Claims
- 1. A method of removing the products of corrosion, oxidation, sedimentation and comparable chemical reactions collectively known as sludge which settle on the bottom of a tube bundle heat exchanger and form a pile of sludge, the tube bundle heat exchanger characterized by a tube bundle heat exchanger wall and a thick metal plate known as a tube sheet near the lower portion of the tube bundle heat exchanger wall's interior surface, the tube sheet serving to support the lower ends of a multiplicity of heat exchanger tubes within the tube bundle heat exchanger, the tube bundle heat exchanger wall further comprising a multiplicity of small holes known as hand holes, manways, drain lines and vents, located around its circumference and above the tube sheet, the method of removing the pile of sludge which settles on the tube sheet comprising:
- a. locating at least one air-gun type pressure pulse shock wave source outside the tube bundle heat exchanger so as to be able to introduce pressure pulse shock waves through one or more of the multiplicity of hand holes, manways, drain lines and vents;
- b. filling said tube bundle heat exchanger with a liquid to a level above said pile of sludge;
- c. activating the at least one air-gun type pressure pulse shock wave source to generate a repetitive series of explosive transient shock waves into said liquid and from said liquid into said pile of sludge such that the explosive transient shock waves and resultant liquid motion serve to agitate and loosen the sludge;
- d. continuing the generation of repetitive, explosive, transient shock waves which are generated with pressure between approximately 50 pounds per square inch and 5000 pounds per square inch which result in energy predominantly in the frequency range between 1 Hertz and 1000 Hertz for each pulse to create transient shock waves which produce a pressure level of approximately 1/100th to 100 Bars in the liquid of Pressure at 1 meter;
- e. continuing the shock wave impact for approximately 1 to 24 hours whereby the impact of the repetitive explosive transient shock waves and resultant liquid motion serves to mechanically agitate and move the sludge in the liquid; and
- f. draining the liquid from the heat exchanger and removing said at least one air-gun type pressure pulse shock wave source.
- 2. The invention as defined in claim 1 wherein said tube bundle heat exchanger is filled with liquid to a level approximately 12 inches above the pile of sludge.
- 3. The invention as defined in claim 1 wherein said liquid is water.
- 4. The invention as defined in claim 3 wherein said tube bundle heat exchanger is filled with water to a level approximately 12 inches above the pile of sludge.
- 5. The invention as defined in claim 1, comprising the further step of flushing the tube sheet with a liquid after the heat exchanger is drained to remove remaining debris.
- 6. The invention as defined in claim 1 wherein the continuing shock wave impact and repetitive explosive transient shock waves and resultant liquid motion serves to permit the sludge to remain in suspension in said liquid and the heat exchanger is continuously flushed with said liquid which is circulated through an external cleaning system to remove suspended and dissolved contaminants from said liquid before it is returned to the heat exchanger.
- 7. The invention as defined in claim 6 wherein the external cleaning of the liquid is accomplished by the method of filtering.
- 8. The invention as defined in claim 6 wherein the external cleaning of the liquid is accomplished by the method of ion-exchange.
- 9. The invention as defined in claim 1 wherein said liquid is a chemical solvent.
- 10. The invention as defined in claim 1 wherein said heat exchanger is a steam generator.
- 11. A method of removing the products of corrosion, oxidation, sedimentation and comparable chemical reactions collectively known as sludge which settle on the bottom of a tube bundle heat exchanger and form a pile of sludge, the tube bundle heat exchanger characterized by a tube bundle heat exchanger wall and a thick metal plate known as a tube sheet near the lower portion of the tube bundle heat exchanger wall's interior surface, the tube sheet serving to support the lower ends of a multiplicity of heat exchanger tubes within the tube bundle heat exchanger, the tube bundle heat exchanger wall further comprising a multiplicity of small holes known as hand holes, manways, drain lines and vents, located around its circumference and above the tube sheet, the method of removing the pile of sludge which settles on the tube sheet comprising:
- a. introducing at least one air-gun type pressure pulse shock wave source through one or more of the multiplicity of hand holes, manways, drain lines and vents such that the at least one air-gun type pressure pulse shock wave source is located inside the tube bundle heat exchanger;
- b. filling said tube bundle heat exchanger with a liquid to a level above said pile of sludge;
- c. activating the at least one air-gun type pressure pulse shock wave source to generate a repetitive series of explosive transient shock waves into said liquid and from said liquid into said pile of sludge such that the explosive transient shock waves and resultant liquid motion serve to agitate and loosen the sludge;
- d. continuing the generation of repetitive, explosive, transient shock waves which are generated with pressure between approximately 50 pounds per square inch and 5000 pounds per square inch which result in energy predominantly in the frequency range between 1 Hertz and 1000 Hertz for each pulse to create transient shock waves which produce a pressure level of approximately 1/100th to 100 Bars in the liquid of Pressure at 1 meter;
- e. continuing the shock wave impact for approximately 1 to 24 hours whereby the impact of the repetitive explosive transient shock waves and resultant liquid motion serves to mechanically agitate and move the sludge in the liquid; and
- f. draining the liquid from the heat exchanger and removing said at least one air-gun type pressure pulse shock wave source.
