Latent Heat Recovery Generator System
A heat recovery generator system (1) includes a boiler (11) converting water into high-pressure steam that passes through a steam pipe (12), a turbine (13), a first pipe (10), a condenser (15), and a second pipe (102) in sequence. The steam condenses into water after passing through the condenser (15). The condensed water passes through a water pump (16), a water supply pipe (17), and a heater (18) to the boiler (11). A latent heat recovery device (2) includes a compressor (21) that outputs a coolant moving along a coolant pipe (22) passing in sequence through a first heat exchanger device (23) and a second heat exchanger device (25) and then returning to the compressor (21). A third pipe (103) branches from the first pipe (101) and is connected to a fourth pipe (104) via the second heat exchanger device (25). The coolant absorbs heat from the steam via the second heat exchanger device (25). Heat recovery water absorbs the heat released from the coolant through the first heat exchanger device (23).
The present invention relates to a generator system and, more particularly, to a generator system, such as a steam turbine generator system or a steam-electric cogeneration system, capable of recovering latent heat.
Generator systems of power plants and steam-electric cogeneration systems generally generate electricity through thermal power.
An objective of the present invention is to provide a latent heat recovery generator system including a heat recovery pipe to recover the latent heat released from the steam during condensation of the steam. The recovered heat can be utilized to heat water, and the hot water can be supplied to the boiler, industry processes, businesses, animal husbandry industry, houses, and entertainment businesses that require hot water, saving precious energy, reducing costs, and increasing economic effect.
The present invention fulfills the above objective by a providing, in a preferred form, a heat recovery generator system including comprising a boiler converting water into high-pressure steam that passes through a steam pipe, a turbine, a first pipe, a condenser, and a second pipe in sequence. The steam condenses into water after passing through the condenser. The condensed water passes through a water pump, a water supply pipe, and a heater to the boiler. A latent heat recovery device includes a compressor that outputs a coolant moving along a coolant pipe passing in sequence through a first heat exchanger device and a second heat exchanger device and then returning to the compressor. Heat recovery water passes through the first heat exchanger device. A third pipe branches from the first pipe and is connected to a fourth pipe via the second heat exchanger device, condensing the steam from the turbine into water. The coolant absorbs heat from the steam via the second heat exchanger device. The coolant releases heat to the first heat exchanger device. The heat recovery water absorbs the heat released from the coolant through the first heat exchanger device.
In a preferred form, a heat recovery pipe is provided for conveying the heat recovery water to pass through the first heat exchanger device. The heat recovery pipe includes an inlet end adapted to be connected to an external water source. The heat recovery pipe further includes an outlet end adapted to be connected to a consumer device.
In another preferred form, the first heat exchanger device includes a first heat exchanger and a second heat exchanger. The coolant pipe branches out and passes through the first and second heat exchangers. The coolant from the compressor passes through the first and second heat exchangers to release heat. The heat recovery pipe passes through the first heat exchanger. The water supply pipe passes through the second heat exchanger to absorb heat from the coolant passing through the second heat exchanger. Then, the water supply pipe passes through the heater to the boiler.
In a further preferred form, the heat recovery water is the condensed water passing through the water supply pipe. The water supply pipe passes through the first heat exchanger device. The condensed water in the water supply pipe absorbs the heat from the coolant through the first heat exchanger device and then passes through the heater to the boiler.
In preferred forms, the fourth pipe has an outlet connected to the water pump. The heat recovery water is at a temperature of 50-90° C. after passing through the first heat exchanger device. Two control valves are respectively mounted on the first and third pipes.
The present invention will become clearer in light of the following detailed description of illustrative embodiments of this invention described in connection with the drawings.
The illustrative embodiments may best be described by reference to the accompanying drawings where:
All figures are drawn for ease of explanation of the basic teachings of the present invention only; the extensions of the figures with respect to number, position, relationship, and dimensions of the parts to form the preferred embodiments will be explained or will be within the skill of the art after the following teachings of the present invention have been read and understood. Further, the exact dimensions and dimensional proportions to conform to specific force, weight, strength, and similar requirements will likewise be within the skill of the art after the following teachings of the present invention have been read and understood.
DETAILED DESCRIPTION OF THE INVENTIONThe generator system 1 further includes a latent heat recovery device 2 and a heat recovery pipe 26. The latent heat recovery device 2 includes a compressor 21 that outputs a high-temperature, high-pressure coolant. The coolant moves along a coolant pipe 22 and passes in sequence through a first heat exchanger device 23, an expansion valve 24, and a second heat exchanger device 25 and then returns to the compressor 21. Thus, the coolant circulates along the coolant pipe 22. An inlet end of the heat recovery pipe 26 is connected to an external water source 261 to convey heat recovery water through the first heat exchanger device 23. The heat recovery water is heated by the heat transferred from the high-temperature, high-pressure coolant through the first heat exchanger device 23 and is output through an outlet end of the heat recovery pipe 26. The temperature of the coolant leaving the first heat exchanger device 23 is lowered. The pressure of the coolant is reduced after passing through the expansion valve 24. A third pipe 103 branches from the first pipe 101 and is connected to a fourth pipe 104 via the second heat exchanger device 25. The fourth pipe 104 has an outlet connected to the water pump 16. Steam transforms into condensed water after passing through the second heat exchanger device 25. The second heat exchanger device 25 is located on the coolant pipe 22 and between the compressor 21 and the expansion valve 24. The low-temperature, low-pressure coolant absorbs heat from the steam through the second heat exchanger device 25 and becomes high-temperature, low-pressure coolant that is fed back to compressor 21. Furthermore, at the first heat exchanger device 23, the coolant releases heat to heat the heat recovery water in the heat recovery pipe 26 flowing through the first heat exchanger device 23. Hot or warm water can be output through the outlet end of the heat recovery pipe 26 that is connected to a consumer device 262 such as an industry process, a business, animal husbandry industry, a house, and an entertainment business that requires hot water. The latent heat released during condensation of steam is, thus, recovered, saving precious energy, reducing costs, and increasing economic effect.
