A brush-less DC dynamo
Abstract
The present invention provides a brushless DC rotating electrical machine, which is characterized in that a switching element of a semiconductor component is used to replace a commutating segment (commutator) of a brushed armature in a conventional brushed DC rotating electrical machine, so that the mechanical contact dynamics are originally used. The operation of sequentially changing the positions of the armature connecting electrodes is switched to use a static power electronic switch array to sequentially switch in a contactless or non-breakpoint manner, so that the armature current can still maintain the traditional operation mode, while the rotation process is in time. Maintaining the distribution of its armature current just forms a direction perpendicular to the stator magnetic field, and there is no mechanical wear or electrode spark loss of the commutating joint.
Term
No projected expiry on record.
- Priority and filed
- Granted
- Today
14 claims: 6 independent, 8 dependent
- 1一種無刷直流旋轉電機,包括:一環形電樞單元,包括:N組依序間格排列的第一電樞線圈,且第1組該第一電樞線圈與第N組該第一電樞線圈相鄰接;N組位在該等第一電樞線圈外側且依序間格排列的第二電樞線圈,且第1組該第二電樞線圈與第N組該第二電樞線圈相鄰接;及複數條第一導線與複數條第二導線,分別連接於各個該等第一電樞線圈與各個該等第二電樞線圈之間;其中,N為大於2的自然數,且第(i+1)組該第一電樞線圈藉由第(i+1)條該第一導線與第(i+1)組該第二電樞線圈連接,並藉由第(i+1)條該第二導線和第(i+2)組該第二電樞線圈連接,1≦(i)≦N-2,而第1組該第一電樞線圈則藉由第一條該第一導線與第1組該第二電樞線圈連接,並藉由第1條該第二導線與第2組該第二電樞線圈連接,而第N組該第一電樞線圈則藉由第N條該第一導線與第N組該第二線圈連接,並藉由第N條該第二導線與第1組該第一電樞線圈連接;一控制單元,包括N個第一控制開關與N個第二控制開關,且第(j)個第一控制開關是連接於一直流第一極性電源與該第(j)條第二導線之間,第(j)個第二控制開關是連接於一直流第二極性電源與該第(j) 條第二導線之間,該直流第一極性電源與該直流第二極性電源之極性相反,其中(j)為自然數,且1≦(j)≦N;一磁性單元,設置於該環形電樞單元內,該磁性單元具有一對磁極,且該環形電樞單元與該磁性單元可受控制地相對轉動;以及一位置感應器,用以偵測該磁性單元之位置,並將該位置之資訊輸出至該控制單元,進而使該控制單元輸出一控制訊號,以控制各個該等第一、第二控制開關的開啟或關閉。
- 2如申請專利範圍第1項所述之無刷直流旋轉電機,該磁性單元為一永磁式磁鐵或磁激式磁鐵。
- 3如申請專利範圍第2項所述之無刷直流旋轉電機,該位置感應器為一解角器(resolver)、編碼器(encoder)、霍爾感應器(Hall sensor)、光遮斷器或光電感應器。
- 4如申請專利範圍第3項所述之無刷直流旋轉電機,更包括一第一雜訊抑制電路(snubber),設置於該直流第一極性電源與該等第一控制開關之間,以及一第二雜訊抑制電路(snubber),設置於該直流第二極性電源與該等第二控制開關之間。
- 5如申請專利範圍第1至4項中任一項所述之無刷直流旋轉電機,該等第一電樞線圈與該等第二電樞線圈可藉由波繞(wave winding)、疊繞(lap winding)或蛙腿繞(frog-leg winding)方式纏繞完成。
- 6如申請專利範圍第5項所述之無刷直流旋轉電機,該環形電樞單元為一環形定子,而該磁性單元為一磁性轉子。
- 7如申請專利範圍第5項所述之無刷直流旋轉電機,該環形電樞單元為一環形轉子,而該磁性單元為一磁性定子。
- 8一種無刷直流旋轉電機,包括:一第一環形電樞單元,包括M個彼此電性連接的第二環形電樞單元,M為等於或大於2的自然數,且每一該等第二環形電樞單元均包括:N組依序間格排列的第一電樞線圈,且第1組該第一電樞線圈與第N組該第一電樞線圈相鄰接;N組位在該等第一電樞線圈外側且依序間格排列的第二電樞線圈,且第1組該第二電樞線圈與第N組該第二電樞線圈相鄰接;及複數條第一導線與複數條第二導線,分別連接於各個該等第一電樞線圈與各個該等第二電樞線圈之間;其中,N為大於2的自然數,且第(i+1)組該第一電樞線圈藉由第(i+1)條該第一導線與第(i+1)組該第二電樞線圈連接,並藉由第(i+1)條該第二導線和第(i+2)組該第二電樞線圈連接,1≦(i)≦N-2,而第1組該第一電樞線圈則藉由第一條該第一導線與第1組該第二電樞線圈連接,並藉由第1條該第二導線與第2組該第二電樞線圈連接,而第N組該第一電樞線圈則藉由第N條該第一導線與第N組該第二線圈連接,並藉由第N條該第二導線與第1組該第一電樞線圈連接;2M組控制單元,且每一該等控制單元分別對應於其中一該等第二環形電樞單元,每一該等控制單元均包括N個第一控制開關與N個第二 控制開關,且第(j)個第一控制開關是連接於一直流第一極性電源與其所對應該第二環形電樞單元中的該第(j)條第二導線之間,第(j)個第二控制開關則是連接於一直流第二極性電源與其所對應的該第二環形電樞單元中的該第(j)條第二導線之間,該直流第一極性電源與該直流第二極性電源之極性相反,其中(j)為自然數,且1≦(j)≦N;一磁性單元,設置於該第一環形電樞單元內,該磁性單元具有M對磁極,且該第一環形電樞單元與該磁性單元可受控制地相對轉動;以及一位置感應器,用以偵測該磁性單元之位置,並將該位置之資訊輸出至該等控制單元,進而使該等控制單元分別輸出一控制訊號,以控制該等控制單元中的各個該等第一、第二控制開關的開啟或關閉。
- 9如申請專利範圍第8項所述之無刷直流旋轉電機,該磁性單元為一永磁式磁鐵或磁激式磁鐵。
- 10如申請專利範圍第9項所述之無刷直流旋轉電機,該位置感應器為一解角器(resolver)、編碼器(encoder)、霍爾感應器(Hall sensor)、光遮斷器或光電感應器。
- 11如申請專利範圍第10項所述之無刷直流旋轉電機,更包括一第一雜訊抑制電路(snubber),設置於該直流第一極性電源與該等第一控制開關之間,以及一第二雜訊抑制電路(snubber),設置於該直流第二極性電源與該等第二控制開關之間。
- 12如申請專利範圍第8至11項中任一項所述之無刷直流旋轉電機,該等第一電樞線圈與該等第二電樞線圈可藉由波繞(wave winding)、疊繞(lap winding)或蛙腿繞(frog-leg winding)方式纏繞完成。
- 13如申請專利範圍第12項所述之無刷直流旋轉電機,該第一環形電樞單元為一環形定子,而該磁性單元為一磁性轉子。
- 14如申請專利範圍第12項所述之無刷直流旋轉電機,該第一環形電樞單元為一環形轉子,而該磁性單元為一磁性定子。
Independent claims14
57 paragraphs in 1 section, as filed
Brushless DC rotating motor
A BRUSH-LESS DC DYNAMO
The present invention relates to a DC rotating electrical machine, and more particularly to a brushless DC rotating electrical machine.