- 12. The invention as defined in claim 11 wherein said tube bundle heat exchanger is filled with liquid to a level approximately 12 inches above the pile of sludge.
- 13. The invention as defined in claim 11 wherein said liquid is water.
- 14. The invention as defined in claim 13 wherein said tube bundle heat exchanger is filled with water to a level approximately 12 inches above the pile of sludge.
- 15. The invention as defined in claim 11, comprising the further step of flushing the tube sheet with a liquid after the heat exchanger is drained to remove remaining debris.
- 16. The invention as defined in claim 11 wherein the continuing shock wave impact and repetitive explosive transient shock waves and resultant liquid motion serves to permit the sludge to remain in suspension in the liquid and the heat exchanger is continuously flushed with said liquid which is circulated through an external cleaning system to remove suspended and dissolved contaminants from the liquid before it is returned to the heat exchanger.
- 17. The invention as defined in claim 16 wherein the external cleaning of the liquid is accomplished by the method of filtering.
- 18. The invention as defined in claim 16 wherein the external cleaning of the liquid is accomplished by the method of ion-exchange.
- 19. The invention as defined in claim 11 wherein said liquid is a chemical solvent.
- 20. The invention as defined in claim 11 wherein said heat exchanger is a steam generator.
- 21. A method of removing the products of corrosion, oxidation, sedimentation and comparable chemical reactions collectively known as sludge which settle on the tube support plates of a tube bundle heat exchanger and form a pile of sludge, the tube bundle heat exchanger characterized by a tube bundle heat exchanger wall and a series of tube support plates arranged transverse to and sequentially spaced along the longitudinal axis of a multiplicity of heat exchanger tubes and forming junctions therewith, the tube bundle heat exchanger further characterized by a thick metal plate known as a tube sheet near the lower portion of the heat exchanger wall, the tube sheet serving to support the lower ends of the heat exchanger tubes, the tube bundle heat exchanger wall further comprising a multiplicity of small holes known as hand holes, manways, drain lines and vents, located around its circumference and along the height of the tube bundle heat exchanger, the method of removing the pile of sludge which settles on the tube support plates and the junctions between the heat exchanger tubes and the tube support plates, comprising:
- a. locating at least one air-gun type pressure pulse shock wave source outside the tube bundle heat exchanger so as to be able to introduce pressure pulse waves through one or more of the multiplicity of hand holes, manways, drain lines and vents;
- b. filling said tube bundle heat exchanger with a liquid to a level at or above said tube support plate to be cleaned;
- c. activating the at least one air-gun type pressure pulse shock wave source to generate a repetitive series of explosive transient shock waves into said liquid and from said liquid into said pile of sludge and into the junctions between the tube support plate and the heat exchanger tubes such that the explosive transient shock waves and resultant liquid motion serve to agitate and loosen the sludge;
- d. continuing the generation of repetitive, explosive, transient shock waves which are generated with pressure between approximately 50 pounds per square inch and 5000 pounds per square inch which result in energy predominantly in the frequency range between 1 Hertz and 1000 Hertz for each pulse to create transient shock waves which produce a pressure level of approximately 1/100th to 100 Bars in the liquid of Pressure at 1 meter; and
- e. continuing the shock wave impact for approximately 1 to 24 hours whereby the impact of the repetitive explosive transient shock waves and resultant liquid motion serves to mechanically agitate and move the sludge in the liquid.
- 22. The invention as defined in claim 21 comprising the further step of draining the liquid from the heat exchanger and removing said at least one air-gun type pressure pulse shock wave source.
- 23. The invention as defined in claim 21 wherein said tube bundle heat exchanger is filled with liquid and the level of liquid is selectively varied.
- 24. The invention as defined in claim 21 wherein said liquid is water.
