CIRCULATION SYSTEM OF RANGE-EXTENDED ELECTRIC BUS
20180170144 ยท 2018-06-21
Inventors
Cpc classification
F01P9/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60H2001/00307
PERFORMING OPERATIONS; TRANSPORTING
B60L2270/46
PERFORMING OPERATIONS; TRANSPORTING
F01P2007/146
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60H1/00392
PERFORMING OPERATIONS; TRANSPORTING
B60L1/003
PERFORMING OPERATIONS; TRANSPORTING
B60H1/00371
PERFORMING OPERATIONS; TRANSPORTING
B60H1/143
PERFORMING OPERATIONS; TRANSPORTING
B60H1/00885
PERFORMING OPERATIONS; TRANSPORTING
F01P2060/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P2050/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60H1/00571
PERFORMING OPERATIONS; TRANSPORTING
B60H1/00485
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60H1/00
PERFORMING OPERATIONS; TRANSPORTING
B60L1/00
PERFORMING OPERATIONS; TRANSPORTING
B60H1/14
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A circulation system includes cooling fluid, 1.sup.st-6.sup.th flow paths and 1.sup.st-3.sup.rd flow path switching devices. The first flow path includes a compartment heat exchanger. The second flow path includes a liquid temperature adjustment device and a first pump. The third flow path includes an engine cooling circuit and a second pump. The fourth flow path includes an engine heat-dissipation device. The fifth flow path includes a motor cooling circuit and a third pump. The sixth flow path includes a motor heat-dissipation device. The first, second and third flow path switching devices are respectively connected to the 1.sup.st-4.sup.th, 4.sup.th-6.sup.th, and the fifth, the sixth, the first and the second flow paths. The 1.sup.st-3.sup.rd flow path switching devices control the connections of the 1.sup.st-6.sup.th flow paths and the circulation of the cooling fluid for operating in a plurality of operation modes.
Claims
1. A circulation system of a range-extended electric bus, comprising: cooling fluid; a first flow path comprising a compartment heat exchanger, wherein the compartment heat exchanger is used for adjusting the temperature inside a compartment, a first end of the first flow path is connected with a first end of the compartment heat exchanger, and a second end of the first flow path is connected with a second end of the compartment heat exchanger; a second flow path comprising a liquid temperature adjustment device and a first pump, wherein the liquid temperature adjustment device is used for controlling the temperature of the cooling fluid outputted from the liquid temperature adjustment device, and the first pump is used for controlling the flow rate of the cooling fluid outputted from the liquid temperature adjustment device, and wherein a first end of the second flow path is connected with a first end of the liquid temperature adjustment device, a second end of liquid temperature adjustment device is connected with a first end of the first pump, and a second end of the first pump is connected with a second end of the second flow path; a third flow path comprising an engine cooling circuit and a second pump, wherein the engine cooling circuit is used for controlling the temperature of the cooling fluid outputted from the engine cooling circuit, and the second pump is used for controlling the flow rate of the cooling fluid outputted from the engine cooling circuit, and wherein a first end of the third flow path is connected with a first end of the engine cooling circuit, a second end of the engine cooling circuit is connected with a first end of the second pump, and a second end of the second pump is connected with a second end of the third flow path; a fourth flow path comprising an engine heat-dissipation device, wherein the engine heat-dissipation device is used for adjusting the temperature of an engine, a first end of the fourth flow path is connected with a first end of the engine heat-dissipation device, and a second end of the fourth flow path is connected with a second end of the engine heat-dissipation device; a fifth flow path comprising a motor cooling circuit and a third pump, wherein the motor cooling circuit is used for controlling the temperature of the cooling fluid outputted from the motor cooling circuit, and the third pump is used for controlling the flow rate of the cooling fluid outputted from the motor cooling circuit, and wherein a first end of the fifth flow path is connected with a first end of the motor cooling circuit, a second end of the motor cooling circuit is connected with a first end of the third pump, and a second end of the fifth flow path is connected with a second end of the third pump; a sixth flow path comprising a motor heat-dissipation device, wherein the motor heat-dissipation device is used for adjusting the temperature of a motor, a first end of the sixth flow path is connected with a first end of the motor heat-dissipation device, and a second end of the sixth flow path is connected with a second end of the motor heat-dissipation device; a first flow path switching device connected with the first end of the first flow path, the second end of the second flow path, the second end of the third flow path and the first end of the fourth flow path for controlling the first end of the first flow path and the first end of the fourth flow path to respectively and selectively connect with the second end of the second flow path and the second end of the third flow path; a second