The conventional DC rotating electric machine (DC Dynamo) is equipped with a brush and a commutator (commutator) structure to maintain the rotor magnetic field and the stator magnetic field in a direction orthogonal to the maximum torque at any time during the rotation. At the same time, the DC rotating motor maintains a voltage proportional to the simple nature of the speed, and the control is natural and simple, so that it has always played an important role in the traditional speed control, servo control and other fields. The BLDC Dynamo, which is popular in the market today, has a structure similar to that of a permanent magnet type variable frequency synchronous rotating machine, which uses a multi-phase (three-phase) magnetic field to alternately grow and rotate at a 120-degree angle to form a rotatable angle. The rotating magnetic force of the variable speed drives the permanent magnet type rotor, or the electromotive force induced by the rotating permanent magnet type rotor is induced to extract the alternating current power through the multiphase (three phase) coil. Although this method is mature, its VVVF control method is quite complicated and unnatural. Therefore, we have sought a DC brushless rotating motor structure that is more similar to the traditional DC rotating motor control mode.
The present invention replaces the commutator segments (commutators) of the conventional brushed DC rotating electrical machine by the switching action of the semiconductor components, and practises the action of dynamically replacing the position of the armature connecting electrodes with the mechanical code, and switches to using static power electronic switches. Array, sequentially switching in no or no breakpoints, so that The armature current can still maintain the traditional mode of operation, while maintaining the armature current distribution during the rotation process just forms the direction of the rotor magnetic field and the stator magnetic field, and there is no mechanical friction or electrode spark of the commutating joint. The point of loss.
A feature of the present invention is to provide a brushless DC rotating electrical machine, comprising: a ring armature unit, comprising: N sets of first armature coils arranged in a sequential arrangement, and the first set of the first armature coils The Nth group of the first armature coils are adjacent to each other; the N sets of second armature coils positioned outside the first armature coils and sequentially arranged, and the first group of the second armature coils and the first The N sets of the second armature coils are adjacent to each other; and the plurality of first wires and the plurality of second wires are respectively connected between each of the first armature coils and each of the second armature coils; N is a natural number greater than 2, and the (i+1)th group of the first armature coil is connected to the (i+1)th group of the second armature coil by the (i+1)th first conductor And connecting, by the (i+1)th, the second wire and the (i+2)th group of the second armature coil, 1≦(i)≦N-2, and the first group of the first armature The coil is connected to the first group of the second armature coils by the first one of the first wires, and the second armature coil is connected to the second group of the second armature coils by the first one, and the Nth group The first armature coil is first by the Nth The wire is connected to the Nth group of the second coil, and is connected to the first group of the first armature coil by the Nth second wire; a control unit comprising N first control switches and N second controls a switch, and the (j)th first control switch is connected between the first-current power source of the first polarity and the second wire of the (j)th, and the (j)th second control switch is connected to the second stream Between the polar power source and the second wire of the (j)th, the DC first polarity power source and the DC second polarity power source have opposite polarities, wherein (j) is a natural number and 1≦(j)≦N; a magnetic unit disposed in the annular armature unit, the magnetic unit having a pair of magnetic poles, wherein the annular armature unit and the magnetic unit are controllably rotatable relative to each other; and a position sensor for detecting the magnetic unit And the information of the position is output to the control unit, so that the control unit outputs a control signal to control the opening or closing of each of the first and second control switches.
Another feature of the present invention is to provide a brushless DC rotating electrical machine as described above, and the magnetic unit is a permanent magnet magnet or a magnetostrictive magnet.
Another feature of the present invention is to provide a brushless DC rotating electrical machine as described above, and the position sensor is a resolver, an encoder, a Hall sensor, and a light shield. Breaker or photoelectric sensor.
Another feature of the present invention is to provide a brushless DC rotating electrical machine as described above, and further comprising a first noise suppression circuit (snubber) disposed between the DC first polarity power supply and the first control switches And a second noise suppression circuit (snubber) disposed between the DC second polarity power supply and the second control switch.
Another feature of the present invention is to provide a brushless DC rotating electrical machine as described above, and the first armature coils and the second armature coils can be wave-wound and lap-wound. ) or frog-leg winding is completed.
Another feature of the present invention is to provide a brushless DC rotating electrical machine as described above, and the annular armature unit is an annular stator, and the magnetic unit is a magnetic rotor.
Another feature of the present invention is to provide a brushless DC rotating electrical machine as described above, and the annular armature unit is an annular rotor and the magnetic unit is a magnetic stator.
