AN ARRANGEMENT AND A METHOD FOR CONTROLLING A SHUTDOWN PHASE OF A WHR-SYSTEM
20210003040 · 2021-01-07
Inventors
Cpc classification
F01K23/101
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B41/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02G5/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01K15/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01K23/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N3/0205
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02T10/40
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F01K13/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2339/047
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N5/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01K23/065
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N9/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
An arrangement and a method for controlling a shutdown phase of a WHR-system. The WHR system includes a main circuit (4) which includes a pump (3), an evaporator (5), an expander (7) and a condenser (10), and a compensation tank (12) which is configured to compensate for volume changes of a working fluid in the main circuit (4) during operation of the WHR system. The arrangement includes a control unit (26) configured to receive information when the shutdown phase of the WHR system is to be initiated and a flow device able to supply working fluid from the compensation tank (12) to the main circuit (4). The control unit (26) is configured to activate the flow device such that working fluid is supplied from the compensation tank (12) to the main circuit (4) when it receives information indication that the shutdown phase of the WHR system is to be initiated.
Claims
1. An arrangement for controlling a shutdown phase of a WHR-system, wherein the WHR system comprises: a main circuit which comprises a pump, an evaporator, an expander and a condenser, and a compensation tank, wherein the compensation tank is configured to compensate for volume changes of a working fluid in the main circuit during operation of the WHR system; the arrangement further comprises a control unit configured to receive information when the shutdown phase of the WHR system is to be initiated and flow means configured to supply working fluid from the compensation tank to the main circuit; the control unit is configured to activate the flow means such that working fluid is supplied from the compensation tank to the main circuit when the control unit receives information indication that the shutdown phase of the WHR system is to be initiated.
2. An arrangement according to claim 1, further comprising the flow means comprises a flow member configured and arranged to circulate the working fluid in the main circuit during at least a part of the shutdown phase.
3. An arrangement according to claim 2, further comprising the flow means comprises a first connection line and a second connection line both connecting the compensation tank and the main circuit, and a valve device configured and operable to direct working fluid from the main circuit to the compensation tank via the first connection line and from the compensation tank to the main circuit via the second connection line.
4. An arrangement according to claim 1, further comprising the flow means comprises a pressure member configured to provide a pressure difference between the working fluid in the compensation tank and the working fluid in the main circuit during at least a part of the shutdown phase.
5. An arrangement according to claim 4, further comprising the pressure member is arranged and configured to change the pressure in the compensation tank.
6. An arrangement according to claim 4, further comprising the pressure member is arranged and configured to change the pressure in the main circuit.
7. An arrangement according to claim 1, further comprising the control unit is configured to receive information indicating when all working fluid in the main circuit is in liquid state.
8. An arrangement according to claim 7, further comprising the control unit is configured to receive information about the temperature and the pressure of the working fluid in a position adjacent to the expander.
9. An arrangement according to claim 1, further comprising the cooling means arranged to cool the working liquid in the compensation tank.
10. An arrangement according to claim 9, further comprising the cooling means comprises cooling fins arranged on an outer surface of the compensation tank.
11. A method for controlling a shutdown phase of a WHR-system, wherein the WHR system comprises a main circuit which comprises a pump, an evaporator, an expander and a condenser, and a compensation tank which is configured to compensate for volume changes of a working fluid in the main circuit during operation of the WHR system, further comprising steps for receiving information when the shutdown phase of the WHR system is to be initiated and steps for supplying working fluid from the compensation tank to the main circuit when the WHR system receives information indicating that the shutdown phase of the WHR system is to be initiated.
12. A method according to claim 11, further comprising circulating the working fluid through the main circuit by a flow member during at least a part of the shutdown phase.
13. A method according to claim 12, further comprising supplying the working fluid from the main circuit to the compensation tank via a first connection line and from the compensation tank to the main circuit via a second connection line.
14. A method according to claim 11, further comprising creating a pressure difference between the working fluid in the compensation tank and the working fluid in the main circuit during at least a part of the shutdown phase.