- 25. The invention as defined in claim 22, comprising the further step of flushing the tube sheet with a liquid after the heat exchanger is drained to remove remaining debris.
- 26. The invention as defined in claim 21 wherein the continuing shock wave impact and repetitive explosive transient shock waves and resultant liquid motion serves to permit the sludge to remain in suspension in said liquid and the heat exchanger is continuously flushed with said liquid which is circulated through an external cleaning system to remove suspended and dissolved contaminants from said liquid before it is returned to the heat exchanger.
- 27. The invention as defined in claim 26 wherein the external cleaning of the liquid is accomplished by the method of filtering.
- 28. The invention as defined in claim 26 wherein the external cleaning of the liquid is accomplished by the method of ion-exchange.
- 29. The invention as defined in claim 21 wherein said liquid is a chemical solvent.
- 30. The invention as defined in claim 21 wherein said heat exchanger is a steam generator.
- 31. A method of removing the products of corrosion, oxidation, sedimentation and comparable chemical reactions collectively known as sludge which settle on the tube support plates of a tube bundle heat exchanger and form a pile of sludge, the tube bundle heat exchanger characterized by a tube bundle heat exchanger wall and a series of tube support plates arranged transverse to and sequentially spaced along the longitudinal axis of a multiplicity of heat exchanger tubes and forming junctions therewith, the tube bundle heat exchanger further characterized by a thick metal plate known as a tube sheet near the lower portion of the heat exchanger wall, the tube sheet serving to support the lower ends of the heat exchanger tubes, the tube bundle heat exchanger wall further comprising a multiplicity of small holes known as hand holes, manways, drain lines and vents, located around its circumference and along the height of the tube bundle heat exchanger, the method of removing the pile of sludge which settles on the tube support plates and the junctions between the heat exchanger tubes and the tube support plates, comprising:
- a. introducing at least one air-gun type pressure pulse shock wave source through one or more of the multiplicity of hand holes, manways, drain lines and vents such that the at least one air-gun type pressure pulse shock wave source is located inside the tube bundle heat exchanger;
- b. filling said tube bundle heat exchanger with a liquid to a level at or above said tube support plate to be cleaned;
- c. activating the at least one air-gun type pressure pulse shock wave source to generate a repetitive series of explosive transient shock waves into said liquid and from said liquid into said pile of sludge and into the junctions between the tube support plate and the heat exchanger tubes such that the explosive transient shock waves and resultant liquid motion serve to agitate and loosen the sludge;
- d. continuing the generation of repetitive, explosive, transient shock waves which are generated with pressure between approximately 50 pounds per square inch and 5000 pounds per square inch which result in energy predominantly in the frequency range between 1 Hertz and 1000 Hertz for each pulse to create transient shock waves which produce a pressure level of approximately 1/100th to 100 Bars in the liquid of Pressure at 1 meter; and
- e. continuing the shock wave impact for approximately 1 to 24 hours whereby the impact of the repetitive explosive transient shock waves and resultant liquid motion serves to mechanically agitate and move the sludge in the liquid.
- 32. The invention as defined in claim 31 comprising the further step of draining the liquid from the heat exchanger and removing said at least one air-gun type pressure pulse shock wave source.
- 33. The invention as defined in claim 31 wherein said tube bundle heat exchanger is filled with liquid and the level of liquid is selectively varied.
- 34. The invention as defined in claim 31 wherein said liquid is water.
- 35. The invention as defined in claim 32, comprising the further step of flushing the tube sheet with a liquid after the heat exchanger is drained to remove remaining debris.
- 36. The invention as defined in claim 31 wherein the continuing shock wave impact and repetivie explosive transient shock waves and resultant liquid motion serves to permit the sludge to remain in suspension in said liquid and the heat exchanger is continuously flushed with said liquid which is circulated through an external cleaning system to remove suspended and dissolved contaminants from the liquid before it is returned to the heat exchanger.
- 37. The invention as defined in claim 36 wherein the external cleaning of the liquid is accomplished by the method of filtering.
- 38. The invention as defined in claim 36 wherein the external cleaning of the liquid is accomplished by the method of ion-exchange.
- 39. The invention as defined in claim 31 wherein said liquid is a chemical solvent.
- 40. The invention as defined in claim 31 wherein said heat exchanger is a steam generator.