Another feature of the present invention is to provide a brushless DC rotating electrical machine comprising: a first annular armature unit comprising M second annular armature units electrically connected to each other, M being a natural number equal to or greater than 2 And each of the second annular armature units includes: N sets of first armature coils arranged in a sequential arrangement, and the first set of the first armature coils and the Nth set of the first armature coils Adjacent; N sets of second armature coils positioned outside the first armature coils and sequentially arranged, and the first set of the second armature coils adjacent to the Nth group of the second armature coils And a plurality of first wires and a plurality of second wires are respectively connected between each of the first armature coils and each of the second armature coils; wherein N is a natural number greater than 2, and (i+1) the first armature coil is connected to the (i+1)th group of the second armature coil by the (i+1)th first conductor and by (i+1) The second wire is connected to the (i+2)th group of the second armature coil, 1≦(i)≦N-2, and the first group of the first armature coil is first by the first Wire and the first group of the second The first coil and the second armature coil are connected by the second conductor, and the first armature coil of the Nth group is the first conductor and the Nth group by the Nth The second coil is connected, and is connected to the first group of the first armature coils by the Nth second wire; 2M group control units, and each of the control units respectively corresponds to one of the second rings An armature unit, each of the control units including N first control switches and N second control switches, and the (j) first control switch is connected to the first-current first-polar power source and corresponding thereto Between the second (J) second wires in the two annular armature units, the (j) second control switch is connected to the DC current source and the corresponding second ring armature unit Between the second wires of the (j)th line, the DC first polarity power source and the DC second polarity power source have opposite polarities, wherein (j) is a natural number and 1≦(j)≦N; a magnetic unit Provided in the first annular armature unit, the magnetic unit has M pairs of magnetic poles, and the first annular armature unit and the magnetic The control unit can detect the position of the magnetic unit and output the information of the position to the control unit, so that the control units respectively output a control signal to Controlling the opening or closing of each of the first and second control switches in the control units.
Yet another feature of the present invention is to provide a brushless DC rotating electrical machine as described above, and the magnetic unit is a permanent magnet magnet or a magnetostrictive magnet.
Another feature of the present invention is to provide a brushless DC rotating electrical machine as described above, and the position sensor is a resolver, an encoder, a Hall sensor, and a light shield. Breaker or photoelectric sensor.
A further feature of the present invention is to provide a brushless DC rotating electrical machine as described above, and further comprising a first noise suppression circuit (snubber) disposed between the DC first polarity power supply and the first control switches And a second noise suppression circuit (snubber) disposed between the DC second polarity power supply and the second control switch.
Another feature of the present invention is to provide a brushless DC rotating electrical machine as described above, and the first armature coil and the second armature coils can be wave-wound and lap-wound. ) or frog-leg winding is completed.
Yet another feature of the present invention is to provide a brushless DC rotating electrical machine as described above, and wherein the first annular armature unit is an annular stator and the magnetic unit is a magnetic rotor.
Yet another feature of the present invention is to provide a brushless DC rotating electrical machine as described above, and wherein the first annular armature unit is an annular rotor and the magnetic unit is a magnetic stator.
<p>1b, 2b, 3b, 4b, 5b, 6b, 7b, 8b‧‧‧ first armature coil</p><p>1a, 2a, 3a, 4a, 5a, 6a, 7a, 8a‧‧‧ second armature coil</p><p>100‧‧‧DC rotating electric machine</p><p>110‧‧‧Circular armature unit</p><p>120‧‧‧Magnetic unit</p><p>131~138‧‧‧First wire</p><p>141~148‧‧‧second wire</p><p>151A~158A‧‧‧First control switch</p><p>151B~158B‧‧‧Second control switch</p><p>160‧‧‧First polarity power supply</p><p>170‧‧‧second polarity power supply</p><p>1b1, 2b1, 3b1, 4b1, 5b1, 6b1, 7b1, 8b1, 1b2, 2b2, 3b2, 4b2, 5b2, 6b2, 7b2, 8b2‧‧‧ first armature coil</p><p>1a1, 2a1, 3a1, 4a1, 5a1, 6a1, 7a1, 8a1, 1a2, 2a2, 3a2, 4a2, 5a2, 6a2, 7a2, 8a2‧‧‧ second armature coil</p><p>300‧‧‧DC rotating electric machine</p><p>301, 302‧‧‧2nd ring armature unit</p><p>310‧‧‧First ring armature unit</p><p>320‧‧‧Magnetic unit</p><p>131~138;131'~138'‧‧‧First wire</p><p>141~148;141'~148'‧‧‧second wire</p><p>150‧‧‧ wire</p><p>151A1~158A1; 151A2~158A2‧‧‧ first control switch</p><p>151B1~158B1;151B2~158B2‧‧‧Second control switch</p><p>160‧‧‧First polarity power supply</p><p>170‧‧‧second polarity power supply</p>
FIG. 1 to FIG. 3 are schematic diagrams showing the operation of the brushless DC rotating electrical machine 100 according to the first embodiment of the present invention.
Figure 4 shows an equivalent circuit diagram corresponding to Figure 1.
Fig. 5 shows an equivalent circuit diagram corresponding to Fig. 2.
Figure 6 shows an equivalent circuit diagram corresponding to Figure 3.
FIG. 7 to FIG. 8 are schematic diagrams showing the operation of the brushless DC rotating electrical machine 300 according to the second embodiment of the present invention.
Figure 9 shows an equivalent circuit diagram corresponding to Figure 7.
Fig. 10 shows an equivalent circuit diagram corresponding to Fig. 8.
The present invention replaces the commutator segments (commutators) of the conventional brushed DC rotating electrical machine by the switching action of the semiconductor components, and practises the action of dynamically replacing the position of the armature connecting electrodes with the mechanical code, and switches to using static power electronic switches. Arrays are sequentially switched in a contactless or non-breakpoint manner, so that the armature current can still maintain the traditional mode of operation, while maintaining the distribution of armature current during the rotation process. Just the direction of the rotor magnetic field is orthogonal to the stator magnetic field, and there is no mechanical wear or electrode spark loss of the commutating joint.
The manner in which the novel embodiments are made and used will be described in detail below. It should be noted, however, that the present invention provides a number of new concepts that can be applied, which can be implemented in a variety of specific styles. The specific embodiments discussed herein are merely illustrative of specific ways to make and use the present invention and are not intended to limit the scope of the present invention.
Embodiment 1
First, referring to FIG. 1 , a brushless DC rotating electrical machine 100 according to the first embodiment of the present invention includes an annular armature unit 110 and a permanent magnet or a magnetic magnet. The magnetic unit 120 is disposed in the annular armature unit 110, and the magnetic unit 120 has a pair of magnetic poles, which are composed of N poles and S poles which are opposite in magnetic origin and are respectively located at opposite ends of the magnetic unit 120, and The annular armature unit 110 and the magnetic unit 120 are controllably rotatable relative to each other. In the present embodiment, the magnetic unit 120 is a rotor, and the annular armature unit 110 is a stator, and the magnetic unit 120 is controllably rotatable relative to the annular armature unit 110; in other embodiments in accordance with the present invention, The magnetic unit 120 is a stator, and the annular armature unit 110 is a rotor that is rotatable relative to the magnetic unit 120, and details are not described herein.
