174 and 176.
י ' Drying means actuating linkages 178, 180 are connecI ted to linkages 182 and 184 respectively which are in turn <sub>(</sub> connected to the drying heater mount 186. The linkages 178 and 180 are connected by pin 175 to linkage 177 which extends <sub>י</sub> י \ and retracts the drying heating mount 186. Linkage 177 is ׳ י . J connected by pin 179 to and actuated by lost motion actuating , lever 204.
, <sub>u</sub> ; ! A stop lug 188 is connected to an arm 190 which 10 connected to the shaft 176 so that the sprocket wheel 132 to allow
W dfeaiH locked
In stop 188 may release movement of the conveyor 22 and re-engage the sprocket wheel 132 to hold conveyor 22 Position after the conveyor has been indexed.
A drive pin 192 is connected to the assembly 156 194 provides power air and for delivering <sub>th־ frM</sub><sup>aUPP0״ r</sup>°<sup>r the</sup> M A power l<sub>s7e</sub>r 196 ־xle 136 connecting the sprocket wheel» 1<sub>28 </sub>j movement of the counterclockwise. A lost drive rod !92 which when
Platon
An arm is connected to the •130 1״ to provide the forwarding 1«!״!^ . conveyor 22 as the lever 196 Is moved r- ; motion arm 198 Is provided connected between the ; ״־d the power lever 196 and Includes a notch 200 ' <sup>1״״</sup> “ <sup>P1</sup><sup>202 le</sup>’<sup>er 136 00 that</sup> »» ״־ ״ stroke the lever 196 win move counterclockwise thereby n ealng the conveyor 22. However, before the conveyor 22 may e ndexed in the preferred embodiment, the heating baths and »־ dryer heater mount 186 ״״st be retracted away from tub24 ־־ ־״ ־־ ־־t to interfere wit״ their movement. Λ lost motion 04־ ך having a lost motion slot ־0־ therein 1. <sub>conne־tod </sub>t־ shaft 174 and receives the drivs rod 1<sub>92</sub> !״ <sub>th</sub>. <sub>10־t 2Q6 </sub>Thus the lever 04־ will not move with the drive rod 19־ until the drive rod 192 engage־ o<sub>ne en</sub>d or the other of the lost 2°6. »־»־ver, the lost motion of slot 206 1־ less arm 198 so that on the retraction rod 192 engages the back end 207 of arm 204 and rotating shaft 174 and also Rotation of shaft 174 m <sub>a</sub> clockwise direction lowers the heating bath supports 160 - 166 and thus ths heater baths are moved out of engagement with tubes 4־. Retraction of arm 177 moves linkages 178 - 184 and retracts ׳th. drying heater mount 186 away from tubes 24.
. I 0״ the power stroke of assembly 1<sub>56</sub>, <sub>ths rod</sub> ,״ <sub>a״d</sub> than the lost motion of of stroke/assembly 156 the slot 206 retracting ׳retracting arm 177, j> ! lever 198 move lever 196 thereby indexing the belt 22. Howi ever, the drive rod 192 is allowed to move in the lost motion ; slot 206 so that the heating baths supports 160 - 166 and the individual heater drying elements 154 will not be moved into j! ' ’ <sup>1 the</sup> Proximity of the tubes 24 until after the conveyor has been ; Indexed, after which time the drive rod 192 will engage the '; <sup>1</sup> , front end' 209 of the lost motion slot 206 to move the actuating >I ‘ II i lever 204 counterclockwise rotating the shaft 174 thereby rals'1I j Ing the heater baths supports 160 - 166 and pushing linkage ' 177 thereby extending the Individual drying heaters 154 into a : row of tubes 24.
<sup>1</sup><sup>1</sup> י While, of course, the power stroke movement of the ' t <sup>1</sup> ן ! , Ι piston and cylinder assembly 156 through the rod 192, the arm ! 198 and acting through power lever 196 may be utilized for
1' * I < . 1 controlling the limit of travel of the conveyor 22, a more
I positive engaging pawl 208 may be rotatably supported on shaft 176 and arranged to engage the teeth on sprocket wheel 134.
Pawl 208 is rotatable about a pin 210 on arm 212 '׳ which is in turn fixedly secured to shaft 1?6. In the waiting
I position (first position) the pawl 208 is kept out of engagewent with the teeth of sprocket wheel 134 by spring 214 between
J the pawl 208 and the arm 212 causing the pawl 208 to engage a stop pin 216 positioned on arm 212. However, when the power cylinder !56 retracts thereby lowering the heating baths and ; retracting the drying heaters, shaft 176 is rotated bringing <sup>I</sup> , ׳ the end of the pawl 208 into engagement with the sprocket teeth <sub>(</sub> of wheel 134 (Figure 24). Further rotation of the shaft 176 causes the end of the pawl to become fully engaged with the ' , ' sprocket teeth (Figure 25, third position) * As the power ; cylinder 156 moves on the power stroke and indexes the belt 22, 1 the sprocket 134 will rotate the pawl to the fifth position as
II 1 ׳ ! beat seen in Figure 25 at which time the pawl 208 will engage ? I . <sup>1</sup> , y
' . <sup>!</sup> . < <sub>t</sub> ־ , ' 'I I '1 . 1. . ' I
I ji } a stop pin 215 on the arm 212 thereby preventing further rota,j tion of the sprocket wheel 134 and the conveyor 22, ף ! Referring now to Figure 23, stoppage of the rotation '1 ' <sup>1</sup>
I of the sprocket wheels and the conveyor 22 by the locking of ; ‘ ,{ pawl 203 causes the lost motion arm 198 to become released
- ף ! from power lever 196 as the notch 200 by virtue of its rounded ׳' '־ I I back edge 201 will move off of the pin 202 and return to the ; j first position (Figure 22), » After the conveyor 22 is stopped and thus indexed in <sup>0</sup> ! <
’ * 1 <sup>:</sup> י a new position, further movement of the power stroke of the
,. j' power assembly 156 causes the drive rod 192 which is by then : I moved through the lost motion slot 206 to engage the end 209 ,' of the slot 206 and move lost motion lever 204 to rotate shaft ' 174 causing the heating baths supports 160 - 166 to move upי I wardly, moving the heating baths into engagement with the tubes : 24 which are in the newly indexed position. Movement of lever ׳i . ' i204 simultaneously moves arm 177 and linkages 178 and 180 ' which in turn move linkages 182 and 184 to move the drying .heater block towards the new row of tubes 24 in the drying position whereby the individual heaters 154 are Inserted into the tubes to perform the drying function. Rotation of shaft i 176 also rotates arm 190 and stop pin 188 into engagement with 'the sprockets on wheel 132 thus holding the conveyor 22 in a ' locked position. Also, rotation of shaft 1?6 in moving linkage • <sup>1</sup> '178, as best seen In Figure 25, moves the locking pawl 208 out
I ;of position five and into position six or its original waiting <sub>t</sub> position one (Figure 24).