flow path switching device connected with the first end of the third flow path, the second end of the fourth flow path, the second end of the fifth flow path and the first end of the sixth flow path for controlling the first end of the third flow path and the first end of the sixth flow path to respectively and selectively connect with the second end of the fourth flow path and the second end of the fifth flow path; and a third flow path switching device connected with the first end of the fifth flow path, the second end of the sixth flow path, the second end of the first flow path and the first end of the second flow path for controlling the first end of the fifth flow path and the first end of the second flow path to respectively and selectively connect with the second end of the sixth flow path and the second end of the first flow path, wherein connections of the first flow path, the second flow path, the third flow path, the fourth flow path, the fifth flow path and the sixth flow path and a circulation of the cooling fluid are controlled by the first flow path switching device, the second flow path switching device and the third flow path switching device, thereby being operated in a plurality of operation modes.
2. The circulation system of the range-extended electric bus according to claim 1, wherein the operation modes include a normal cooling mode, and wherein in the normal cooling mode, the first end of the first flow path is controlled to connect with the second end of the second flow path and the second end of the third flow path is controlled to connect with the first end of the fourth flow path by the first flow path switching device, the first end of the third flow path is controlled to connect with the second end of the fourth flow path and the second end of the fifth flow path is controlled to connect with the first end of the sixth flow path by the second flow path switching device, and the first end of the fifth flow path is controlled to connect with the second end of the sixth flow path and the second end of the first flow path is controlled to connect with the first end of the second flow path by the third flow path switching device.
3. The circulation system of the range-extended electric bus according to claim 1, wherein the operation modes include an auxiliary cooling mode, and wherein in the auxiliary cooling mode, the first end of the first flow path is controlled to connect with the second end of the second flow path and the second end of the third flow path is controlled to connect with the first end of the fourth flow path by the first flow path switching device, the first end of the third flow path is controlled to connect with the second end of the fourth flow path and the second end of the fifth flow path is controlled to connect with the first end of the sixth flow path by the second flow path switching device, and the first end of the second flow path is controlled to connect with the second end of the sixth flow path and the second end of the first flow path is controlled to connect with the first end of the fifth flow path by the third flow path switching device, so that the cooling fluid outputted from the motor cooling circuit is received and cooled by the liquid temperature adjustment device.
4. The circulation system of the range-extended electric bus according to claim 1, wherein the operation modes include a low-temperature mode, and wherein in the low-temperature mode, the first end of the first flow path is controlled to connect with the second end of the third flow path and the second end of the second flow path is controlled to connect with the first end of the fourth flow path by the first flow path switching device, the first end of the third flow path is controlled to connect with the second end of the fourth flow path and the second end of the fifth flow path is controlled to connect with the first end of the sixth flow path by the second flow path switching device, and the first end of the second flow path is controlled to connect with the second end of the sixth flow path and the second end of the first flow path is controlled to connect with the first end of the fifth flow path by the third flow path switching device, so that the cooling fluid outputted from the engine cooling circuit is received and cooled by the compartment heat exchanger.
5. The circulation system of the range-extended electric bus according to claim 1, wherein the operation modes include a high-temperature mode, and wherein in the high-temperature mode, the first end of the first flow path is controlled to connect with the second end of the third flow path and the second end of the second flow path is controlled to connect with the first end of the fourth flow path by the first flow path switching device, the first end of the third flow path is controlled to connect with the second end of the fifth flow path and the second end of the fourth flow path is controlled to connect with the first end of the sixth flow path by the second flow path switching device, and the first end of the second flow path is controlled to connect with the second end of the sixth flow path and the second end of the first flow path is controlled to connect with the first end of the fifth flow path by the third flow path switching device, so that a waste heat of the motor cooling circuit and the engine cooling circuit is heat-dissipated by the compartment heat exchanger.