As shown in FIG. 1 , taking an 8-slot armature coil as an example, the ring armature unit 110 includes eight sets of first armature coils arranged in sequence (1b, 2b, 3b, 4b, 5b, 6b). , 7b, 8b), and the first group first armature coil 1b is adjacent to the eighth group first armature coil 8b; the eighth group is located outside the first armature coil and arranged in the same order The armature coils (1a, 2a, 3a, 4a, 5a, 6a, 7a, 8a), and the first group of second armature coils 1a are adjacent to the eighth group of second armature coils 8a. The first armature coils (1b, 2b, 3b, 4b, 5b, 6b, 7b, 8b) and the second armature coils (1a, 2a, 3a, 4a, 5a, 6a, 7a, 8a) described above may be Winding is accomplished by means of wave winding, lap winding or frog-leg winding.
Next, please refer to FIG. 4, which shows an equivalent circuit diagram corresponding to FIG. 1. As shown in FIG. 4, the brushless DC rotating electrical machine 100 includes a plurality of first conductors 131, in addition to a ring-shaped armature unit 110 and a magnetic unit 120 composed of a permanent magnet or a magneto-magnet. 138 and a plurality of second wires 141 148 148 connected to each of the first armature coils (1b, 2b, 3b, 4b, 5b, 6b, 7b, 8b) and each of the second armature coils (1a) Between 2a, 3a, 4a, 5a, 6a, 7a, 8a). The second armature coil 2b of the second group is connected to the second armature coil 2a of the second group by the second first conductor 132, and the second armature coil 2b of the second group is provided by the second strip. The second wire 142 is connected to the third group second armature coil 3a; the third group first armature coil 3b is connected to the third group of the second armature coil 3a by the third first wire 133, and the third group The first armature coil 3b is connected by the third second wire 143 and the fourth group second armature coil 4a; the fourth group first armature coil 4b is connected to the fourth group by the fourth first wire 134 The second armature coil 4a is connected, and the fourth group of first armature coils 4b is connected by the fourth second wire 144 and the fifth group second armature coil 5a; the fifth group of first armature coils 5b The fifth first wire 135 is connected to the fifth group of the second armature coil 5a, and the fifth group of first armature coils 5b is connected by the fifth second wire 145 and the sixth group second armature The coil 6a is connected; the sixth group first armature coil 6b is connected to the sixth group of the second armature coil 6a by the sixth first wire 136, and the sixth group first armature coil 6b is connected by the sixth The second wire 146 is connected to the seventh group second armature coil 7a; the seventh The first armature coil 7b is connected to the seventh group of the second armature coils 7a by the seventh first wire 137, and the seventh group of first armature coils 7b is connected by the seventh second wire 147 and the 8 sets of second armature coils 8a are connected; 8th set of first armature coils 8b are connected to the 8th set of the second armature coils 8a by the 8th first wire 138, and the 8th set of first armature coils 8b is connected by the eighth second conductor 148 and the first group second armature coil 1a.
In other embodiments according to the present invention, the annular armature unit 110 may include N sets of first armature coils arranged in sequential intervals, and the first set of the first armature coils and the Nth set of the first armatures The coils are adjacent to each other; N sets of second armature coils arranged outside the first armature coils and sequentially arranged, and the first group of the second armature coils and the Nth group of the second armature coils Adjacent; and a plurality of first wires and a plurality of bars a second wire connected between each of the first armature coils and each of the second armature coils; wherein N is a natural number greater than 2, and the (i+1)th group of the first armature The coil is connected to the (i+1)th group of the second armature coil by the (i+1)th first conductor and the (i+1)th second conductor and the (i+2) a second armature coil connection, 1≦(i)≦N-2, and the first set of the first armature coils by the first strip of the first lead and the first set of the second armature coil Connecting, and connecting, by the first strip, the second wire to the second group of the second armature coils, and the Nth group of the first armature coils by the Nth first wire and the Nth group The two coils are connected and connected to the first group of the first armature coils by the Nth second wire.
In addition, as shown in FIG. 4, the brushless DC rotating electrical machine 100 further includes a control unit (no label) including eight first control switches 151A-158A and eight second control switches 151B-158B. The first first control switch 151A is connected between the DC first polarity power supply 160 and the first second wire 141, and the first second control switch 151B is connected to the DC current polarity power supply 170. The first second control switch 152A is connected between the first-current first polarity power supply 160 and the second second second wire 142, and the first second control switch 152B is connected to A DC second polarity power supply 170 is connected between the second second conductor 142; the third first control switch 153A is connected between the DC first polarity power supply 160 and the third second conductor 143, and the third The second control switch 153B is connected between the direct current second polarity power source 170 and the third second wire 143; the fourth first control switch 154A is connected to the direct current first polarity power supply 160 and the fourth second Between the wires 144, the fourth second control switch 154B is connected between the DC second polarity power supply 170 and the fourth second wire 144; the fifth first control switch 155A is connected to the DC first polarity. Between the power source 160 and the fifth second wire 145, the fifth second control switch 155B is connected to the first Flowing between the second polarity power source 170 and the fifth second wire 145; the sixth first control switch 156A is connected between the DC first polarity power source 160 and the sixth second wire 146, the sixth The second control switch 156B is connected between the direct current second polarity power source 170 and the sixth second wire 146; the seventh first control switch 157A is connected to the direct current first polarity power source 160 and the third second wire Between 147, the seventh second control switch 157B is connected to the DC second polarity power supply 170 and the seventh clause Between the two wires 147; the eighth first control switch 158A is connected between the DC first polarity power supply 160 and the eighth second wire 148, and the eighth second control switch 158B is connected to the DC current The polar power source 170 is connected to the eighth second conductor 148; the DC first polarity power source 160 is opposite in polarity to the DC second polarity power source 170.