! <sup>:</sup> While the form of the heating means 42 for heating ׳ י׳ ׳the reaction tubes 24 to the temperatures necessary for per‘forming the chemical analysis will of course depend upon the chemical tests performed, one form is shown in Figures 29, 3θ,
1, , 31, 33 and 34 for satisfying the heating requirements of the j 1־״־ !
' ί.'
I !
' teats listed ;as programmed In Figure 4,. Thus a heater tray 217 , is provided for supporting a P.B.I. (protein bound iodine) I electric heater 218 for providing a temperature of about 2O3°C. at.stations 4 - 8 in the longitudinal row in which the P.B.I.
; test is performed (Figure 4), a water bath 220 is provided for a temperature environment of 37°C., and a water bath 222 is provided for creating a temperature environment of 80°C. The heater tray 217 is supported by the heating bath supporting structure 158 (Figure 21) which are slidably engaged on shafts 174 and 176 by slidable guides 224 and 226, and are engaged . and are raised and lowered on supports 160-166 as previously I indicated.
ן Referring now to Figure 33, the P.B.I, heater 218 may be an electric heater having a plurality of openings 228 ; for enclosing the reaction tubes 24 when the heater 218 is : raised and includes suitable electrical connections 230 for ! supplying the necessary electrical power for heating.
I Water in baths 220 and 222 is circulated by means of pumps 246 and 248 respectively through suitable heaters 242 ׳ and 244 located in tanks 243 and 245 respectively,. By suitable imeans of heater control the temperature in the baths 220 and ; 222 is controlled. Water to baths 220 and 222 is provided ' through line 232, branch lines 234 and 236 and controlled by jvalves 238 and 240 respectively. Excess water in baths 220 1 and 222 flows into overflows 250 and 252 respectively and (drains into sump 254 which has an outlet 256 through which I drain water is disposed.
Referring to Figure 5, it has been previously Indicated that as the conveyor is Indexed, and after the conclusion of the chemical analysis, the tubes 24 are inverted thereby draining the contents therefrom, and are then washed in prepa. ration for recycling. Referring now to Figure 32, wash pipes I 1
258, 260 and 262 are provided having spray nozzles 264, 266 and 268, respectively for directing a spray of cleaning water at various stations into the tubes 24 and onto the slats 122 for washing and cleaning the tubes and conveyor. The contents of the tubes 24 and the spray water are received in a drain sump 254 for disposal.
Referring now to Figure 34, a master timer 272 is provided as part of the control circuit which will be more fully described hereinafter, which after the tests have been programmed controls the rotary indexing table 32 as well as controlling air valve 274 which in turn controls the power air rteton assembly 156 which drives the conveyor 22, After the nrogrammed test is completed the master timer 272 is deucutiated and at that time actuates the end wash timer 276 which will continue to index and actuate the power assembly 156 to index the conveyor 22 for a predetermined number of cycles to insure that all of the tubes 24 are washed and cleaned, in .which
Referring now to Figures 35 through 39/ the reagent dispensing assembly 36 is best seen. ! '/ The various reagents required for the various chemical tests are provided in reagent containers 38 and are drawn therefrom by metered dispensing units 40 and dispensed into the reaction tubes 24 at the proper positions or stations and in the proper amounts for performing the desired programmed tests. Preferably, the metered dispensing units 40 include a glass cylinder 278, a Teflon piston 280 therein for drawing in a metered amount of reagent from the connected container 38 through a first check valve 282 and dispensing the metered amount of reagent through a second check valve 284 to a tube 24, It is desirable that the components of the reagent dispensing assembly 36 be of glass, Teflon or other inert material which will withstand and hold up in extended use with the chemical reagents used. The
1
I j
i check valve 282 Is connected through a fluid passageway 286 to one of the reagent containers 38 and generally includes a compartinent 288 having a polished glass valve seat 290 in oommunioation with tho pasoagoway 280 and a glass valve element 292 preferably in the form of a cylindrical element. A second fluid passageway 294 leads from the compartment 288 into the interior of the cylinder 270 for drawing reagent from a containei38 ״ into the cylinder 278 on the suction stroke of the piston 280, A by-pass notch or passageway 296 is provided at the outlet edge of compartment 288 having a length longer than the width of element 292 to insure that passageway 294 remains open on the euctlon stroke of the piston 280 so that the reagent may be drawn through passage 286, through compartment 288, and into passageway 294 and the cylinder 278. However, when the piston 280 is on the dispensing stroke, valve element 292 is forced into contact with the polished glass seat 290 ί providing a positive seal for sealing off any return of the j reagent back through passageway 286 to container 38 and Instead
[ forces it out of a passageway 298 and through the check valve j 284 to a reaction tube 24, The structure of check valve 284 > le similar to that of check valve 282. Thus on the suction ן stroke of the piston 280, a metered amount of fluid flows through the first<sup>1</sup>check valve 282 while the second check valve !oaed. On the dispensing stroke of the piston 280 the ;.Ust check valve 282 18 closed and the second check valve 284 opena allowing fluid to be dispensed through fluid passageway 29Θ to a reaction tube 24.
