Claims
- 1. (currently amended) a heat exchanger comprising:
a first coil assembly including an inlet manifold; an outlet manifold parallel to and spaced from the inlet manifold; and a plurality of tubes each operably connected to and linking the inlet and the outlet manifolds, each tube having a multiplicity of flow paths and a hydraulic diameter HD in the range of 0.07<about 0.08≦HD≦0.30.
- 2. (original) The heat exchanger of claim 1 wherein the multiplicity of flow paths are in a parallel arrangement.
- 3. (original) The heat exchanger of claim 2 further including fins arranged in heat transfer relation between adjacent tubes of the plurality of tubes.
- 4. (original) The heat exchanger of claim 3 wherein the fins have a sinusoidal shape.
- 5. (original) The heat exchanger of claim 3 wherein the fins have a corrugated shape.
- 6. (original) The heat exchanger of claim 3 wherein the multiplicity of flow paths have a similar cross sectional shape.
- 7. (original) The heat exchanger of claim 3 wherein the multiplicity of flow paths has at least first and second cross sectional shapes.
- 8. (original) The heat exchanger of claim 3 further including a device moving air across the first coil assembly and the heat exchanger is primarily formed of aluminum.
- 9. (currently amended) The heat exchanger of claim 3 further including a second coil assembly parallel to and spaced from the first coil assembly, each coil assembly lying in first and second respective planes which are substantially parallel to each other.
- 10. (original) The heat exchanger of claim 9 including a third coil assembly located between the first and second coil assemblies and lying in a third plane not parallel to the first and second planes.
- 11. (original) The heat exchanger of claim 10 further including a fourth coil assembly between the first and second coil assemblies and lying in a fourth plane not parallel to the first and second planes wherein the angle of the fourth plane is complementary to the angle of the third plane.
- 12. (currently amended) An air conditioning system comprising:
a compressor, a first heat exchanger, a fan motivating air across the first heat exchanger, an expansion device and a second heat exchanger serially linked into an air conditioning cycle by tubing; the first heat exchanger including an inlet manifold, an outlet manifold, and a multiplicity of adjacent flow paths of similar cross sectional area surrounded by a common tube wall and interconnecting the inlet manifold with the outlet manifold wherein the flow paths are sized and shaped to form a preferred hydraulic diameter HD within the range of about 0.08≦HD<to 0.30 inches where hydraulic diameter HD is defined as four times the cross sectional area of the flow paths divided by the total wetted perimeter of the flow paths.
- 13. (original) The system of claim 12 wherein the multiplicity of adjacent flow paths are of similar cross sectional area and are formed of aluminum.
- 14. (canceled)
- 15. (original) The system of claim 14 wherein the first heat exchanger includes first, second, third and fourth coil assemblies, each coil assembly including the multiplicity of flow paths, and said first, second, third and fourth coil assemblies each having a planar dimension such that the coil assemblies form a W shape when viewed in a direction perpendicular to a common plane to first, second, third and fourth coil assemblies.
- 16. (original) The system of claim 14 wherein the multiplicity of flow paths are of identical size and shape.
- 17. (original) The system of claim 14 wherein the multiplicity of flow paths are in first and second differing shapes.
- 18. (original) The system of claim 17 wherein the first shape is rectangular and the second shape includes an arced surface.
- 19. (currently amended) A method of manufacturing an air cooled chiller comprising the steps of:
forming a first heat exchanger to include a multiplicity of adjacent flow paths wherein the flow paths are sized and shaped to a preferred hydraulic diameter HD within the range of 0.7<about 0.08≦HD≦0.30 inches; providing a fan to move air across the multiplicity of adjacent flow paths; providing a compressor, a second heat exchanger, and an expansion device; and linking the compressor, the first heat exchanger, the expansion device, and the second heat exchanger serially into an air conditioning cycle by tubing.
- 20. (original) The method of claim 19 including the further step of:
adaptively configuring the second heat exchanger to chill the temperature of a liquid.
- 21. (original) The method of claim 19 including the further step of:
forming the first heat exchanger from aluminum.
- 22. (original) The method of claim 21 including the further step of interconnecting adjacent ones of the multiplicity of flow paths with a corrugated or sinusoidal fin.
- 23. (original) The method of claim 22 including the step of arranging the multiplicity of flow paths in a common plane.
- 24. (currently amended) A method of transferring heat in a heat exchanger comprising the steps of:
forming a first heat exchanger to include a multiplicity of adjacent flow paths wherein the flow paths are sized and shaped to a preferred hydraulic diameter HD within the range of 0.7<about 0.08≦HD<0.30 inches; and transferring heat thru a wall enclosing said flow paths and to a away from fluid contained therein.