In other embodiments according to the present invention, when the annular armature unit 110 includes N sets of first armature coils arranged in sequence, and N sets of positions outside the first armature coils and sequentially arranged In the second armature coil, the control unit includes N first control switches and N second control switches, and the (j) first control switch is connected to the DC first polarity power supply and the first (j) Between the second wires, the (j) second control switch is connected between the DC current source and the second conductor of the (j), the DC first polarity power supply and the DC second The polarity of the polar power source is reversed, where (j) is a natural number and 1 ≦ (j) ≦ N.
In addition, the brushless DC rotating electrical machine 100 disclosed in this embodiment further includes a position sensor (not shown) for detecting the position of the magnetic unit 120 and outputting information of the position to the control unit (not The control unit (not shown) outputs a control signal to control the opening or closing of each of the first control switches (151A-158A) and the second control switches (151B-158B). The position sensor may be a resolver, an encoder, a Hall sensor, a photo interrupter or a photoelectric sensor.
Next, please refer to FIG. 4, which shows that when the fourth second control switch 154B connected between the direct current second polarity power source 170 and the fourth second wire 144 is turned on, as in the fourth section. The second wire 144 is connected to a commutator segment, and the flow direction of the current originally located in the fourth wire 144 is changed, so that the current direction of the fourth group first armature coil 4b is emitted from the ring armature unit 110. The surface becomes incident on the surface of the annular armature unit 110 such that the current direction of the fifth group second armature coil 5a changes from the surface of the exiting annular armature unit 110 to the surface of the annular armature unit 110; When the eighth first control switch 158A between the polarity power source 160 and the eighth second wire 148 is turned on, as in the eighth The second conductor 148 is connected to a commutator segment, and the current flow in the eighth conductor 148 is changed, so that the current direction of the eighth group of first armature coils 8b is from the incident ring armature. The surface of the unit 110 becomes the surface of the exiting annular armature unit 110 such that the current direction of the first group of second armature coils 1a changes from the surface of the incident annular armature unit 110 to the surface of the exiting annular armature unit 110. Thereby, the magnetic unit 120 in FIG. 1 in this embodiment can be rotated by an angle with respect to the annular armature unit 110 due to the change of the sensed rotational torque direction, thereby forming an active state as shown in FIG. Brush the DC rotating motor 100.
Next, please refer to FIG. 2 and FIG. 5, wherein FIG. 5 shows an equivalent circuit diagram corresponding to FIG. 2. As shown in FIG. 5, when the third second control switch 153B connected between the direct current second polarity power source 170 and the third second wire 143 is turned on, like the third second wire 143 and one In the case of the commutator piece connection, the flow direction of the current originally located in the third second wire 143 is changed, so that the current direction of the third group first armature coil 3b is changed from the surface of the outgoing ring armature unit 110 to the incident ring electric power. The surface of the pivot unit 110 is such that the current direction of the fourth set of second armature coils 4a changes from the surface of the exiting annular armature unit 110 to the surface of the annular armature unit 110; and when connected to the DC first polarity power supply 160 and the seventh When the seventh first control switch 157A between the second wires 147 is turned on, as the seventh wire 147 is connected to a commutator segment, the current in the second wire 147 of the seventh strip is originally The flow direction is changed such that the current direction of the seventh group first armature coil 7b changes from the surface of the injection ring armature unit 110 to the surface of the exit ring armature unit 110, so that the current direction of the eighth group second armature coil 8a is emitted. The surface of the ring-shaped armature unit 110 becomes the injection ring-shaped armature unit 11 0 surface. Thereby, the magnetic unit 120 in FIG. 2 in this embodiment can be rotated by an angle with respect to the annular armature unit 110 due to the change of the sensed rotational torque direction, thereby forming an active state as shown in FIG. Brush the DC rotating motor 100.
Next, please refer to FIG. 3 and FIG. 6 , wherein FIG. 6 shows an equivalent circuit diagram corresponding to FIG. 3 . As shown in FIG. 6, when the second second control switch 152B connected between the direct current second polarity power source 170 and the second second wire 142 is turned on, like the second second wire 142 and one As the commutator segments are connected, the flow of current originally in the second second conductor 142 is changed, so that the second The current direction of the first armature coil 2b is changed from the surface of the exiting annular armature unit 110 to the surface of the annular armature unit 110, so that the current direction of the third group of second armature coils 3a is changed from the surface of the exiting annular armature unit 110. Injection into the surface of the annular armature unit 110; and when the sixth first control switch 156A connected between the direct current first polarity power source 160 and the seventh second wire 147 is turned on, like the sixth second wire 146 is connected to a commutator piece, and the flow direction of the current originally located in the second wire 146 of the sixth strip is changed, so that the current direction of the sixth armature coil 6b of the sixth group is changed from the surface of the injection ring armature unit 110. The surface of the annular armature unit 110 is injected such that the current direction of the seventh group second armature coil 7a changes from the surface of the injection ring armature unit 110 to the surface of the exit ring armature unit 110. Thereby, the magnetic unit 120 in FIG. 3 in this embodiment can be rotated by an angle with respect to the annular armature unit 110 because the sensed rotational torque direction changes.
Similarly, the brushless DC rotating electrical machine 100 in the actuated state as shown in FIG. 3 changes the opening and closing states of the respective first control switches (151A to 158A) and the respective second control switches (151B to 158B). The first armature coil (1b, 2b, 3b, 4b, 5b, 6b, 7b, 8b) and the second armature coil (1a, above) can be constantly changed like the conventional brushed DC commutator The direction of the current in each of the second wires (141 to 148) between 2a, 3a, 4a, 5a, 6a, 7a, 8a) is changed, so that the direction of the rotational torque sensed by the magnetic unit 120 is continuously changed. The function of a brushless DC rotating motor.
In addition, in other embodiments of the present invention, a first snubber (not shown) may be included, and the DC first polarity power supply 160 and the first control switch first control switch are disposed. Between (151A and 158A), and a second noise suppression circuit (snubber) (not shown), disposed in the DC second polarity power supply 170 and the second control switch first control switch (151B~158B) between.