6. The circulation system of the range-extended electric bus according to claim 1, wherein the operation modes include a medium-temperature mode, and wherein in the medium-temperature mode, the first end of the first flow path is controlled to connect with the second end of the third flow path and the second end of the second flow path is controlled to connect with the first end of the fourth flow path by the first flow path switching device, the first end of the third flow path is controlled to connect with the second end of the fifth flow path and the second end of the fourth flow path is controlled to connect with the first end of the sixth flow path by the second flow path switching device, and the first end of the fifth flow path is controlled to connect with the second end of the sixth flow path and the second end of the first flow path is controlled to connect with the first end of the second flow path by the third flow path switching device, so that the cooling fluid in the motor cooling circuit and the engine cooling circuit is circulated in the compartment heat exchanger, the liquid temperature adjustment device, the engine heat-dissipation device and the motor cooling circuit.
7. The circulation system of the range-extended electric bus according to claim 1, wherein the operation modes include a common cooling mode, and wherein in the common cooling mode, the first end of the first flow path is controlled to connect with the second end of the second flow path and the second end of the third flow path is controlled to connect with the first end of the fourth flow path by the first flow path switching device, the first end of the third flow path is controlled to connect with the second end of the fifth flow path and the second end of the fourth flow path is controlled to connect with the first end of the sixth flow path by the second flow path switching device, and the first end of the fifth flow path is controlled to connect with the second end of the sixth flow path and the second end of the first flow path is controlled to connect with the first end of the second flow path by the third flow path switching device, so that the cooling fluid is outputted to the engine heat-dissipation device and the motor heat-dissipation device by the motor cooling circuit for heat-dissipation.
8. The circulation system of the range-extended electric bus according to claim 1, wherein the engine cooling circuit is a fuel battery or a heat pump.
9. The circulation system of the range-extended electric bus according to claim 1, wherein the engine cooling circuit is a fossil fuel boiler.
10. The circulation system of the range-extended electric bus according to claim 9, wherein the engine heat-dissipation device is a bypass pipe.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0009]
[0010]
[0011]
[0012]
[0013]
[0014]
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
[0015] The present invention will now be described more specifically with reference to the following embodiments. It is to be noted that the following descriptions of preferred embodiments of this invention are presented herein for purpose of illustration and description only. It is not intended to be exhaustive or to be limited to the precise form disclosed.
[0016] Please refer to
[0017] The first flow path 21 includes a compartment heat exchanger 211. A first end 21a of the first flow path 21 is connected with a first end 211a of the compartment heat exchanger 211, and a second end 21b of the first flow path 21 is connected with a second end 211b of the compartment heat exchanger 211. The compartment heat exchanger 211 is not limited to a heat exchange being used for reducing or providing the temperature inside a compartment with the cooling fluid. The second flow path 22 includes a liquid temperature adjustment device 221 and a first pump 222. The liquid temperature adjustment device 221 is used for controlling the temperature of the cooling fluid outputted from the liquid temperature adjustment device 221. A first end 22a of the second flow path 22 is connected with a first end 221a of the liquid temperature adjustment device 221, a second end 221b of liquid temperature adjustment device 221 is connected with a first end 222a of the first pump 222, and a second end 222b of the first pump 222 is connected with a second end 22b of the second flow path 22. The liquid temperature adjustment device 221 is not limited to a cold-water supplying device using a refrigerant compression circulation system in order to achieve the purpose of refrigeration.
