Claims
- 1. A fluid transferring system comprising:
a micropump having a chamber; a first fluid transferring portion connected to the chamber; and a second fluid transferring portion connected to the chamber, wherein at least one of the first and second fluid transferring portions comprises a pressure absorbing section for absorbing or alleviating a liquid vibrational pressure therein.
- 2. A fluid transferring system as claimed in claim 1, wherein each of the first and second fluid transferring portions comprises a flow channel or a fluid reservoir.
- 3. A fluid transferring system as claimed in claim 1, wherein the first and second fluid transferring portions are connected with the chamber through opening sections provided at the chamber, respectively.
- 4. A fluid transferring system as claimed in claim 1, wherein the first and second fluid transferring portions are connected with the chamber through closing valves, respectively.
- 5. A fluid transferring system as claimed in claim 1, wherein the pressure absorbing section comprises a wall section of which a thickness is thin enough to be deformed by being applied the liquid vibrational pressure.
- 6. A fluid transferring system as claimed in claim 5, wherein the wall section forms a portion of the at least one of first and second fluid transferring portions.
- 7. A fluid transferring system as claimed in claim 5, wherein a sum of the absolute values of a change in capacity of the at least one of the first and second fluid transferring portions that comprises the pressure absorbing sections caused by deformation when a unit pressure is applied thereto; and change in volume of a liquid residing in the at least one fluid transferring portions that comprises the pressure absorbing section when the same unit pressure is applied thereto is larger than the sum of the absolute values of a change in capacity of the chamber when a unit pressure is applied thereto and a change in volume of the liquid in the chamber when the same unit pressure is applied thereto.
- 8. A fluid transferring system as claimed in claim 1, wherein the pressure absorbing section is provided across a length {fraction (1/2)} or more times a wavelength of a pressure compressional wave corresponding to a driving cycle of the micropump in a fluid transferring direction of the at least one of first and second fluid transferring portions.
- 9. A fluid transferring system comprising:
a micropump having a chamber; a first fluid transferring portion connected to the chamber; and a second fluid transferring portion connected to the chamber, wherein at least one of the first and second fluid transferring portions comprises a pressure reflecting section for reflecting a part of a pressure compressional wave propagating in a direction of moving away from the chamber, to the chamber side.
- 10. A fluid transferring system as claimed in claim 9, wherein each of the first and second fluid transferring portions comprises a flow channels or a liquid reservoir.
- 11. A fluid transferring system as claimed in claim 9, wherein the first and second fluid transferring portions are connected with the chamber through opening sections provided at the chamber, respectively.
- 12. A fluid transferring system as claimed in claim 9, wherein the first and second fluid transferring portions are connected with the chamber through closing valves, respectively.
- 13. A fluid transferring system as claimed in claim 9, wherein the pressure reflecting section comprises a portion where an effective acoustic impedance is discontinuous.
- 14. A fluid transferring system as claimed in claim 9, wherein the pressure reflecting section comprises a flow channel which bends with a sharp angle.
- 15. A fluid transferring system comprising:
a micropump having a chamber to which a first opening section and a second opening section are formed, wherein, when a pressure in the chamber is raised or lowered, a change rate in flow channel resistance at the first opening section is smaller than a change rate in flow channel resistance at the second opening section; a first fluid transferring portion connected to the chamber though the first opening section; and a second fluid transferring portion connected to the chamber through the second opening section, wherein the first fluid transferring portion has a reflecting section for reflecting a part of a pressure compressional wave propagating in a direction of moving away from the chamber, to the chamber side.
- 16. A fluid transferring system as claimed in claim 15, wherein a distance in the first fluid transferring portion from the first opening section to the reflecting section is {fraction (1/2)} or less times a wavelength of a pressure compressional wave corresponding to a driving cycle of the micropump.
- 17. A fluid transferring system comprising a plurality of micropumps arranged in series with each other, each micropump being connected to a neighboring one of the plurality of micropumps through a connecting section of which a length is shorter than a half wavelength of a pressure compressional wave corresponding to a driving cycle of the micropumps.
- 18. A fluid transferring system as claimed in claim 17, wherein adjacent ones of the micropumps are driven in driving waveforms different each Other.
- 19. A fluid transferring system as claimed in claim 17, wherein adjacent ones of the micropumps are driven with driving phases difference each other.
- 20. A fluid transferring system as claimed in claim 17, wherein the length of the connecting section is not shorter than {fraction (1/4)} times the wavelength of the pressure compressional wave corresponding to the driving cycle of the micropumps.
- 21. A fluid transferring system comprising a plurality of micropumps arranged in series with each other, each micropump being connected to a neighboring one of the plurality of micropumps through a connecting section of which a length is not shorter {fraction (1/4)} times a wavelength of a pressure compressional wave corresponding to a driving cycle of the micropumps.
