Nova Patents
EP1946830A1

Microreactor

Abstract

A microreactor capable of reaction between a sample and a mixed reagent consisting of a mixture of multiple reagents, which microreactor avoids the interposition of air between driven liquid and reagents and realizes high-precision controlling of the timing of mixing of reagents and other liquids, the mixing ratio of liquids, the pressure for liquid delivery, etc. Further, there is provided a method of liquid feeding making use of the same. Accordingly, flow channel (45a) branched at the position of infusion aperture (34b) from flow channel (45) by which opening (32) communicating with an external pump communicates with the infusion aperture (34b) is fitted with air vent flow channel (46) with its terminal open outward. Further, the flow channel resistance at flow of liquid through the air vent flow channel (46) is made greater than the flow channel resistance at flow of liquid through flow channel (44) from reagent accommodation part (33) starting from the branching portion of the branched flow channel (45a) to reagent delivery flow channel (43).

EP1946830A1, drawing sheet 1
Sheet 1 of 22

Term

0.1 yearsto projected expiry

Projected expiry 18 October 2026, counted from filing; an application has no term until it is granted.

  1. Priority
  2. Filed
  3. Published
  4. Today
  5. Projected expiry

8 claims: 6 independent, 2 dependent

  1. 1
    A microreactor, comprising in a plate like chip:a reagent storage section;the reagent storage section including: a storage chamber for storing a reagent therein;an inlet through which a driving solution is injected into the storage chamber;and an outlet through which the reagent is pushed out of the storage chamber by the driving solution having been injected, a reagent feed-out flow path which communicates with the reagent storage section and through which the reagent is fed out of the reagent storage section;an opening which communicates with the inlet of the reagent storage section through a flow path and is configured to communicate with an external pump for feeding the driving solution when the external pump is connected to the chip;a branch flow path which is branched off, at a branch section at a position of the inlet, from the flow path connecting the opening to the inlet;and an air evacuation flow path which is provided in the branch flow path, and whose distal end is open to an outside, wherein a flow path resistance of the air evacuation flow path when a liquid flows therethrough is greater than a flow path resistance of a flow channel when the liquid flows through the flow channel, the flow channel which starts from the branch section as a starting point and includes from the branch section to the reagent feed-out flow path.
  2. 3
    The microreactor of claims 1 or 2, wherein a flow path resistance of the air evacuation flow path when an air flows therethrough is smaller than a flow path resistance of the flow channel when the liquid flows therethrough, the flow channel which starts from the branch section as a starting point and includes from the reagent storage section to the reagent feed-out flow path.
  3. 4
    The microreactor of any one of claims 1 to 3, comprising:a water-repellent valve which is provided at the outlet of the reagent storage section;the water-repellent valve including: a liquid feed controlling flow passage which connects a flow path on a side of the reagent storage section to a flow path on a downstream side of the liquid-feed controlling flow passage, and have a cross-sectional area smaller than a cross-sectional area of these flow paths, wherein the water-repellent valve prevents a reagent from passing through unless a liquid feed pressure reaches a predetermined pressure and allows the reagent to pass through when the liquid feed pressure equal to or higher than the predetermined pressure is applied, and a flow rate Q of a liquid flowing into the branch section from the opening satisfies the following relationship: P / R L ≤ Q ≤ P / R A wherein: P is a pressure where a reagent passes through the water-repellent valve;R A is a flow path resistance where an air passes through the air evacuation flow path;and R L is a flow path resistance where a liquid passes through the air evacuation flow path.
  4. 5
    The microreactor of any one of claims 1 to 4, comprising:a plurality of the reagent storage sections;a plurality of the reagent feed-out flow paths;and a junction at which each of the plurality of the reagent feed-out flow paths meets, wherein a ratio between a fluid resistance of each of the air evacuation flow paths when a liquid flows therethrough is substantially the same as a ratio between a flow path resistance of each of the flow channels when a liquid flows therethrough, the flow channel which starts from the branch section as a starting point and includes from the reagent storage section to the reagent feed-out flow path.
  5. 6
    The microreactor of any one of claims 1 to 5, comprising:a reservoir section which is provided on an exit side of the air evacuation flow path for reserving the driving solution fed out through the air evacuation flow path.
  6. 8
    A method for feeding liquid by using the microreactor of any one of claims 1 to 3, the microreactor having:a water-repellent valve which is provided at the outlet of the reagent storage section;the water-repellent valve including: a liquid feed controlling flow passage which connects a flow path on a side of the reagent storage section to a flow path on a downstream side of the liquid controlling flow passage, and have a cross-sectional area smaller than a cross-sectional area of these flow paths, wherein the water-repellent valve prevents the reagent from passing through unless a liquid feed pressure reaches a predetermined pressure and allows the reagent to pass through when the liquid feed pressure equal to or more that the predetermined pressure is applied, the method comprises the step of: feeding a drive solution, wherein a flow rate Q of the driving solution flowing from the opening into the branch section satisfies the following relationship: P / R L ≤ Q ≤ P / R A wherein: P is a pressure where a reagent passes through the water-repellent valve;R A is a flow path resistance where an air passes through the air evacuation flow path;and R L is a flow path resistance where a liquid passes through the air evacuation flow path.