The Teflon piston 280 includes first and second flanges 300 and 302, which maintain a seal with the glass j cylinder 278. Collar 303. serves to align piston 280 and the ' piston rod 304 in the cylinder 278. As best seen in Figure 37 •1 a T-Blot 306 18 provided in the end of piston rod 304 for
II I ן connection to an actuating assembly and is adapted to engage a T-head 308 (Figure 36). The T-slot 306 thus provides a loose fitting connection with the T-head 308 in a transverse direc!
; tion so that in the event the T-head 308 13 not accurately , aligned with the piston rod 304 there will be sufficient transj verse play in the connection so that the piston 280 will remain ; axially aligned in the cylinder 278 and not bind in the cylinI der 278 or break the glass cylinder 278 because of misalignment | as the' piston is reciprocated therein.
! Referring now to Figure 36, the power source for i
reciprocating the piston 280 in the cylinder 278 for dispensing the reagent may be an air piston and cylinder 4ad-plato>l assembly 310 In which an air inlet 312 directs air to one side ' of a piston 314 to move stem 316 and thus the. T-head 308 coni nected to the piston rod 304. A spring 318 is provided acting between a stop 320 and piston 314 for moving the piston 314in ; a suction direction. An orifice outlet 322 is providedto ן limit the rate of outlet air on the suction stroke in orderto limit the rate of suction speed for the «&&«׳. dispensing unit 40 in order not to have an adverse effect on the reagent or damage the unit. An electrically operated valve 324 is proI vlded for actuation of the dispensing unit 40 by admission of ' air to the lower side of piston 314. The distance that the : stem 316 and thus the piston 280 (Figure 37) moves on the disן pensing stroke can be adjusted by a sleeve 328 which is locked in adjusted position by a nut 330 to limit the amount of fluid j drawn into and dispensed from the cylinder 278. Thus, by suitj ably adjusting the sleeve 328 the stroke of the piston 280 and ! thus the amount of metered reagent may be accurately controlled, I Referring now to Figure 35, an outlet line 332 is ! connected to each of the reagent metered, dispensing units 40 j for receiving the metered amount of reagent and dispensing it i
jj i into a reaction tube 24. Referring to Figures 38 and 39, dis!! !
; I pensing line holding bar 334 is supported by adjustable support 336 ין for positioning of the bar 334 over a transverse line 28 <sup>1</sup> '׳ i ! of reaction tubes 24. The bar 334 includes a plurality of
II , <sup>1</sup> openings 333, each of which is directed into the top of a re-
'י, ' ' . ;; . action tube 24 positioned thereunder, for supporting the outlet ׳ .\׳
׳.' . j ; , end of dispensing line 332. As best seen in Figure 39 it is ' preferred that the openings 338 be at an angle to the longltu» ' <sup>!,</sup> u dlnal axis of the tubes 24 so that the incoming reagent will ' . ' ׳ be directed into a tube 24 at an angle thereto adjacent the top <sub>;</sub> of the curved bottom of the tube 24 to create a swirling action as the reagent is dispensed therein to provide sufficient agi.1 , tation and swirling of the mixture to thoroughly mix the re• <sub>;</sub> agent with the sample therein thereby eliminating the require! ment of additional shaking or stirring of the mixture to secure Ί the desired chemical reaction. Of course, a plurality of the , ! support bars 334 are provided along the top of the transverse rows of the reaction tubes 24 depending upon the number and , stations at which the reagents are to be dispensed which depends upon the chemical tests being performed by the apparatus.
As indicated in Figures 4 and 5, after the sample has , been dispensed into the tubes 24, the reagents added at the ! proper stations during the test and properly heated, the tubes . I ; are indexed to a readout station in which the results of the test are analyzed such as by a readout assembly 44 such as an optical readout. Referring now to Figures 40 through 55, the readout assembly 44 is best seen, and in particular Figures 40 , through 42 in which a plurality of cuvettes 340, preferably optically matched, are provided, one each for each of the
I ' longitudinal rows 26, which are positioned over the reaction <sub>H</sub> jtubes 24 at the readout station and which are transversely ΐ I aligned and!supported by a movable support or readout block 342
I ,! which is in turn supported by guides 344 at each end and is ' connected to a piston rod 346 (Figures 40 and 42) which is ׳ ! an air piston and cylinder assembly 348 for rale<sup>1</sup> ing and lowering the readout block 342 for lowering the cuvettes 340 ׳ into the tubes 24 whereby the fluid in the tubes 24 may be f i , aspirated into the cuvettes, optically analyzed and drained i ׳ again into the tubes 24 after which the piston and cylinder assembly 348 raises the readout support block 342 out of the ׳ tubes 24 so that the conveyor 22 may be indexed and another set I of tubes 24 brought to the readout station and analyzed.
| After the air piston and cylinder assembly 348 lowers
I ' !
' ' the readout block or support 342 downwardly and the lower ends ‘ . of the cuvettes 340 which preferably include an elongated j passageway 341 are inserted into the tubes 24 a fill and expel
[ i air piston and power assembly 349 (Figures 41, 43, 45 and 54) ! Is actuated and 15 connected by piston rod 352 to a movable bar ' ) 35θ which is supported at each end by slidable rods 354 and
35®. The actuating bar 350 is connected to a plurality of , individually arranged syringe pistons 358, one for each cuvette 340 ׳, which is slidable in a cylinder 360 with a line 362 con'! nectlng each cylinder 360 to one of the cuvettes 340, Thus on 1 actuation of the fill and expel piston and cylinder assembly
349 on the suction stroke the actuating bars and all of the i I
I piston rods 352 are retracted drawing back all of the pistons
358 creating a suction in the lines 362 and in each of the ' , cuvettes 340 to suck up the liquid from the tubes 24 into the ; ' 1 cuvettes, A serpentine passageway 343 io provided between the ׳ ’ j passageway 341 and the body of the cuvettes 340 for slowing the flow of fluid into chamber and preventing aspirating the fluid into line 362.