Embodiment 2
Referring to FIG. 7, a brushless DC rotating electrical machine 300 according to another embodiment of the present invention includes a first annular armature unit 310 and a permanent magnet or magnetic excitation. A magnetic unit 320 composed of a magnet is disposed in the first annular armature unit 310. The magnetic unit 320 has two pairs of magnetic poles, and the annular armature unit 310 and the magnetic unit 320 are controllably rotatable relative to each other. In the present embodiment, the magnetic unit 320 is a rotor, and the annular armature unit 310 is a stator, and the magnetic unit 320 is controllably rotatable relative to the annular armature unit 310; in other embodiments in accordance with the present invention, The magnetic unit 320 is a stator, and the annular armature unit 110 is a rotor that is rotatable relative to the magnetic unit 120, and details are not described herein.
The first annular armature unit 310 includes two second annular armature units 301, 302 that are electrically connected to each other.
Taking the 8-slot armature coil as an example, the second annular armature unit 301 includes eight sets of first armature coils (1b1, 2b1, 3b1, 4b1, 5b1, 3b1, 7b1, 8b1) arranged in sequence. And the first armature coil 1b1 of the first group is adjacent to the first armature coil 8b1 of the eighth group; the eighth group is located at the first armature coil (1b1, 2b1, 3b1, 4b1, 5b1, 3b1, 7b1) 8b1) second armature coils (1a1, 2a1, 3a1, 4a1, 5a1, 6a1, 7a1, 8a1) arranged outside and sequentially, and the first group of second armature coils 1a1 and the eighth group of second batteries The pivot coils 8a1 are adjacent to each other. The first armature coils (1b1, 2b1, 3b1, 4b1, 5b1, 6b1, 7b1, 8b1) and the second armature coils (1a1, 2a1, 3a1, 4a1, 5a1, 6a1, 7a1, 8a1) described above may be Winding is accomplished by means of wave winding, lap winding or frog-leg winding. Similarly, taking an 8-slot armature coil as an example, the other second annular armature unit 302 includes eight sets of first armature coils arranged in sequence (1b2, 2b2, 3b2, 4b2, 5b2, 6b2). , 7b2, 8b2), and the first group first armature coil 1b2 is adjacent to the eighth group first armature coil 8b2; the eighth group is located at the first armature coil (1b2, 2b2, 3b2, 4b2, 5b2) , 6b2, 7b2, 8b2) second armature coils (1a2, 2a2, 3a2, 4a2, 5a2, 6a2, 7a2, 8a2) arranged outside and sequentially, and the first set of second armature coils 1a2 and The eight sets of second armature coils 8a2 are adjacent to each other. The first armature coils (1b2, 2b2, 3b2, 4b2, 5b2, 6b2, 7b2, 8b2) and the second armature coils (1a2, 2a2, 3a2, 4a2, 5a2, 6a2, 7a2, 8a2) described above The same can be done by wave winding, lap winding or frog-leg. Winding) and other ways to complete the winding. As shown in FIG. 7, the first armature coils (1b1, 2b1, 7b1, 8b1) on the second annular armature unit 301 and the first armature coils (1b2, 2b2) on the second annular armature unit 302 are shown. The current direction of 7b2, 8b2) is the surface incident on the first annular armature unit 300, and the second armature coil on the second annular armature unit 301 is the second armature coil (1a1, 2a1, 7a1, 8a1) And the second armature coil second armature coil (1a2, 2a2, 7a2, 8a2) on the second annular armature unit 302 is a surface that emits the first annular armature unit 300; further, the second annular armature unit The current direction of the first armature coils (3b1, 4b1, 5b1, 6b1) on the 301 and the first armature coils (3b2, 4b2, 5b2, 6b2) on the second annular armature unit 302 is the first ring The surface of the armature unit 300, and the second armature coils on the second annular armature unit 301, the second armature coils (3a1, 4a1, 5a1, 6a1) and the second armature on the second annular armature unit 302 The coil second armature coils (3a2, 4a2, 5a2, 6a2) are surfaces that exit the first annular armature unit 300;
In other embodiments according to the present invention, the second annular armature units 301, 302 may respectively include N sets of first armature coils arranged in sequence, and the first set of the first armature coils and the first N sets the first armature coils adjacent to each other; N sets a second armature coil positioned outside the first armature coils and sequentially arranged, and the first set of the second armature coils and the Nth The second armature coil is adjacent to each other; and the plurality of first wires and the plurality of second wires are respectively connected between each of the first armature coils and each of the second armature coils; wherein, N a natural number greater than 2, and the (i+1)th group of the first armature coil is connected to the (i+1)th group of the second armature coil by the (i+1)th first conductor And connecting, by the (i+1)th, the second wire and the (i+2)th group of the second armature coil, 1≦(i)≦N-2, and the first group of the first armature coil And connecting, by the first one, the first wire to the first armature coil of the first group, and connecting the second wire to the second armature coil of the second group by the first one, and the Nth group An armature coil is by the Nth first wire and the first The N sets of the second coil are connected, and the Nth wire is connected to the first group of the first armature coils by the Nth.
Next, please refer to Fig. 9, which shows an equivalent circuit diagram corresponding to Fig. 7. As shown in FIG. 9, the brushless DC rotating motor 300 further includes a plurality of first wires 131 to 138 and a plurality of second wires. The wires 141 to 148 are respectively connected to the first armature coils (1b1, 2b1, 3b1, 4b1, 5b1, 6b1, 7b1, 8b1) and the respective second armature coils (1a1, 2a1, 3a1, 4a1) Between 5a1, 6a1, 7a1, 8a1). The second set of first armature coils 2b1 on the second annular armature unit 301 is connected to the second set of the second armature coils 2a1 by the second first wire 132, and the second set of first armatures The coil 2b1 is connected by the second second wire 142 and the third group second armature coil 3a1; the third group first armature coil 3b1 is connected to the third group by the third wire 133 and the third group The pivot coil 3a1 is connected, and the third group first armature coil 3b1 is connected by the third second wire 143 and the fourth group second armature coil 4a1; the fourth group first armature coil 4b1 is connected by the fourth The first wire 134 is connected to the fourth group of the second armature coils 4a1, and the fourth group of first armature coils 4b1 is connected by the fourth second wire 144 and the fifth group second armature coil 5a1; The fifth group first armature coil 5b1 is connected to the fifth group of the second armature coils 5a1 by the fifth first wire 135, and the fifth group first armature coil 5b1 is connected by the fifth second wire 145 is connected to the sixth group second armature coil 6a1; the sixth group first armature coil 6b1 is connected to the sixth group of the second armature coil 6a1 by the sixth first wire 136, and the sixth group is first Armature coil 6b1 and by the sixth and second The wire 146 is connected to the seventh group second armature coil 7a1; the seventh group first armature coil 7b1 is connected to the seventh group of the second armature coil 7a1 by the seventh first wire 137, and the seventh group An armature coil 7b1 is connected by the seventh second wire 147 and the eighth group second armature coil 8a1; the eighth group first armature coil 8b1 is made of the eighth first wire 138 and the eighth group The second armature coil 8a1 is connected, and the eighth group first armature coil 8b1 is connected by the eighth second wire 148 and the first group second armature coil 1a1.