15. A method according to claim 14, changing the pressure in the compensation tank.
16. A method according to claim 14, further comprising changing the pressure in the main circuit.
17. A method according to claim 11, further comprising receiving information indicating when all working fluid in the main circuit is in liquid state.
18. A method according to claim 17, further comprising receiving information about the temperature and the pressure of the working fluid in a position adjacent to the expander.
19. A method according to claim 11, further comprising cooling of the working liquid in the compensation tank.
20. A WHR system, comprising an arrangement according to claim 11.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0014] In the following preferred embodiments of the invention are described, as examples, with reference to the attached drawings, on which:
[0015]
[0016]
[0017]
[0018]
DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS OF THE INVENTION
[0019]
[0020] The pressurized and heated working fluid is expanded in the expander 7. The expander 7 may be a turbine or a piston. The expander 7 generates a rotary motion, which is transmitted, via a suitable mechanical transmission 8, to a shaft 9 of the power train of the vehicle 1. Alternatively, the expander 7 may be connected to a generator transforming mechanical energy into electrical energy which may be stored in a battery. After the working fluid has passed through the expander 7, it is directed to a condenser 10 via a third part 4c of the main circuit 4. In the third part 4c of the main circuit 4, the working fluid is in gaseous state and it has a low pressure. The gaseous working fluid is cooled in the condenser 10 by coolant circulating in a cooling system 11 to a temperature at which the working fluid condenses. The liquid working fluid is sucked from the condenser 10 to the pump 3 via a fourth part 4d of the main circuit 4. In the fourth part 4d of the main circuit 4, the working fluid is in liquid state and it has a low pressure. The WHR system comprises a compensation tank 12 and pressure member 13 for volume compensation and pressure control of the working fluid in the main circuit 4. The compensation tank 12 and pressure member 13 are connected to the fourth part 4d of the main circuit 4.
[0021]
[0022] The pressure member 13 comprises a piston 23, which is movably arranged into a cylinder 22. The cylinder 22 and the movable piston 23 define a space 24 of an adjustable volume connected to the main circuit 4. An actuator 25 is used to provide movements of the piston 23. The actuator 25 may be a hydraulic or pneumatic activated power member or an electric motor. A control unit 26 controls the movements of the actuator 25. The control unit 26 receives information from a sensor 27 sensing the temperature and the pressure of the working fluid in a position adjacent to the expander 7. The control unit 26 also receives information from an ignition system 28 of the vehicle 1 indicating when the ignition of the combustion engine 2 is turned off.
[0023]
[0024] Furthermore, an outer surface of the compensation tank 12 has been provided with cooling fins 14a. The cooling fins 14a increase the heat transfer surface between the working fluid in the inner space 16 of the compensation tank 12 and ambient air. Such a design makes it possible to increase the cooling of the working fluid in the inner space 16 of the compensation tank 12. In order to further increase the heat transfer between the working fluid in the inner space 16 of the compensation tank 12 and ambient air, an air fan 29 is arranged to provide a cooling air flow towards an area of the outer surface of the compensation tank including the cooling fins 14a. The air fan is driven by an electric motor 30. Otherwise, the embodiment shown in
[0025] Before a start of the WHR system, all working fluid is in liquid state. During a start-up phase, there is a very large volume expansion of the working fluid in the main circuit 4 due to the fact that the working fluid starts to evaporate in the evaporator 5. This large volume expansion results in a large accumulation of working fluid in the compensation tank 12. During a following regular operating phase of the WHR system, a reduced amount of working fluid is circulated in the main circuit 4. During the regular operating phase of the WHR system, the first valve member 19a is in a closed position and the intermittent valve member 20 is in an open position. Thus, the working fluid in the main circuit 4 is in fluid contact with the working fluid in the inner space 16 of the compensation tank 12 via the second connection line 18b. During the regular operating phase, it is usually possible to maintain a desired condensation temperature in the WHR system with relatively small volume fluctuations of the working fluid. Thus, there is a relatively small exchange of working fluid between the compensation tank 12 and the main circuit 4. During the regular operating phase, the control unit 26 determines a desired condensation pressure at which the WHR system has an optimal efficiency. The control unit 26 receives information about the actual condensation pressure from a not indicated sensor. In case there is a difference between the desired condensation pressure and the actual condensation pressure, the control unit 26 activates the actuator 25 such that it provides a movement of the piston 23 which adjusts the volume of the space 24 in a manner such that this pressure difference is eliminated.