'<sup>1</sup> ' Referring now to Figure 44, it Is noted that when the i, - 28 -
1 י' i ! י ־‘‘ ר • IJ syringe piston' 358 is retracted in the syringe cylinder 360 . the piston seal is not moved past an air drain port 364 proj | vided in the cylinder wall,
ן , 1 i While all of the pistons 358 are connected to the \ <sup>1 1</sup> ; י ! actuating bar 350, all of the syringe cylinders 360 are con< I'. . i nected to a drain bar 366, which is connected to a piston rod
I 368 which is in turn connected to a drain piston and cylinder I <sup>1</sup> assembly 370. The drain bar 366 is supported on movable '׳ י ! support rods 372 for slidable movement thereon.
'יי I After the optical readout of the liquids in the i
<sup>!</sup>'׳ ί י cuvettes 340 is completed, the air piston and cylinder assembly 348 is actuated to raise the readout block 342 from the reaction ‘ <sup>1</sup> tubes to its original position shown in Figures 40 and 41. It I
J is then desired to drain the cuvettes 340 of the liquid there1׳ ( In, and the drain piston and air assembly 370 Is actuated, as j best seen in Figure 45 thereby moving the drain bar 366 away 1' I from the syringe pistons 358 and thus moving the syringe cylin<sup>1</sup> ן ders 360 in such a manner to move the air port 304 past the
I piston 358. The air port 364 is moved, as best seen in Figure 46, past the piston 358 to the dotted position thereby allowing air to enter the syringe cylinder 360 relieving the suction in . the lines 362 and allowing the liquid in the cuvettes 340 to ׳ drain back into the reaction tubes 24.
i In order to further drain the cuvettes 340 the fill ! and expel air piston and cylinder piston assembly 349 is actu ' ated to move the actuating bar 350 and thus the pistons 358 י back Into the syringe cylinders 350 providing an air impulse j through the lines 362 and the cuvettes 340 as the piston 358 ' ׳ ' passes the air port 364 to assist in further draining the read> ׳ I out tubes 340. In addition, a further air blast may be provided to further drain the cuvettes as the drain piston and air <sup>1</sup> assembly 370 is actuated to return the drain bar 366 to its
42893/Z m&iaal poeitios thereby mu?; We '^Ogei'.'eyU^era 360 w ww toward tte oyr.1^» piu^n 3So m addiuonal air
As best s^0*5 i־i i''.i,.;<sub>t</sub><.bSs <> <i i>t<sub>i</sub>1<sub>:־</sub>duu& tlwr 3?h !8 ,i.׳vV^a ecn״',^^ to air v״iv«u 3?8, 378 Uk'4 380, wpesuve. q׳ bU.u;a^.-y aamm34¾ -״ ruvex-olag the air pUtes. «?4 eyUadar 34a, W aud tU kw weMj? 370 to l^ ^'A'bGV.viVi.^/ VvU<-J CUVte u'vAM'l 'v-ίό * }'Ζί'Λ '?’.‘.נ.! ’.ΧΛ...״'. < .'.«־\ .ύνΛν, A?<sup>s</sup> ״ ** *Y. *V^V. W4>: +.W<avvsb-νώ ίί js’-i('^ ix> •!.2 &$־»;,Is i<sub>)lv0</sub> b;<sub>5</sub>״ euvettos <sub>UUt</sub> redout ;ui<> M-ϊό &00«<sub>!1</sub>1>?.8;־1ג<sub>ע</sub>, to raise the readout tuvettes ״.>.-, t״>e (.״«?vci'i'&t.;, ;,;4 e,v#i the resiaiader of the ».au <sub>R</sub>,»v.«i.» oj &λ* o.״x..!.,.! y<,3 the readout»eswbly is in <C .' <'.Ψλ bt.vA.’M +\נ<? V‘iiv* b’iAV *’.<3 f.'siVlomy ;!'.ontUiu.-h. 1Ί 10 preferoble se perfor« 1<s, <.s,«ss0^b *«»Λ» BiXx«.*.»oh a ey»Ws Xe ishbw» bch«at
J.n <>3 w.itiiv .־i <sub>11!״</sub>;1 ״, ,,uu'se such <sub>a</sub>» an exoitur
״.<r ״<<, λύ pruv.<bid vx־ ^irveu !:j,., uarcAVi a ;kus 379» .?'<. uho ;» a bhv<-.,u thw^i a nit»331 ?־, &M ««:j:־«!*.־״־» iiwou >ju<sup>:</sup>';i <-!. 4idtt>yuitOs: sell 3M* **'* '<sup>,</sup>'<sup>,</sup>׳ '''' .s.'^s>s »,״ >m'?<u<iU'ed &y the phetQ* ir a . ef J־hd<sub>::</sub>Wepe0 »«\<w, .< < mBr. r:. r x teג <i 1<:«ti’Mal tOiWsnee «wtrei -x '״v vv , i\ . j<sub>v</sub> ,,, ;״:. <sub>>Ss<>׳i λ Λ</sub> roseruor 386* The ’<sup>1</sup>י*'*<sup>v</sup>״r<sup>;</sup>' v <sup>1</sup>i ל.;״? i.i:r<sub>;</sub>vi<>< r i-tor 3to' ir best ivi״ in '<sup>,</sup>' ל י י <sup>s</sup> י ' '.' ״x<sup>;</sup>r 1«<sup>!</sup>־φ 3ZZ p'revidvij a ''׳*'’ .׳׳- pr>osp»,ate '׳''.׳ ‘<sup>,v</sup>. ' '׳ '. .'<sub>W</sub> o״iy eolliaatlr<; 0?