As shown in FIG. 9, the brushless DC rotating motor 300 further includes a plurality of first wires 131'-138' and a plurality of second wires 141'-148' connected to the first armature coils (1b2). And 2b2, 3b2, 4b2, 5b2, 6b2, 7b2, 8b2) are interposed between each of the second armature coils (1a2, 2a2, 3a2, 4a2, 5a2, 6a2, 7a2, 8a2). The second set of first armature coils 2b2 on the second annular armature unit 302 is connected to the second set of the second armature coils 2a2 by the second first wire 132, and the second set of first armatures The coil 2b2 is connected by the second second wire 142 and the third group second armature coil 3a2; the third group The first armature coil 3b2 is connected to the third group of the second armature coils 3a2 by the third first wire 133, and the third group of first armature coils 3b2 is connected by the third second wire 143 and the third 4 sets of second armature coils 4a2 are connected; 4th set of first armature coils 4b2 are connected to the 4th set of the second armature coils 4a2 by the 4th first wire 134, and the 4th set of first armature coils 4b2 and connected by the fourth second wire 144 and the fifth group second armature coil 5a2; the fifth group first armature coil 5b2 by the fifth first wire 135 and the fifth group of the second armature The coil 5a2 is connected, and the fifth group first armature coil 5b2 is connected by the fifth second wire 145 and the sixth group second armature coil 6a2; the sixth group first armature coil 6b2 is made of the sixth The first wire 136 is connected to the sixth group of the second armature coil 6a2, and the sixth group of first armature coils 6b2 is connected by the sixth second wire 146 and the seventh group second armature coil 7a2; The seven sets of first armature coils 7b2 are connected to the seventh group of the second armature coils 7a2 by the seventh first wire 137, and the seventh group of first armature coils 7b2 are connected by the seventh second wire 147. Connecting with the eighth group second armature coil 8a2; The eight sets of first armature coils 8b2 are connected to the eighth group of the second armature coils 8a2 by the eighth first wire 138, and the eighth group of first armature coils 8b2 are connected by the eighth second wire 148. It is connected to the first group second armature coil 1a2. In addition, the second annular armature units 301, 302 are electrically connected to each other by a wire 150.
In addition, as shown in FIG. 9, the brushless DC rotating motor 300 further includes a control unit (not numbered), including eight first control switches 151A1 to 158A1 and eight for controlling the second annular armature unit 301. Two control switches 151B1 - 158B1, and eight first control switches 151A2 - 158A2 and eight second control switches 151B2 - 158B2 for controlling the second toroidal armature unit 302.
As shown in FIG. 9, the first first control switch 151A1 is connected between the DC first polarity power supply 160 and the first second wire 141, and the first second control switch 151B1 is connected to the The second polarity power source 170 is connected between the first and second conductors 141; the second first control switch 152A1 is connected between the first-current power source 160 and the second conductor 142, the first The second control switch 152B1 is connected between the direct current second polarity power source 170 and the second second wire 142; the third first control switch 153A1 is connected to the direct current first polarity power source 160 and the third second wire Between 143, 3rd The second control switch 153B1 is connected between the DC second polarity power supply 170 and the third second wire 143; the fourth first control switch 154A1 is connected to the DC first polarity power supply 160 and the fourth Between the two wires 144, the fourth second control switch 154B1 is connected between the direct current second polarity power source 170 and the fourth second wire 144; the fifth first control switch 155A1 is connected to the first stream. Between the polarity power supply 160 and the fifth second wire 145, the fifth second control switch 155B1 is connected between the DC second polarity power supply 170 and the fifth second wire 145; the sixth first control switch 156A1 is connected between the DC first polarity power supply 160 and the sixth second wire 146, and the sixth second control switch 156B1 is connected between the DC second polarity power supply 170 and the sixth second wire 146. The seventh first control switch 157A1 is connected between the direct current first polarity power supply 160 and the third second second wire 147, and the seventh second control switch 157B1 is connected to the direct current second polarity power supply 170 and the 7 between the second wires 147; the 8th first control switch 158A1 is connected to the Between the first polarity power supply 160 and the eighth second conductor 148, the eighth second control switch 158B1 is connected between the DC current polarity power supply 170 and the eighth second conductor 148; the DC first polarity The power source 160 is opposite in polarity to the DC second polarity power source 170 described above.
Further, as shown in FIG. 9, the first first control switch 151A2 is connected between the DC first polarity power supply 160 and the first second wire 141', and the first second control switch 151B2 is connected to A DC second polarity power supply 170 is connected between the first second conductor 141'; the second first control switch 152A2 is connected between the DC first polarity power supply 160 and the second second conductor 142'. One second control switch 152B2 is connected between the DC second polarity power supply 170 and the second second wire 142'; the third first control switch 153A2 is connected to the DC first polarity power supply 160 and the third Between the second wires 143', the third second control switch 153B2 is connected between the DC second polarity power supply 170 and the third second wire 143'; the fourth first control switch 154A2 is connected to Between the DC first polarity power supply 160 and the fourth second wire 144', the fourth second control switch 154B2 is connected between the DC second polarity power supply 170 and the fourth second wire 144'; The five first control switches 155A2 are connected between the direct current first polarity power source 160 and the fifth second wire 145, the fifth The second control switch 155B2 is connected to the second pole of the current Between the power source 170 and the fifth second conductor 145'; the sixth first control switch 156A2 is connected between the DC first polarity power supply 160 and the sixth second conductor 146', the sixth and second The control switch 156B2 is connected between the DC current source 210 and the sixth conductor 146'; the seventh first control switch 157A2 is connected to the DC current source 160 and the third conductor Between the 147', the seventh second control switch 157B2 is connected between the DC second polarity power supply 170 and the seventh second conductor 147'; the eighth first control switch 158A2 is connected to the first stream. Between the polarity power source 160 and the eighth second conductor 148', the eighth second control switch 158B2 is connected between the DC current source 170 and the eighth conductor 148'; the DC first polarity The power source 160 is opposite in polarity to the DC second polarity power source 170 described above.