[0018] The third flow path 23 includes an engine cooling circuit 231 and a second pump 232. The engine cooling circuit 231 is used for controlling the temperature of the cooling fluid outputted from the engine cooling circuit 231. A first end 23a of the third flow path 23 is connected with a first end 231a of the engine cooling circuit 231, a second end 231b of the engine cooling circuit 231 is connected with a first end 232a of the second pump 232, and a second end 232b of the second pump 232 is connected with a second end 23b of the third flow path 23. The engine cooling circuit 231 is not limited to a cooling fluid circulation flow path inside a range-extended power generator for conducting the waste heat generated during powering to the cooling fluid, or a fuel battery or a heat pump. The fourth flow path 24 includes an engine heat-dissipation device 241. The engine heat-dissipation device 241 is used for adjusting the temperature of an engine, a first end 24a of the fourth flow path 24 is connected with a first end 241a of the engine heat-dissipation device 241, and a second end 24b of the fourth flow path 24 is connected with a second end 241b of the engine heat-dissipation device 241. The engine heat-dissipation device 241 is not limited to a radiator using the air of the environment to reduce the temperature of the cooling fluid, and is mainly used for cooling the cooling fluid circulated by the engine cooling circuit 231. In addition, the engine cooling circuit 231 and the engine heat-dissipation device 232 can be respectively a fossil fuel boiler and a bypass pipe, simultaneously.
[0019] The fifth flow path 25 includes a motor cooling circuit 251 and a third pump 252. The motor cooling circuit 251 is used for controlling the temperature of the cooling fluid outputted from the motor cooling circuit 251. A first end 25a of the fifth flow path 25 is connected with a first end 251a of the motor cooling circuit 251, a second end 251b of the motor cooling circuit 251 is connected with a first end 252a of the third pump 252, and a second end 25b of the fifth flow path 25 is connected with a second end 252b of the third pump 252. The motor cooling circuit 251 is not limited to a cooling circulation flow path circulated in a motor system (not shown) and a motor driver (not shown) for absorbing the waste heat. The sixth flow path 26 includes a motor heat-dissipation device 261. The motor heat-dissipation device 261 is used for adjusting the temperature of a motor, a first end 26a of the sixth flow path 26 is connected with a first end 261a of the motor heat-dissipation device 261, and a second end 26b of the sixth flow path 26 is connected with a second end 261b of the motor heat-dissipation device 261. The motor heat-dissipation device 261 is not limited to a radiator using the air of the environment to reduce the temperature of the cooling fluid, and is mainly used for cooling the cooling fluid circulated by the motor cooling circuit 251.
[0020] Moreover, the first pump 222, the second pump 232 and the third pump 252 are not limited to water pumps, the first pump 222 is used for controlling the flow rate of the cooling fluid outputted from the liquid temperature adjustment device 221, the second pump 232 is used for controlling the flow rate of the cooling fluid outputted from the engine cooling circuit 231, and the third pump 252 is used for controlling the flow rate of the cooling fluid outputted from the motor cooling circuit 251.
[0021] In this embodiment, the circulation system 1 of the range-extended electric bus further includes a first flow path switching device 11, a second flow path switching device and a third flow path switching device 13. The first flow path switching device 11, the second flow path switching device 12 and the third flow path switching device 13 are not limited to four-port flow path switching devices.
[0022] The first flow path switching device 11 is connected with the first end 21a of the first flow path 21, the second end 22b of the second flow path 22, the second end 23b of the third flow path 23 and the first end 24a of the fourth flow path 24 for controlling the first end 21a of the first flow path 21 and the first end 24a of the fourth flow path 24 to respectively and selectively connect with the second end 22b of the second flow path 22 and the second end 23b of the third flow path 23 according to the settings of a user or other requirements. For example, the first end 21a of the first flow path 21 can be controlled to connect with the second end 22b of the second flow path 22 and the first end 24a of the fourth flow path 24 can be controlled to connect with the second end 23b of the third flow path 23 by the first flow path switching device 11, or the first end 21a of the first flow path 21 can be controlled to connect with the second end 23b of the third flow path 23 and the first end 24a of the fourth flow path 24 can be controlled to connect with the second end 22b of the second flow path 22 by the first flow path switching device 11.
[0023] The second flow path switching device 12 is connected with the first end 23a of the third flow path 23, the second end 24b of the fourth flow path 24, the second end 25b of the fifth flow path 25 and the first end 26a of the sixth flow path 26 for controlling the first end 23a of the third flow path 23 and the first end 26a of the sixth flow path 26 to respectively and selectively connect with the second end 24b of the fourth flow path 24 and the second end 25b of the fifth flow path 25 according to the settings of a user or other requirements. For example, the first end 23a of the third flow path 23 can be controlled to connect with the second end 24b of the fourth flow path 24 and the first end 26a of the sixth flow path 26 can be controlled to connect with the second end 25b of the fifth flow path 25 by the second flow path switching device 12, or the first end 23a of the third flow path 23 can be controlled to connect with the second end 25b of the fifth flow path 25 and the first end 26a of the sixth flow path 26 can be controlled to connect with the second end 24b of the fourth flow path 24 by the second flow path switching device 12.