״ <sup>&</sup>.׳'<sup>A</sup> ׳ 1 . &>»« <.' >' 'י: <sup>1</sup>/«י '׳'; .»«vb .pa^iXel
T ϊ%'κί>ΐ ji'X kii.* ijti.:. < r X\*. a\ 'י'׳:<sup>,</sup>׳. .v ' L' .\ '״ vx* i. יס.» » .A 4.
<sub>x</sub>,. ti tktffo.v HOSS the IMP ׳ 'י ' .'.<sup>λλ</sup>-.>.4.-.»«..,»י..:״׳-.A: x>a:»>ple* Ohresje utture ״jwo e.'s״ ־Ifev \\4׳tovc Ue exalte? lasp 377 ii'iist the . . .,375 .;..׳ <sub>a</sub>r4 through a window 390 through the readout cuvette 340 which preferably
Include a window 392 with the remainder of the cuvette being amber coloured to cut out stray light
After the light passes through the sample in the cuvettes 340 it passes through the filter 381 which filters out undesired light and allows only the spectrum of light being measured to pass photocell. It is preferable that the filter through to the
381 be positioned between the cuvette 340 and the photocell 382 in order to prevent the heat from the lamp 377 from adversely affecting the filter 381.
However, as previously mentioned it is further desirable to control the heat environment in which the readout tests are performed and as the exciter lamps 377 radiate a great amount of heat, the readout block 342, as indicated in Figures 47, 48, 49, 50 and 51 include water passageways 393 so that water may be passed therethrough for cooling the block 342. In addition, in order to provide additional cooling for the exciter lamps 377» the readout block 342 may include air partitions 394 and 396 (Figures 47 and 52) each of which includes a plurality of air vents 398 for allowing the heat to escape from the lamps 377. However, the vents 398 on the member 394 are out of vertical alignment with the vents 398 on member 396 thus allowing heat to escape, but reducing the admissibility of stray light into the lamp compartment
Referring now to Figure 53, an electrical schematic of the readout system which includes portions of the control systems of Figures 54 and 55 is best seen. As will be more ,; fully described in detail, a pushbutton program panel 399 is ו provided in which the various tests desired to be performed by • 1 the apparatus are programmed with the information being transmitted to a computer 400. An actuating operate button 402 la depressed to actuate and start the master timer 272 controlling the various functions in synchronism. At the proper point In ' <sup>11</sup> the operating cycle the readout timer 374 (Figure 54) actuates ’ ׳ j the readout block air cylinders 348 to place the cuvettes 340 ' i into the reaction tubes 24. The test samples are then aspirated j' . <sup>1</sup> into the readout tubes 340 by the air piston assembly 349.
’ j During the readout cycle each of the exciter lamps 377 directs < <sup>1</sup> i ן : a light beam through a cuvette 340 to a photocell 382 for each
I ' i longitudinal row of tubes 24. Each exciter lamp 377 has a lamp : , failure relay 404 which is connected to an alarm system 406 to
J provide an audible sound in the event that one of the exciter ; lamps 377 falls.
The recorder timer switch 410 is then actuated to
ז;
I begin its sequential scan through each of the tests programmed ׳ by the apparatus by sequentially connecting the output of each ; photocell to the recording pen on the recorder 380, the output signal is clamped, the chart paper advances registering the ן signal on the chart paper in such a manner as to indicate the concentration of the unknown in the solution undergoing the ! indicator analysis; During the process of scanning,/lamps 458 are
Illuminated indicating the test being registered, counters 459 j pulsed sequentially counting each test being registered, and the resetting of the programmed relays 461. Just prior to the completion of the scanning cycle, a pulse is sent to the readout timer 374 to enable it to complete its final phase of the readout cycle, suitably actuating the controls in Figure 54 to drain the tented onmplo rmn the cuvettes 340 and retract them from the tubes 24 in preparation for the next cycle,
In addition, a plurality of electrical calibration (Fip. 55) control circuits 384/, each connected to a photocell 382 are provided. As a pari of each electrical control circuit 384, a blank potentiometer 385 and reference potentiometer 387 1׳!!v hr; ;׳!:עסקי:! to i;״n tro'L .!;׳>!־ cel ibrate the output from each ן; ! photocell 382 in accordance with a known sample being tested.
; | Used in conjunction with each other, these potentiometers 385 ! , I and 387. make it possible for the information transmitted to a , ן readout device such as recorder 386 read directly in the
I , J desired measured units in spite of any individual differences ן , :׳ <sub>י</sub>ק in cuvettes, photocells, filters, etc.
' ί ' !
;',j Referring to Figures 14 and 15 a clutch 114 is con, J nected to motor 112 to provide a two-way drive for the pick-up , and dispensing apparatus 34. Referring now to Figures 56 . ' through 59, a more detailed description of the structure and operation of the clutch 114 may be best seen. The clutch 114 ! is for providing a two-way clutch between the drive shaft 422 י ' jand the driven shaft 420. In a conventional clutch the driven
I shaft 420 is connected in housing 421 to a cam member 424 havi’ j ing cam surfaces 426 thereon which'are adapted to engage clutch
I bearings 428 and cause them to engage a driving member housing : ' 430 which is connected to the driving shaft 422. However, this conventional clutch will only operate in a single rotation i direction of the drive shaft 422 and the'direction is determined by the direction springs 432 are connected between the driven housing 421 and the cam member 424,. A forward indexing pin 442 is provided on housing 421.
Added^to .the conventional clutch is a reversing pawl 454 which is rotatably mounted on a pin 440 and yieldably urged by a spring (<sub>nofc</sub> shown) <sub>&</sub>
... 421. The pawl 454 is actuated by a pin 438.
ו ί When the driving shaft 422 is turned in a counter, , ; clockwise direction 423, the driven shaft 420 turns convention, 7 <sub>(</sub> ally as the springs contract and engage the internal bearings
428 in the <sup>1</sup>clutch until an external stop means*such as a solenoid switch 444 having an actuating lever 446 which when actu- ׳
I ated into position stops the driven shaft by engaging forward ! ' ’ i 'י
I ί
I ' . 'י i<sup>1</sup>
Γ
I! . <sup>1</sup>
I ‘ , Indexing pin i
j 1 the internal ,<sup>1</sup>l ! turn and the ____;״.!Mt<
j j • , I . ’ .