- 22. A micropump comprising:
a chamber; a first opening section including a plurality of sub-opening sections, each of the sub-opening sections being for connecting the chamber with a first fluid transferring portion, the sub-opening sections having an effective sectional area smaller than that of the first fluid transferring portion and showing, as a whole, a first flow channel resistance that changes depending on change in differential pressure between the chamber and the first fluid transferring portion; and a second opening section for connecting the chamber with a second fluid transferring portion, the second opening section having an effective sectional area smaller than that of a the second fluid transferring portion, the second opening section showing a second flow channel resistance that changes depending on change in differential pressure between the chamber and the second fluid transferring portion, wherein the differential pressure dependency of the first flow channel resistance is smaller than that of the second flow channel resistance.
- 23. A micropump as claimed in claim 22, further comprising:
a third opening section for connecting the chamber with a third fluid transferring portion, the third opening section having an effective sectional area smaller than that of a the third fluid transferring portion, the third opening section showing a third flow channel resistance that changes depending on change in differential pressure between the chamber and the third fluid transferring portion, wherein the differential pressure dependency of the first flow channel resistance is smaller than that of the third flow channel resistance.
- 24. A micropump as claimed in claim 22, wherein, in the sub-opening sections of the first opening section, the minimum of ratios of flow channel lengths to sectional areas of the respective sub-opening sections is larger than a ratio of flow channel length to the sectional area of the second opening section.
- 25. A fluid transferring system comprising:
a chamber; a first opening section for connecting the chamber with a first fluid transferring portion, the first opening section having an effective sectional area smaller than that of the first fluid transferring portion and showing a first flow channel resistance that changes depending on change in differential pressure between the chamber and the first fluid transferring portion; a second opening section for connecting the chamber with a second fluid transferring portion, the second opening section having an effective sectional area smaller than that of a the second fluid transferring portion, the second opening section showing a second flow channel resistance that changes depending on change in differential pressure between the chamber and the second fluid transferring portion; and a third opening section for connecting the chamber with a third fluid transferring portion, the third opening section having an effective sectional area smaller than that of a the third fluid transferring portion, the third opening section showing a third flow channel resistance that changes depending on change in differential pressure between the chamber and the third fluid transferring portion, wherein the differential pressure dependency of the first flow channel resistance is different from those of the second and third flow channel resistances.
- 26. A fluid transferring system as claimed in claim 25, wherein the differential pressure dependency of the second flow channel resistance is different from that of the third flow channel resistance.
- 27. A fluid transferring system as claimed in claim 25, wherein the differential pressure dependency of the first flow channel resistance is smaller than those of the second and third flow channel resistances.
- 28. A fluid transferring system as claimed in claim 27, wherein the first opening section comprises a plurality of first sub-opening sections each of which connects the chamber with the first fluid transferring portion.
- 29. A fluid transferring system as claimed in claim 28, wherein the second opening section comprises a plurality of second sub-opening sections each of which connects the chamber with the second fluid transferring portion.
- 30. A fluid transferring system as claimed in claim 29, wherein at least one of the first sub-opening sections has a uniform flow channel section and is larger in a ratio of a length of flow channel to a sectional area thereof than any one of those of the second sub-opening sections and the third opening section.
- 31. A fluid transferring system comprising:
a micropump comprising a chamber to which a first opening section and a second opening section are formed, the chamber having a first capacity, wherein, when a pressure in the chamber is raised or lowered, a change rate in flow channel resistance at the first opening section is smaller than a change rate in flow channel resistance at the second opening section; a fluid reservoir connected to the chamber though the first opening section, the fluid reservoir having a second capacity larger than the first capacity; and a fluid transferring portion connected to the chamber through the second opening section.
- 32. A fluid transferring system as claimed in claim 31, wherein the has no valve.
- 33. A fluid transferring system comprising:
a first micropump; a second micropump; a fluid transferring section having first and second head stream sections which are communicated with the first and the second micropumps, respectively, and which merge each other at a merging point, wherein the fluid transferring section further has a pressure absorbing section that is provided at at least one of the merging point, a middle point of the first head stream section, and a middle point of the second head stream section.
- 34. A fluid transferring system as claimed in claim 33, wherein at least one of the first and second micropumps has no valve.
Priority Claims (3)
Number |
Date |
Country |
Kind |
2002-088284 |
Mar 2002 |
JP |
|
2002-348285 |
Nov 2002 |
JP |
|
2002-348286 |
Nov 2002 |
JP |
|
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is based on Japanese Patent Application Nos. 2002-088284, 2002-348285, and 2002-348286 filed with Japan Patent Office on Mar. 27, 2002, Nov. 29, 2002, and Nov. 29, 2002, respectively, the entire content of which is hereby incorporated by reference.