- 41. A method of removing the products of corrosion, oxidation, sedimentation and comparable chemical reactions collectively known as sludge which settle on the bottom of a tube bundle heat exchanger and form a pile of sludge, the tube bundle heat exchanger characterized by a tube bundle heat exchanger wall and a thick metal plate known as a tube sheet near the lower portion of the tube bundle heat exchanger wall's interior surface, the tube sheet serving to support the lower ends of a multiplicity of heat exchanger tubes within the tube bundle heat exchanger, the tube bundle heat exchanger wall further comprising a multiplicity of small holes known as hand holes, manways, drain lines and vents, located around its circumference and above the tube sheet, the method of removing the pile of sludge which settles on the tube sheet comprising:
- a. locating at least one pressurized gas-type pressure pulse shock wave source outside the tube bundle heat exchanger so as to be able to introduce pressure pulse shock waves through one or more of the multiplicity of hand holes, manways, drain lines and vents;
- b. filling said tube bundle heat exchanger with a liquid to a level above said pile of sludge;
- c. activating the at least one pressurized gas-type pressure pulse shock wave source to generate a repetitive series of explosive transient shock waves into said liquid and from said liquid into said pile of sludge such that the explosive transient shock waves and resultant liquid motion serve to agitate and loosen the sludge;
- d. continuing the generation of repetitive, explosive, transient shock waves which are generated with pressure between approximately 50 pounds per square inch and 5000 pounds per square inch which result in energy predominantly in the frequency range between 1 Hertz and 1000 Hertz for each pulse to create transient shock waves which produce a pressure level of approximately 1/100th to 100 Bars in the liquid of Pressure at 1 meter;
- e. continuing the shock wave impact for approximately 1 to 24 hours whereby the impact of the repetitive explosive transient shock waves and resultant liquid motion serves to mechanically agitate and move the sludge in the liquid; and
- f. draining the liquid from the heat exchanger and removing said at least one pressurized gas-type pressure pulse shock wave source.
- 42. The invention as defined in claim 41 wherein said tube bundle heat exchanger is filled with liquid to a level approximately 12 inches above the pile of sludge.
- 43. The invention as defined in claim 41 wherein said liquid is water.
- 44. The invention as defined in claim 43 wherein said tube bundle heat exchanger is filled with water to a level approximately 12 inches above the pile of sludge.
- 45. The invention as defined in claim 41, comprising the further step of flushing the tube sheet with a liquid after the heat exchanger is drained to remove remaining debris.
- 46. The invention as defined in claim 41 wherein the continuing shock wave impact and repetitive explosive transient shock waves and resultant liquid motion serves to permit the sludge to remain in suspension in said liquid and the heat exchanger is continuously flushed with said liquid which is circulated through an external cleaning system to remove suspended and dissolved contaminants from said liquid before it is returned to the heat exchanger.
- 47. The invention as defined in claim 46 wherein the external cleaning of the liquid is accomplished by the method of filtering.
- 48. The invention as defined in claim 46 wherein the external cleaning of the liquid is accomplished by the method of ion-exchange.
- 49. The invention as defined in claim 41 wherein said liquid is a chemical solvent.
- 50. The invention as defined in claim 41 wherein said heat exchanger is a steam generator.
- 51. A method of removing the products of corrosion, oxidation, sedimentation and comparable chemical reactions collectively known as sludge which settle on the bottom of a tube bundle heat exchanger and form a pile of sludge, the tube bundle heat exchanger characterized by a tube bundle heat exchanger wall and a thick metal plate known as a tube sheet near the lower portion of the tube bundle heat exchanger wall's interior surface, the tube sheet serving to support the lower ends of a multiplicity of heat exchanger tubes within the tube bundle heat exchanger, the tube bundle heat exchanger wall further comprising a multiplicity of small holes known as hand holes, manways, drain lines and vents, located around its circumference and above the tube sheet, the method of removing the pile of sludge which settles on the tube sheet comprising:
- a. introducing at least one pressurized gas-type pressure pulse shock wave source through one or more of the multiplicity of hand holes, manways, drain lines and vents such that the at least one pressurized gas-type pressure pulse shock wave source is located inside the tube bundle heat exchanger;
- b. filling said tube bundle heat exchanger with a liquid to a level above said pile of sludge;
- c. activating the at least one pressurized gas-type pressure pulse shock wave source to generate a repetitive series of explosive transient shock waves into said liquid and from said liquid into said pile of sludge such that the explosive transient shock waves and resultant liquid motion serve to agitate and loosen the sludge;
- d. continuing the generation of repetitive, explosive, transient shock waves which are generated with pressure between approximately 50 pounds per square inch and 5000 pounds per square inch which result in energy predominantly in the frequency range between 1 Hertz and 1000 Hertz for each pulse to create transient shock waves which produce a pressure level of approximately 1/100th to 100 Bars in the liquid of Pressure at 1 meter;
- e. continuing the shock wave impact for approximately 1 to 24 hours whereby the impact of the repetitive explosive transient shock waves and resultant liquid motion serves to mechanically agitate and move the sludge in the liquid; and
- f. draining the liquid from the heat exchanger and removing said at least one pressurized gas-type pressure pulse shock wave source.