' <sup>L</sup> 'j '<sup>,</sup>'I
442 thus expanding the springs 432 and releasing bearings 428. The drive shaft 422 continues to spring loaded pawl 434 springs past the reversing '! pin 438 and thus the driven shaft 420 is disconnected and will
י ‘ , !only turn when the forward indexing pin 442 is released by the i ' ׳ ;
it solenoid switch 444 and lever 446.
< '! יי י' '; ! j Whenever the drive shaft 422 is driven in a clockwise ’ ! direction 425, the driven shaft 420 begins to turn clockwise as יי י <sup>1</sup><sub>־</sub>.<sup>־</sup> soon as the pawl 434 engages reverse pin 438. Thus, the two' , ‘ ’! way clutch 114 may be simply actuated in either direction of ; !
I rotation of the drive shaft.
I
1' j Referring now to Figures 6 and 6A, the electrical
Ί , j power supply circuit and circuit breaker switchboard are best ' seen. The circuit breaker board 445, also seen in Figure 1, j has various Individual circuit breakers labeled as indicated i with the corresponding numeral in the enclosed circle shown in <sup>1</sup> position in Figure 6. The circular enclosed figures are push! button circuit breakers which pop out when an overload occurs thereby causing an audible alarm whereby the operator may quickly check the control board to locate faults. Thus, a ן י power input is provided at 447 and to a conventional magnetic ; contactor 448. Circuit 1 is the power supply to the various control circuits with branch circuit 2 being A 115 volt ac circuit, circuit 3 being a 48 volt de supply circuit, circuit 4 ' 1 being the power supply to an air compressor 450 (Figures 2 and ‘ . !3) which provides the air supply for various machine functions, , ‘ circuit 5 is to the various bath heaters 218, 242 and 244, circuit 6 is to the drying heaters 154, circuit 7 is to the ' ׳,. .j 1 computer 400, circuit 8 is to the endless belt or conveyor 22, ' ; circuit 9 is to the sample dispensing assembly 30, circuit 10
J is to the tube wash and wash valves, circuit 11 la to the , .ן drain timer and drain motor (116t 3hown), circuit 12 is to the ־ 54־ <sub>;</sub> reagent dispensing solenoids 324, circuit 13 is to the readout , 1 44 and photocells 382, circuit 14 is to the recorder 386, and . circuit 15 is to the 12 volt de power supply for lamp failure i relays 404 and the exciter lamps 377.
י The pushbutton panel 399 (Figure 1) is best seen in
I Figures 60 through 62, and includes a plurality of vertical ί rows 452 of indicating lights and buttons, each row correspond ing to each transverse י row 28 of tubes 24, and assuming that
I there are ten longitudinal rows 26 of sixty tubes, each verti| cal row 452 of pushbuttons will include ten buttons, one for ! each row which when pushed indicates that the test in that ; longitudinal row is programmed for a particular sample. In ! addition to the ten individual selected discretionary program I buttons each row includes a button 454 labeled P indicating ’! that a profile of the entire ten tests are to be run on that ; sample, and also Includes a release button 456 for disengaging
I all of the buttons pushed in that particular row 452 in the ן event of error or in the event that it is desired to change the tests being programmed. In addition, station numbering lights 460 and indicating lights 458 for Indicating the status j of the tests on that particular vertical row 452 are provided.
The pushbuttons on the panel 399 are connected to a fixed sec! tion or stationary board 462 of the computer 400. The panel 399, in the exampleshown, has sixty buttons in horizontal rows , whereby sixty samples may be programmed for the various tests ; programmed into the apparatus.
i The computer 400 is best seen in Figures 64 through ' 66 and includes a sweep section 464 connected to a worm gear drive 466 which is in turn connected to a sweep board clutch . ' 468 driven by motor 470 for controlling the relative position of the movable section 464 to a fixed section 462. The sweep 'I board motor!470 actuates and Indexes the sweep board 464 in !
ן synchronism relative with the indexing of the belt 22 so that i the Information programmed on the programmer 399 is suitably ,׳transmitted to the proper function controls whereby the sweep ? board then transmits the information such as which tests are ' ן to be performed, which readout is to be actuated which also ί depends upon which test Is to be performed, how much sample
I material the pick-up and dispensing apparatus 34 is to pick up which also depends upon the number of tests to be performed on each sample, and dispenses the proper reagents which also
11׳ i depends upon which tests have been programmed. For example, <sup>1</sup> the stationary board 462 corresponds to and is electrically ׳ connected to the panel 399. That Is, board 462 will include י
<sub>1</sub> ten rows of sixty terminals orpins 463 connected to corresponding buttons on panel 399. However, the sweep board 464 will ׳ I require terminals 465 corresponding to the number of tube re' action stations on the conveyor, in the example given twenty, ’ at which discretionary functions may be programmed and per: formed. Thus as the sweep board 464 Indexes past the station. ary board 462 its pins 465, which are preferably spring loaded as shown in Figure 66, move against pins 463 and pick up the . i programmed information and transmit it to the various systems I ! which perform the various steps in the chemical tests at the <sup>1</sup> twenty work stations (Figure 4). Since the sample being tested : travels through twenty possible work stations on the belt 22
I ן from sample delivery to sample readout, the sweep board 464
I signals the various systems that a function is to be performed ן in a particular cycle. As previously indicated the information ' sent from the sweep board includes: whether further samples ; are programmed, in which longitudinal rows samples are to be 1 dispensed, what reagents are to be added at a given station, i operate indicator lights on the program board 399 to indicate <sup>1</sup> which samples are in nrogress <Alch tests are to readout, and .1 ! I <sub>L</sub>
l.
i; when the readout function 18 to be performed. Thus the com-
:. , puter 400 will repeat every machine cycle until it detects no ; further programming. At this time the sweep board 464 will j return to the zero position, the master timer 272 will stop I׳' , running and the apparatus will be placed under the control of ji ׳; the end wash timer 276 as discussed in connection with Figure '! 34 ׳.