[0024] The third flow path switching device 13 is connected with the first end 25a of the fifth flow path 25, the second end 26b of the sixth flow path 26, the second end 21b of the first flow path 21 and the first end 22a of the second flow path 22 for controlling the first end 25a of the fifth flow path 25 and the first end 22a of the second flow path 22 to respectively and selectively connect with the second end 26b of the sixth flow path 26 and the second end 21b of the first flow path 21 according to the settings of a user or other requirements. For example, the first end 25a of the fifth flow path 25 can be controlled to connect with the second end 26b of the sixth flow path 26 and the first end 22a of the second flow path 22 can be controlled to connect with the second end 21b of the first flow path 21 by the third flow path switching device 13, or the first end 25a of the fifth flow path 25 can be controlled to connect with the second end 21b of the first flow path 21 and the first end 22a of the second flow path 22 can be controlled to connect with the second end 26b of the sixth flow path 26 by the third flow path switching device 13.
[0025] In the circulation system 1 of the range-extended electric bus of the present invention, not only connections of the first flow path 21, the second flow path 22, the third flow path 23, the fourth flow path 24, the fifth flow path 25 and the sixth flow path 26, but also a circulation of the cooling fluid inside the circulation paths are controlled by the first flow path switching device 11, the second flow path switching device 12 and the third flow path switching device 13, such that the circulation system 1 of the range-extended electric bus is operated in a plurality of operation modes. The operation modes include but not limited to a normal cooling mode, an auxiliary cooling mode, a low-temperature mode, a high-temperature mode, a medium-temperature mode and a common cooling mode illustrated as follows.
[0026] Please refer to
[0027] When the range-extended electric bus is operated in an environment with a moderate temperature, the circulation system 1 of the range-extended electric bus is adjusted as the circulation settings shown in
[0028] Please refer to
[0029] When the temperature of the environment is risen or the waste heat of the motor system is too much, causing that the motor system cannot be kept at an ideal operation temperature, the circulation system 1 of the range-extended electric bus is adjusted as the circulation settings shown in
[0030] Please refer to
[0031] When the temperature of the environment is lowered, the circulation system 1 of the range-extended electric bus can be adjusted as the circulation settings shown in
[0032] Please refer to
[0033] When the temperature of the environment is extremely low, the circulation system 1 of the range-extended electric bus, which needs the highest heating power for providing the central heating, can be adjusted as the circulation settings shown in
[0034] Please refer to
[0035] When the temperature of the environment is low, the circulation system 1 of the range-extended electric bus, which needs higher heating power and higher power output, can be adjusted as the circulation settings shown in
[0036] Please refer to
[0037] When the temperature of the environment is high but the engine is not operating, the circulation system 1 of the range-extended electric bus, can be adjusted as the circulation settings shown in
[0038] From the above descriptions, in a circulation system of a range-extended electric bus of the present invention, connections of the first flow path, the second flow path, the third flow path, the fourth flow path, the fifth flow path and the sixth flow path and a circulation of the cooling fluid are controlled by the first flow path switching device, the second flow path switching device and the third flow path switching device in order to recycle the waste heat generated by a motor and a motor driver of the range-extended electric bus under a cold environment for providing a central heating inside a compartment, and use the cooling power of the air-conditioner system of the electric bus for reducing the operation temperature of a motor system under a hot environment. In addition, by controlling the circulation flow path of the cooling fluid and the settings of the flow path switching devices, the circulation system of the range-extended electric bus of the present invention can be operated in a plurality of operation modes, such that the circulation system of the range-extended electric bus can satisfy different environment conditions and meet different internal demands for enhancing the efficiency of utilization of internal waste heat and external temperature.