In other embodiments according to the present invention, when the second annular armature unit 301, 302 includes N sets of first armature coils arranged in sequence, and N sets of second armature coils arranged in sequence. The brushless DC rotating electrical machine 300 includes a 2M group control unit, and each of the control units respectively corresponds to one of the second annular armature units 301 or 302, and each of the control units includes N first Controlling the switch and the N second control switches, and the (j)th first control switch is connected to the first (j) second wire in the direct current first polarity power source and the corresponding second ring armature unit The (j) second control switch is connected between the second-polar power source and the second (j) second wire of the second annular armature unit corresponding thereto, the DC The polar power source is opposite to the polarity of the DC second polarity power source, wherein (j) is a natural number and 1 ≦ (j) ≦ N.
In addition, the brushless DC rotating motor 300 disclosed in this embodiment further includes a position sensor (not shown) for detecting the position of the magnetic unit 320 and outputting information of the position to the control unit (not Marked), and then the control unit (not shown) outputs a control signal to control each of the first control switches (151A~158A; 151A'-158A') and the second control switch (151B~158B; 151B'~ 158B') is turned on or off. The position sensor may be a resolver, an encoder, a Hall sensor, a photo interrupter or a photoelectric sensor.
Next, please continue to refer to FIG. 9, when the second second control switches 152B1, 152B2 connected between the direct current second polarity power source 170 and the second second wire 142, 142' are turned on, as in the second The second conductors 142, 142' are connected to a commutator segment, and the flow of current originally located in the second second conductors 142, 142' is changed, so that the second group of the second annular armature unit 301 is The current direction of the armature coil 2b1 is changed from the surface of the exiting annular armature unit 110 to the surface of the annular armature unit 110, and the current direction of the third group of second armature coils 3a1 is changed from the surface of the exiting annular armature unit 110 to the incident ring. The surface of the armature unit 110, and the current direction of the second group of first armature coils 2b2 of the second annular armature unit 302 changes from the surface of the exiting annular armature unit 110 to the surface of the annular armature unit 110, the third group of the second group The current direction of the armature coil 3a2 changes from the surface of the exiting annular armature unit 110 to the surface of the annular armature unit 110; and when connected between the DC first polarity power supply 160 and the sixth second conductor 146, 146' When the sixth first control switch 156A1, 156A2 is turned on, As with the sixth conductor 146, 146' connected to a commutator segment, the current flow in the second conductor 146, 146' of the sixth conductor is changed, so that the second annular armature unit 301 The current direction of the six sets of first armature coils 6b1 changes from the surface of the injection ring armature unit 110 to the surface of the exit ring armature unit 110, and the current direction of the seventh group of second armature coils 7a1 is incident from the surface of the annular armature unit 110. The surface of the ring-shaped armature unit 110 is injected, and the current direction of the sixth group of first armature coils 6b2 of the second ring-shaped armature unit 302 is changed from the surface of the injection ring-shaped armature unit 110 to the surface of the ring-shaped armature unit 110, 7th. The current direction of the group second armature coil 7a2 changes from the surface of the injection ring armature unit 110 to the surface of the exit ring armature unit 110. Thereby, the magnetic unit 320 in this embodiment can be rotated as shown in FIG. 7 because the sensed direction of the rotating torque is changed and can be rotated by an angle with respect to the annular armature unit 310, as shown in FIG. The brushless DC rotating electrical machine 300 is shown in an actuated state.
Similarly, the brushless DC rotating motor 300 in the actuated state as shown in FIG. 9 can continue to change the opening and closing states of the respective first control switches (151A to 158A) and the respective second control switches (151B to 158B). The first armature coils (1b1, 2b1, 3b1, 4b1, 5b1, 6b1, 7b1, 8b1; 1b2, 2b2, 3b2, 4b2) can be constantly changed as in the conventional brushless DC commutator. 5b2, 6b2, 7b2, 8b2) and the above-described second armature coils (1a1, 2a1, 3a1, 4a1, 5a1, 6a1, 7a1, 8a1; 1a2, 2a2, 3a2, 4a2, 5a2, 6a2, 7a2, 8a2) The direction of the current in each of the second wires (141~148; 141'-148') is changed, so that the direction of the rotational torque experienced by the magnetic unit 320 is continuously changed to achieve the function of the brushless DC rotating motor.
In addition, in other embodiments of the present invention, a first snubber (not shown) may be included, and the DC first polarity power supply 160 and the first control switch first control switch are disposed. Between (151A~158A; 151A'~158A') and a second noise suppression circuit (snubber) (not shown), disposed on the DC second polarity power supply 170 and the second control switch first control switch Between (151B~158B; 151B'~158B').
Although the present invention has been disclosed in the preferred embodiments as described above, it is not intended to limit the present invention, and it is possible to change and combine the various embodiments described above without departing from the spirit and scope of the present invention. example.
Every citation, both ways
| Document | Relation | Office | Cited during |
|---|---|---|---|
| TWI724841B | Cited by | Taiwan Province of China | Examiner |
8 members in 5 offices
Priority claims2
| Document | Office | Kind | Date |
|---|---|---|---|
| 106206325 | Taiwan Province of China | U | |
| TW20170206325U | – | – | – |
Members8
| Document | Office | Kind | |
|---|---|---|---|
| TWM554665UThis record | Taiwan Province of China | U | |
| TWI624149B | Taiwan Province of China | B | |
| DE202018102285U1 | Germany | U1 | |
| JP3217306U | Japan | U | |
| US2018323668A1 | United States of America | A1 | |
| TW201843921A | Taiwan Province of China | A | |
| CN208285184U | China | U | |
| US10749397B2 | United States of America | B2 |
Numbers
- Publication
- M554665
- Publication, DOCDB
- M554665
- Publication, EPODOC
- TWM554665U
- Application
- 106206325
- Application, DOCDB
- 106206325
- Application, EPODOC
- TW20170206325U
Titles2
- English
- A brush-less DC dynamo
- Chinese
- 一種無刷直流旋轉電機
Classification
- IPC, 1
- H02P6 14