, [ However, in addition to the sixty rows of contacts , J 463, because the apparatus 20 is a continuous cycling apparatus , ' I and because the boards are physically constructed linearly, the stationary board 462 will Include an additional twenty rows of contacts 463 which are electrically Jumpered to the first
J twenty rows of contacts on the stationary board 462 whereby the linear board may function as a rotary switch, although of . course a rotary board may be used in pl<sub>ace O</sub>f boards 462 and ' | 464, by picking up the information programmed on the first u twenty rows of buttons 463 as the sweep board 464 passes the first contacts. During operation the first position on sweep board 464 will index from zero position to position eighty on the stationary board, then the sweep board reverse 416 will | actuate to return the sweep board to position number twenty-one ן on the stationary board and will continue to index between ן position eighty and position twenty-one until programming ! ceases. Then sweep board 464 will return to zero position.
j The reagent selection board 113 is shown in Figure 64 wherein <sub>י</sub> jump cables are provided to actuate the various reagent sole• nolds 324 at the proper station on the belt. In addition, the , sweep board transmits information to the readout timer for , ; controlling the readout and recording functions. The reagent ׳ selection board 113 Includes rows 11g/<sub>o</sub>f receptacles connected to the electrical solenoids 324, which for the tests being <sub>ύ</sub> ; , ! programmed on the apparatus in Figure 2, requires sixteen
I I I <sup>1</sup> ί
׳
I ' reagents and. solenoids thereby requiring sixteen receptacles . I in rows 119a. In addition, since there are provided seventeen I ; possible tube stations for each test at which reagents may be <sup>!</sup>ί dispensed, the reagent selection board 113 includes seventeen rows 121a of ten receptacles which are connected to the reagent ; dispensing pins on the sweep board 464, Therefore, in order to ί not j set the apparatus up, various jump cables 125,/all of which are <sup>:</sup> shown,’ are connected from the reagent solenoid receptacles
J in rows 119a to the proper reagent station receptacle in rows i 121a so that when that particular station Is reached by the sweep board 464, the proper reagent solenoid will be actuated ; to dispense that reagent into the proper reaction tube 24.
• i Referring again to Figure 6, buttons 472, 474 and 402 , are provided to start and stop the apparatus 20. Button 472 is an off button for stopping the entire apparatus. Button 474 is a standby button which is actuated prior to starting the operate button 402. The<sup>!</sup> standby button 474 when actuated actuates i the magnetic contactor 448 which provides power to circuits 1-15 and makes apparatus ready for operation 80 that actuating the operate button 402 actuates the master timer 272 which starts the automatic chemical analysis.
Referring now to Figure 63, an electrical block achematlc diagram is shown of the functional controls of the present invention. As has previously been indicated the desired , tests which are to be performed are programmed on the pushbutton program board 399 thereby providing a discretionary control on what chemical tests are to be performed on each sample. <sup>;</sup> Also, the samples have been sorted on the sample table ; 32 in the sample containers 46 and the standby button 474 , I j (Figure 6) is actuated to bring the various heating baths up !to their proper temperature. Actuation of the operate button 402 (Figure 6) actual,an the mantcr timer 27? which trnnnmi I,ח a
J
<img file="IL42893A_D0002.tif" />
signal to the programmed board 399 and the computer which
Includes stationary board 462 and the movable sweep board 464, ’ j From the sweep board 464 information is sent to the ; ׳ sample selection control 115 for storage. Selection control j' <sup>:</sup> 115 transmits a signal to the carriage arm valve 70 and actu- ל >;
,- ' ates the aspiration timer 121 through the carriage control 119. , ן | In addition, the sample selection control 115 transmits signals ' ,to a dispenser control 111, the dispenser timer 123, the : ! aspiration timer 121 and the carriage control 119. A signal ׳ ; is sent from the carriage control 119 to the carriage clutch 76 / . 1 ( ׳ ;, to actuate the carriage motor 72 (Figure 16) to move the pick1 up and dispensing needle 62 over the pick-up station on the ' sample table 32. As more fully described in connection with <sup>1</sup> Figure 16 the needle 62 moves into the cup 46 and aspirates ' jthe programmed amount of sample, the dispenser timer 123 reverses the dispenser clutch 114, the needle is raised, a <sup>!</sup> segment of sample is dispensed back into the sample cup 46, : the carriage arm 66 moves back over the row of reaction tubes and the dispensing timer,123 stops at each of the programmed 'longitudinal rows 26 of tubes and dispenses a sample of serum.
; ! In addition, the sweep board 464 transmits information to the reagent selection board 113 to actuate the reagent solenoid valves 324 to provide a measured amount of the correct
I reagent at the proper station in the cycle.
The sweep board 464, which receives the programmed ’ information from the stationary board 462, actuates the read' out timer 374, which controls the raising and lowering of the readout block 342, for aspirating the fill and expel assembly • 1' ., i ’,349 therein and expelling it again after the conclusion of the ) ;
readout tests. The readout timer 374 also controls the recorder timer 410 which in turn scans each of the programmed tests <sup>II</sup> and records therti on the recorder 336.
־ 39 ־ .,/Η
I . !j During each cycle the master timer 272 signals the ! ,, conveyor belt 22 which is indexed, provides the signals for !
. the transmission of programmed information to the function , .:1 circuits and commencement of the functions, signals the de1' , <sup>:</sup> programming of the control buttons upon completion of each
-יו i<sup>1</sup>, ' individually programmed sample, actuates an advance control 414 .1' ' ί 'ן ; <sup>1</sup> j to advance the sweep board to the programmed signals for the
I « . ! next row of programmed tests, signals the tube wash assembly ! '׳ ן
277 ׳ • to wash the drained tubes, and in addition, signals the sample table 32 which is indexed.
