Claims
- 1. A method of recovering energy which comprises:a. providing a selected working fluid comprising at least two components to a first pump; b. feeding the selected working fluid to a dividing means; c. dividing the working fluid into a first stream and a second stream, d. feeding the first stream at an intermediate pressure to a first heat transfer zone to transfer heat to the working fluid stream thereby heating the stream to a higher temperature, e. feeding the higher temperature stream to a separation means, f. separating a volatile component enriched stream and a volatile component depleted stream; g. cooling the volatile component enriched stream; h. further cooling the volatile component enriched stream in a heat exchanger; i. feeding the volatile component enriched stream to an expansion means; j. expanding the volatile component enriched stream to a lower temperature and pressure; k. feeding the expanded lower temperature and pressure volatile component enriched stream to a heat exchanger where the volatile enriched stream is partially or completely vaporized by heat exchange while absorbing heat from an external stream; l. feeding the at least partially vaporized volatile component enriched stream to a heat exchanger; m. feeding the volatile component enriched stream to the mixing means; n. feeding the volatile component depleted stream to the mixing means; o. feeding the second working fluid stream to a second pump and increasing the pressure of the second working fluid stream to a high pressure; p. feeding the high pressure second working fluid stream to a second heat exchange zone wherein heat is transferred to the high pressure second working fluid stream to produce a higher temperature and pressure condition of the second working fluid stream; q. work expanding the higher temperature and pressure second working fluid stream to convert a portion of the heat energy to mechanical energy; r. returning the second working fluid stream to the mixer; and s. repeating the cycle as set out above.
- 2. The method of claim 1 which further comprises:a. feeding the second working fluid through one or more heat exchangers to recover heat while heating this stream; b. feeding the work expanded second stream to the mixing means; c. mixing the streams to provide a combined working fluid stream; d. cooling and condensing the combined working fluid stream by heat exchanging with a bulk heat sink such as ambient air or water; and e. returning the combined working fluid stream to the feed-line of the low pressure pumping stage to provide the selected working fluid.
- 3. A method according to claim 1 wherein the selected working fluid is selected from the group consisting of ammonia and water; sulfur dioxide and water; mixed hydrocarbons; ammonia and brine; or sulfur dioxide and brine.
- 4. A method according to claim 1 wherein the selected working fluid comprises ammonia and water.
- 5. A method according to claim 3 wherein the selected working fluid consists essentially of ammonia and water.
- 6. A method according to claim 1 wherein the volatile component enriched stream is substantially a pure component.
- 7. A method of claim 1 wherein at least one of the heat exchange steps is carried out with a cross economizer type exchanger.
- 8. A method according to claim 1 further comprising feeding the expanded volatile component enriched stream to a second mixing means and feeding a third component into the second mixing means to provide a mixed components stream and feeding the mixed components stream to a refrigerant condenser, separating the mixed components and recycling the separated components.
- 9. A method according to claim 1 further comprising providing multiple expansion means in series relationship and expanding the volatile component to provide a series of partially condensed working fluid intermediate fractions and passing such intermediate fractions to a reboiler.
- 10. An energy recovery apparatus that comprises:a. fluid conduit means connecting all components listed below; b. a vessel for receiving a working fluid; c. a dividing means positioned between said vessel and a low pressure pumping means; d. a low pressure pumping means connected to receive a divided portion of a working fluid and connected on the pressure side to a first heat transfer means; e. a separation means operably connected to the first heat transfer means and configured to separate a more volatile component of the working fluid from a less volatile component of the working fluid, having a discharge point for discharging a separated more volatile component and a discharge point for the less volatile component; f. a heat transfer means positioned to receive the more volatile component from the separation means; g. an expansion means connected to the heat transfer means and configured to receive a cooled more volatile component from the heat transfer means and expand said component to a lower pressure zone, thereby lowering the temperature of the more volatile component; h. a mixing means operably connected to the separation means and configured to receive the less volatile component from the separation means and the more volatile component from the expansion means; i. a high pressure pump means connected on its suction side to the dividing means and configured to receive a portion of the selected working fluid and connected on its high pressure side to a second heat transfer means; j. work expansion means connected to the second heat transfer means on its high pressure side and to the mixing means on its low pressure side; k. a heat sink means configured to provide a fully liquefied working fluid for feeding to the dividing means; l. a working fluid comprising at least one more volatile component and a less volatile component in a ratio such that the at least one more volatile component is vaporized by heat available from the energy to be recovered in sufficient quantity to provide the desired product temperature when expanded in the expansion means while the combined working fluid can be fully condensed by the available heat sink means at pressures acceptable in the heat sink means.