- 52. The invention as defined in claim 51 wherein said tube bundle heat exchanger is filled with liquid to a level approximately 12 inches above the pile of sludge.
- 53. The invention as defined in claim 51 wherein said liquid is water.
- 54. The invention as defined in claim 53 wherein said tube bundle heat exchanger is filled with water to a level approximately 12 inches above the pile of sludge.
- 55. The invention as defined in claim 51, comprising the further step of flushing the tube sheet with a liquid after the heat exchanger is drained to remove remaining debris.
- 56. The invention as defined in claim 51 wherein the continuing shock wave impact and repetitive explosive transient shock waves and resultant liquid motion serves to permit the sludge to remain in suspension in said liquid and the heat exchanger is continuously flushed with said liquid which is circulated through an external cleaning system to remove suspended and dissolved contaminants from said liquid before it is returned to the heat exchanger.
- 57. The invention as defined in claim 56 wherein the external cleaning of the liquid is accomplished by the method of filtering.
- 58. The invention as defined in claim 56 wherein the external cleaning of the liquid is accomplished by the method of ion-exchange.
- 59. The invention as defined in claim 51 wherein said liquid is a chemical solvent.
- 60. The invention as defined in claim 51 wherein said heat exchanger is a steam generator.
- 61. A method of removing the products of corrosion, oxidation, sedimentation and comparable chemical reactions collectively known as sludge which settle on the tube support plates of a tube bundle heat exchanger and form a pile of sludge, the tube bundle heat exchanger characterized by a tube bundle heat exchanger wall and a series of tube support plates arranged transverse to and sequentially spaced along the longitudinal axis of a multiplicity of heat exchanger tubes and forming junctions therewith, the tube bundle heat exchanger further characterized by a thick metal plate known as a tube sheet near the lower portion of the heat exchanger wall, the tube sheet serving to support the lower ends of the heat exchanger tubes, the tube bundle heat exchanger wall further comprising a multiplicity of small holes known as hand holes, manways, drain lines and vents, located around its circumference and along the height of the tube bundle heat exchanger, the method of removing the pile of sludge which settles on the tube support plates and the junctions between the heat exchanger tubes and the tube support plates, comprising:
- a. locating at least one pressurized gas-type pressure pulse shock wave source outside the tube bundle heat exchanger so as to be able to introduce pressure pulse shock waves through one or more of the multiplicity of hand holes, manways, drain lines and vents;
- b. filling said tube bundle heat exchanger with a liquid to a level at or above said tube support plate to be cleaned;
- c. activating the at least one pressurized gas-type pressure pulse shock wave source to generate a repetitive series of explosive transient shock waves into said liquid and from said liquid into said pile of sludge and into the junctions between the tube support plate and the heat exchanger tubes such that the explosive transient shock waves and resultant liquid motion serve to agitate and loosen the sludge;
- d. continuing the generation of repetitive, explosive, transient shock waves which are generated with pressure between approximately 50 pounds per square inch and 5000 pounds per square inch which result in energy predominantly in the frequency range between 1 Hertz and 1000 Hertz for each pulse to create transient shock waves which produce a pressure level of approximately 1/100th to 100 Bars in the liquid of Pressure at 1 meter; and
- e. continuing the shock wave impact for approximately 1 to 24 hours whereby the impact of the repetitive explosive transient shock waves and resultant liquid motion serves to mechanically agitate and move the sludge in the liquid.
- 62. The invention as defined in claim 61 comprising the further step of draining the liquid from the heat exchanger and removing said at least one pressurized gas-type pressure pulse shock wave source.
- 63. The invention as defined in claim 61 wherein said tube bundle heat exchanger is filled with liquid and the level of liquid is selectively varied.
- 64. The invention as defined in claim 61 wherein said liquid is water.
- 65. The invention as defined in claim 62, comprising the further step of flushing the tube sheet with a liquid after the heat exchanger is drained to remove remaining debris.