'.'<sup>1</sup>י Of course, it is important that the belt 22, the sample rotary indexing table 32, and the sweep board 464 be ' ׳ synchronized in relative position at all times to insure that , ! the correct sample on the sample indexing table la picked up
1’ I and dispensed in the corresponding transverse row of tubes on / I the belt 22 and the operating functions are synchronized.
' Thus, referring to Figure 67 a synchronization switch <sup>1</sup> ; 479 may be positioned to measure the indexed position of the j' 1 ן belt 22 such as being driven by a belt drive 481 connected to , <sup>1</sup> one of the belt 22 sprockets. Thus, as the belt is indexed : ׳ one tube row the synchronization switch 479 is rotated to indicate the position of the belt 22. Similarly, another synchronization switch 480 (a double layer wafer switch) is ,positioned connected to the rotary table 32 to measure the 1 '! rotational position of the table. The synchronization ' !switches 479 and 480 are connected in series through the com• puter 400 comprising the sweep board 464 to Insure that the t , indexing table 32, the belt 22, and stationary board 462 and ' !the sweep board 464 are in synchronization before proceeding ' ,.with the next sequence of tests.
The present Invention therefore is well adapted to out the objects and attain the ends and advantages ' ׳ carry mentioned as well as others Inherent therein. While a presently preferred embodiment of the invention is given for the ,purpose of disclosure, numerous changes in the details of ,construction, and arrangement of parts will readily suggest themselves to those skilled In the art and which are encompassed within the spirit of the invention and the scope of the appended claims.
Contents2
35 sheets
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76 members in 22 offices
Priority claims4
| Document | Office | Kind | Date |
|---|---|---|---|
| 73706568 | United States of America | A | |
| 73706568 | United States of America | A | |
| 737065 | – | – | – |
| US19680737065 | – | – | – |
Members76
| Document | Office | Kind | |
|---|---|---|---|
| LU57451A1 | Luxembourg | A1 | |
| BE724838A | Belgium | A | |
| IL32316A0 | Israel | A0 | |
| IE33033L | Ireland | L | |
| IE33035L | Ireland | L | |
| IE33036L | Ireland | L | |
| IE33037L | Ireland | L | |
| IE33038L | Ireland | L | |
| NL6815402A | Netherlands (Kingdom of the) | A | |
| IE33034L | Ireland | L | |
| DE1801576A1 | Germany | A1 | |
| ES358684A1 | Spain | A1 | |
| ES358683A1 | Spain | A1 | |
| ES358685A1 | Spain | A1 | |
| ES358686A1 | Spain | A1 | |
| ES358687A1 | Spain | A1 | |
| ES358688A1 | Spain | A1 | |
| CH501913A | Switzerland | A | |
| FR1602796A | France | A | |
| FR1602797A | France | A | |
| FR1602798A | France | A | |
| FR1602799A | France | A | |
| FR1602800A | France | A | |
| FR1602934A | France | A | |
| CH504678A | Switzerland | A | |
| CH505376A | Switzerland | A | |
| CH508209A | Switzerland | A | |
| GB1240303A | United Kingdom | A | |
| GB1240304A | United Kingdom | A | |
| GB1240305A | United Kingdom | A | |
| GB1240306A | United Kingdom | A | |
| GB1240307A | United Kingdom | A | |
| GB1240308A | United Kingdom | A | |
| CH514136A | Switzerland | A | |
| CH514139A | Switzerland | A | |
| US3622279A | United States of America | A | |
| AT302251B | Austria | B | |
| TR16573A | Türkiye | A | |
| BR6909695D0 | Brazil | D0 | |
| US3716338A | United States of America | A | |
| US3723066A | United States of America | A | |
| US3728079A | United States of America | A | |
| US3728080A | United States of America | A | |
| US3762879A | United States of America | A | |
| SE361217B | Sweden | B | |
| IL32316A | Israel | A | |
| IL42893AThis record | Israel | A | |
| IL42894A | Israel | A | |
| IL42895A | Israel | A | |
| IL42896A | Israel | A | |
| IL42897A | Israel | A | |
| IE33033B1 | Ireland | B1 | |
| IE33034B1 | Ireland | B1 | |
| IE33035B1 | Ireland | B1 | |
| IE33036B1 | Ireland | B1 | |
| IE33037B1 | Ireland | B1 | |
| IE33038B1 | Ireland | B1 | |
| AU6492374A | Australia | A | |
| JPS5017876B1 | Japan | B1 | |
| JPS5017877B1 | Japan | B1 | |
| JPS5017878B1 | Japan | B1 | |
| CS163181B2 | Czechoslovakia (until 1993) | B2 | |
| SE388041B | Sweden | B | |
| SE388048B | Sweden | B | |
| SE388049B | Sweden | B | |
| SE389205B | Sweden | B | |
| NO135550B | Norway | B | |
| SU549091A3 | Soviet Union (until 1991) | A3 | |
| JPS5212591B1 | Japan | B1 | |
| JPS5213758B1 | Japan | B1 | |
| NO135550C | Norway | C | |
| JPS5221914B1 | Japan | B1 | |
| FI53501B | Finland | B | |
| FI53501C | Finland | C | |
| MX147176A | Mexico | A | |
| MX147238A | Mexico | A |
Numbers
- Publication, DOCDB
- 42893
- Publication, EPODOC
- IL42893
- Application
- 42893
- Application, DOCDB
- 4289369
- Application, EPODOC
- IL19690042893
Titles
- English
- APPARATUS FOR PICKING UP A LIQUID SAMPLE AND DISPENSING MEASURED AMOUNTS THEREOF
Classification
- CPC, 1
- G01N35/021
- IPC, 7
- G01F11 02
- B01L99 00
- G01N21 59
- G01N33 48
- G01N33 483
- G01N35 02
- G01N35 10