- 11. An apparatus according to claim 10 further comprising:a. a second mixer connected by fluid conduit means to the volatile component expansion means to receive the expanded more volatile component stream and a third component; b. a conduit means to convey a mixed components stream to a refrigerant condenser and c. a separating means in fluid communication with the refrigerant condenser and a fluid conduit means for recycling the separated components to the second mixing means.
- 12. A system for energy recovery that combines an absorption refrigeration capacity with an energy recovery system using a multi-component working fluid having a less volatile component and a more volatile component that can be separated using heat from the energy recovery system to provide a more volatile component stream in a sufficient quantity to provide a desired product temperature in the absorption refrigeration system while simultaneously serving as a multi-component working fluid in the energy recovery system on recombination with the less volatile component to provide a recombined stream that can be fully condensed in a selected heat sink and be sufficiently vaporized by the quantity of energy to be recovered in the energy recovery system; the quantity of energy, usually heat, available to be recovered, the desired product temperature in the refrigeration system and the available heat sink capacity for condensing the working fluid defining the requirements for a mass flow rate, latent heat of vaporization, temperature and pressure conditions of the multi-component working fluid.
- 13. The system of claim 12 wherein the multi-component working fluid is selected from the group consisting of: ammonia and water; sulfur dioxide and water; mixed hydrocarbons; ammonia and brine; or sulfur dioxide and brine.
- 14. A method for designing an energy recovery system to provide enhanced energy recovery while at the same time providing an integrated refrigeration capacity that comprises the steps of defining a desired product temperature in the refrigeration system, defining an available heat sink, defining a quantity of energy to be recovered in an energy recovery system, defining a means for converting the quantity of energy to be recovered into a recovered energy output while also providing sufficient heat energy to separate a sufficient quantity of the more volatile component of a portion of the working fluid to provide cooling to the defined product temperature when evaporated and a less volatile component such that when the components are recombined and mixed with a second portion of the working fluid stream from the energy recovery system, the mixed fully combined working fluid stream will be fully condensed by the defined heat sink, defining a group of conditions to be met by a multi-component working fluid, the fully condensed working fluid being divided into at least a first portion and a second portion, the first portion being substantially vaporized by contacting the energy to be recovered thereafter driving the means for energy recovery while also providing heat to separate the more volatile component from the second portion in a selected separation means and when the first portion and second portions are recombined be fully condensed by the defined heat sink capacity.
- 15. An apparatus for use in an energy recovery apparatus of claim 8 that comprises a plurality of heat exchangers each operating at a different temperature and working fluid composition as a more volatile portion of a multi-component working fluid is sequentially partially vaporized, and fed to one of a plurality of separating means wherein the vapor is separated and the less volatile component is fed to a subsequent heat exchanger, and further comprising means for conducting the vaporized more volatile component to an energy conversion means such that the heat exchangers configured to operate over a range of temperature conditions.
RELATED APPLICATIONS
This application is a continuation in part of U.S. provisional application Ser. No. 60/129,428 filed Apr. 15, 1999.
US Referenced Citations (4)
Provisional Applications (1)
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Number |
Date |
Country |
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60/129428 |
Apr 1999 |
US |