In operation, the steam at an input of the turbine 13 is at a temperature of 350-510° C. and at a pressure of 30-120 kg/cm2. The stem at an output of the turbine 13 is at a temperature of 45-65° C. and at a pressure of 0.1-0.25 kg/cm2. A portion of the steam from the turbine 13 passes through the first pipe 101 to the condenser 15 and a cooling water 151 in the condenser 15 and then to the water pump 16 via the second pipe 102. Another portion of the steam from the turbine 13 passes through the third pipe 103 and the second heat exchanger device 25 and is condensed into water. The condensed water passes through the fourth pipe 104 to the water pump 16. The coolant of the latent heat recovery device 2 absorbs the heat released by the steam through the second heat exchanger device 25, and the heat recovery pipe 26 absorbs the heat from the coolant through the first heat exchanger device 23 and outputs hot or warm water. Thus, the latent heat released during condensation of the steam can be recovered and supplied to the consumer device 262.
It can be appreciated that a portion of the steam can be conveyed from the turbine 13 through a pipe to the heater 18 to provide a heat source for heating water flowing through the heater 18 along the water supply pipe 17. However, the heat source for the heater 18 can be an electric heater or any other suitable heat source.
In the embodiment shown in
The generator systems 1 according to the teachings of the present invention can recover the latent heat released by the steam during condensation and can be supplied to the boiler 11 and industry processes, businesses, animal husbandry industry, houses, and entertainment businesses that require hot water, saving precious energy, reducing costs, and increasing economic effect.
Thus since the invention disclosed herein may be embodied in other specific forms without departing from the spirit or general characteristics thereof, some of which forms have been indicated, the embodiments described herein are to be considered in all respects illustrative and not restrictive. The scope of the invention is to be indicated by the appended claims, rather than by the foregoing description, and all changes which come within the meaning and range of equivalency of the claims are intended to be embraced therein.
Claims
1. A heat recovery generator system comprising a boiler converting water into high-pressure steam that passes through a steam pipe, a turbine, a first pipe, a condenser, and a second pipe in sequence, with the steam condensing into water after passing through the condenser, with the condensed water passing through a water pump, a water supply pipe, and a heater to the boiler, with the heat recovery generator system further comprising:
- a latent heat recovery device including a compressor that outputs a coolant moving along a coolant pipe passing in sequence through a first heat exchanger device and a second heat exchanger device and then returning to the compressor, with heat recovery water passing through the first heat exchanger device, with a third pipe branching from the first pipe and connected to a fourth pipe via the second heat exchanger device, condensing the steam from the turbine into water, with the coolant absorbing heat from the steam via the second heat exchanger device, with the coolant releasing heat to the first heat exchanger device, with the heat recovery water absorbing the heat released from the coolant through the first heat exchanger device.
2. The generator system as claimed in claim 1, further comprising: a heat recovery pipe for conveying the heat recovery water to pass through the first heat exchanger device, with the heat recovery pipe including an inlet end adapted to be connected to an external water source, with the heat recovery pipe further including an outlet end adapted to be connected to a consumer device.
3. The generator system as claimed in claim 2, with the first heat exchanger device including a first heat exchanger and a second heat exchanger, with the coolant pipe branching out and passing through the first and second heat exchangers, with the coolant from the compressor passing through the first and second heat exchangers to release heat, with the heat recovery pipe passing through the first heat exchanger, with the water supply pipe passing through the second heat exchanger to absorb heat from the coolant passing through the second heat exchanger, with the water supply pipe then passing through the heater to the boiler.
4. The generator system as claimed in claim 1, with the heat recovery water being the condensed water passing through the water supply pipe, with the water supply pipe passing through the first heat exchanger device, with the condensed water in the water supply pipe absorbing the heat from the coolant through the first heat exchanger device and then passing through the heater to the boiler.
5. The generator system as claimed in claim 4, wherein the fourth pipe has an outlet connected to the water pump.
6. The generator system as claimed in claim 5, with the heat recovery water being at a temperature of 50-90° C. after passing through the first heat exchanger device.
7. The generator system as claimed in claim 5, further comprising: two control valves respectively mounted on the first and third pipes.
8. The generator system as claimed in claim 2, wherein the fourth pipe has an outlet connected to the water pump.
9. The generator system as claimed in claim 8, with the heat recovery water being at a temperature of 50-90° C. after passing through the first heat exchanger device.
10. The generator system as claimed in claim 9, further comprising: two control valves respectively mounted on the first and third pipes.
Type: Application
Filed: Jul 15, 2010
Publication Date: Jun 9, 2011
Inventor: Cheng-Chun Lee (Luzhu Township)
Application Number: 12/836,620
International Classification: F01K 23/06 (20060101);