- 25. (original) The method of claim 24 including forming the wall from aluminum.
- 26. (original) The method of claim 25 including forming the flow paths into first and second distinct cross-sectional shapes.
- 27. (new) The heat exchanger of claim 1 wherein the hydraulic diameter ranges between about 0.08≦HD≦about 0.15.
- 28. (new) The heat exchanger of claim 27 wherein a 90 inch flow path has a hydraulic diameter of about 0.08.
- 29. (new) The heat exchanger of claim 27 wherein a 110 inch flow path has a hydraulic diameter of about 0.1.
- 30. (new) The heat exchanger of claim 27 wherein a 130 inch flow path has a hydraulic diameter of about 0.12.
- 31. (new) The heat exchanger of claim 27 wherein a 150 inch flow path has a hydraulic diameter of about 0.13.
- 32. (new) The heat exchanger of claim 27 wherein a 200 inch flow path has a hydraulic diameter of about 0.14.
- 33. (new) The heat exchanger of claim 27 wherein a 250 inch flow path has a hydraulic diameter of about 0.15.
- 34. (new) The air conditioning system of claim 12 wherein the preferred hydraulic diameter is within the range of about 0.08≦HD≦of about 0.15.
- 35. (new) The air conditioning system of claim 34 wherein a 90 inch flow path has a hydraulic diameter of about 0.08.
- 36. (new) The air conditioning system of claim 34 wherein a 110 inch flow path has a hydraulic diameter of about 0.1.
- 37. (new) The air conditioning system of claim 34 wherein a 130 inch flow path has a hydraulic diameter of about 0.12.
- 38. (new) The air conditioning system of claim 34 wherein a 150 inch flow path has a hydraulic diameter of about 0.13.
- 39. (new) The air conditioning system of claim 34 wherein a 200 inch flow path has a hydraulic diameter of about 0.14.
- 40. (new) The air conditioning system of claim 34 wherein a 250 inch flow path has a hydraulic diameter of about 0.15.
- 41. (new) The method of claim 19 wherein the forming step includes sizing and shaping the flow paths to a hydraulic diameter within the range of about 0.08≦HD≦of about 0.15.
- 42. (new) The method of claim 41 including sizing the flow paths to a length of about 90 inches and shaping them to a preferred hydraulic diameter of about 0.08.
- 43. (new) The method of claim 41 including sizing the flow paths to a length of about 110 inches and shaping them to a preferred hydraulic diameter of about 0.1.
- 44. (new) The method of claim 41 including sizing the flow paths to a length of about 130 inches and shaping them to a preferred hydraulic diameter of about 0.12.
- 45. (new) The method of claim 41 including sizing the flow paths to a length of about 150 inches and shaping them to a preferred hydraulic diameter of about 0.13.
- 46. (new) The method of claim 41 including sizing the flow paths to a length of about 200 inches and shaping them to a preferred hydraulic diameter of about 0.14.
- 47. (new) The method of claim 41 including sizing the flow paths to a length of about 250 inches and shaping them to a preferred hydraulic diameter of about 0.15.
- 48. (new) The method of claim 24 wherein the forming step includes sizing and shaping the flow paths to a hydraulic diameter within the range of about 0.08≦HD≦of about 0.15.
- 49. (new) The method of claim 48 including sizing the flow path to a length of about 90 inches and shaping them to a preferred hydraulic diameter of about 0.08.
- 50. (new) The method of claim 48 including sizing the flow path to a length of about 110 inches and shaping them to a preferred hydraulic diameter of about 0.1.
- 51. (new) The method of claim 48 including sizing the flow path to a length of about 130 inches and shaping them to a preferred hydraulic diameter of about 0.12.
- 52. (new) The method of claim 48 including sizing the flow path to a length of about 150 inches and shaping them to a preferred hydraulic diameter of about 0.13.
- 53. (new) The method of claim 48 including sizing the flow path to a length of about 200 inches and shaping them to a preferred hydraulic diameter of about 0.14.
- 54. (new) The method of claim 48 including sizing the flow path to a length of about 250 inches and shaping them to a preferred hydraulic diameter of about 0.15.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This is a Continuation-In-Part of U.S. patent application Ser. No. 09/881,638 filed 14 Jun. 2001.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09881638 |
Jun 2001 |
US |
Child |
10742051 |
Dec 2003 |
US |