- 66. The invention as defined in claim 61 wherein the continuing shock wave impact and repetitive explosive transient shock waves and resultant liquid motion serves to permit the sludge to remain in suspension the the liquid and the heat exchanger is continuously flushed with said liquid which is circulated through an external cleaning system to remove suspended and dissolved contaminants from said liquid before it is returned to the heat exchanger.
- 67. The invention as defined in claim 66 wherein the external cleaning of the liquid is accomplished by the method of filtering.
- 68. The invention as defined in claim 66 wherein the external cleaning of the liquid is accomplished by the method of ion-exchange.
- 69. The invention as defined in claim 61 wherein said liquid is a chemical solvent.
- 70. The invention as defined in claim 61 wherein said heat exchanger is a steam generator.
- 71. A method of removing the products of corrosion, oxidation, sedimentation and comparable chemical reactions collectively known as sludge which settle on the tube support plates of a tube bundle heat exchanger and form a pile of sludge, the tube bundle heat exchanger characterized by a tube bundle heat exchanger wall and a series of tube support plates arranged transverse to and sequentially spaced along the longitudinal axis of a multiplicity of heat exchanger tubes and forming junctions therewith, the tube bundle heat exchanger further characterized by a thick metal plate known as a tube sheet near the lower portion of the heat exchanger wall, the tube sheet serving to support the lower ends of the heat exchanger tubes, the tube bundle heat exchanger wall further comprising a multiplicity of small holes known as hand holes, manways, drain lines and vents, located around its circumference and along the height of the tube bundle heat exchanger, the method of removing the pile of sludge which settles on the tube support plates and the junctions between the heat exchanger tubes and the tube support plates, comprising:
- a. introducing at least one pressurized gas-type pressure pulse shock wave source through one or more of the multiplicity of hand holes, manways, drain lines and vents such that the at least one pressurized gas-type pressure pulse shock wave source is located inside the tube bundle heat exchanger;
- b. filling said tube bundle heat exchanger with a liquid to a level at or above said tube support plate to be cleaned;
- c. activating the at least one pressurized gas-type pressure pulse shock wave source to generate a repetitive series of explosive transient shock waves into said liquid and from said liquid into said pile of sludge and into the junctions between the tube support plate and the heat exchanger tubes such that the explosive transient shock waves and resultant liquid motion serve to agitate and loosen the sludge;
- d. continuing the generation of repetitive, explosive, transient shock waves which are generated with pressure between approximately 50 pounds per square inch and 5000 pounds per square inch which result in energy predominantly in the frequency range between 1 Hertz and 1000 Hertz for each pulse to create transient shock waves which produce a pressure level of approximately 1/100th to 100 Bars in the liquid of Pressure at 1 meter; and
- e. continuing the shock wave impact for approximately 1 to 24 hours whereby the impact of the repetitive explosive transient shock waves and resultant liquid motion serves to mechanically agitate and move the sludge in the liquid.
- 72. The invention as defined in claim 71 comprising the further step of draining the liquid from the heat exchanger and removing said at least one pressurized gas-type pressure pulse shock wave source.
- 73. The invention as defined in claim 71 wherein said tube bundle heat exchanger is filled with liquid and the level of liquid is selectively varied.
- 74. The invention as defined in claim 71 wherein said liquid is water.
- 75. The invention as defined in claim 72, comprising the further step of flushing the tube sheet with a liquid after the heat exchanger is drained to remove remaining debris.
- 76. The invention as defined in claim 71 wherein the continuing shock wave impact and repetitive transient shock waves and resultant liquid motion serves to permit the sludge to remain in suspension in the liquid and the heat exchanger is continuously flushed with said liquid which is circulated through an external cleaning system to remove suspended and dissolved contaminants from the liquid before it is returned to the heat exchanger.
- 77. The invention as defined in claim 76 wherein the external cleaning of the liquid is accomplished by the method of filtering.
- 78. The invention as defined in claim 76 wherein the external cleaning of the liquid is accomplished by the method of ion-exchange.
- 79. The invention as defined in claim 71 wherein said liquid is a chemical solvent.
- 80. The invention as defined in claim 71 wherein said heat exchanger is a steam generator.
Parent Case Info
This is a continuation of co-pending application Ser. No. 06/486,352 filed on 4/19/83 now abandoned.
US Referenced Citations (14)
Foreign Referenced Citations (1)
Number |
Date |
Country |
7901019 |
Nov 1979 |
WOX |
Continuations (1)
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Number |
Date |
Country |
Parent |
486352 |
Apr 1983 |
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