[0026]
[0027] A first way to supply cool to the main circuit 4, it is to set the WHR system in an idle mode. In the idle mode the expander 7 is disconnected from the power train of the vehicle 1. Alternatively, the working fluid is directed past the expander 7 via a not indicated bypass line. However, in the idle mode, it is possible for the pump 3 to circulate the working fluid through the main circuit 4 with a relatively low flow resistance and with a relatively low consumption of electrical energy. In the embodiment shown in
[0028] During the start-up phase of the WHR system, a relatively large quantity of working fluid is accumulated in the compensation tank 12. During the following regular operating phase, there is only a small working fluid exchange between the main circuit 4 and the second connection line 18b. The accumulated working fluid in the compensation tank 12 is substantially isolated from the working fluid circulating in the main circuit 4. During the regular operating phase, the accumulated working fluid in the compensation tank 12 is cooled by ambient air and the working fluid in the main circuit is heated by exhaust gases. Due to these facts, the working fluid in the compensation tank 12 usually has a considerably lower temperature than the working fluid in the main circuit 4. Consequently, the working fluid leaving the compensation tank 12 via the second connection line 18b during the shutdown phase of the WHR system has usually a significantly lower temperature than the working fluid entering the compensation tank 12 via the first connection line 18a. Thus, hot working fluid is replaced by cool working fluid in the main circuit 4 during the shutdown phase of the WHR system.
[0029] As a complement to the circulation of the working fluid in the main circuit 4 during the shutdown phase, it is possible to provide different pressures in the compensation tank 12 and the main circuit 4. Such a measure may increase the exchange of working medium between the compensation tank 12 and the main circuit 4. The pressure in the compensation tank 12 can be varied by means of the air regulating device 17 and the pressure in the main circuit 4 can be varied by the pressure member 13. In the embodiment shown in
[0030] When the pressure difference has been eliminated and the supply of cool working fluid to the main circuit has ceased, the control unit 26 opens the first valve member 19a and closes the second valve member 19b. The intermittent valve member 20 is maintained in the closed position. Thereafter, the air regulating device 17 decreases the pressure in the compensation tank 12 to a lower level than the pressure in the main circuit 4. Alternatively or in combination, the pressure member 13 increases the pressure in the main circuit 4. This pressure difference results in a hot working fluid flow from the main circuit 4 to the compensation tank 12 via the first connection line 18a. Also in this case, it is possible to replace hot working fluid in the main circuit 4 with cool working fluid from the compensation tank 12.
[0031] At step 44, the control unit 26 receives information from the sensor about the pressure and the temperature of the working fluid in the position adjacent to the expander. In view of this information, the control unit 26 determines if the working fluid is in liquid or gaseous state in this position of the main circuit 4. During the regular operating phase, the working fluid is in gaseous state and it has its highest temperature in the second part 4b of the main circuit 4. During a following shutdown phase of the WHR system, it is a risk that isolated spaces with gaseous working fluid are created adjacent to the expander 7. In case the control unit 26 determines that the working fluid is in liquid state in this position of the main circuit 4, it is very likely that all working fluid in the main circuit 4 is in liquid state. When the control unit 26 receives information from the sensor 27 indicating that all working fluid in the main circuit 4 is in liquid state, it ends the supply of cool working fluid from the compensation tank 12 to the main circuit 4.
[0032] When all working fluid is in liquid state in the main circuit 4, the control unit 26 may activate the pressure member 12, at step 45, such that it increases the pressure in the main circuit 4 in order to ensure that a further cooling of the working fluid in the main circuit does not result in a pressure drop to a lower pressure than ambient air pressure. The shutdown phase of the WHR system ends at step 46. In view of the active cooling of the working fluid in the main circuit 4, it is possible to perform a very fast shutdown phase of the WHR system.
[0033] The invention is not restricted to the described embodiment but may be varied freely within the scope of the claims.