HEAT MANAGEMENT SYSTEM FOR A FUEL CELL VEHICLE
20230286417 · 2023-09-14
Inventors
Cpc classification
H01M2250/402
ELECTRICITY
B60L2200/36
PERFORMING OPERATIONS; TRANSPORTING
H01M2250/20
ELECTRICITY
H01M8/04268
ELECTRICITY
Y02E60/50
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
B60L7/22
PERFORMING OPERATIONS; TRANSPORTING
Y02T90/40
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
International classification
Abstract
A heat management system for a fuel cell vehicle propelled by an electric traction motor includes a fuel cell system comprising a fuel cell configured to generate electric power when receiving hydrogen through a hydrogen inlet and oxygen through an oxygen inlet, wherein the fuel cell includes an outlet configured to expel exhaust water formed in the fuel cell, and a compressor including an inlet configured to receive ambient air, and an outlet, wherein the inlet of the compressor is arranged in downstream fluid communication with the outlet of the fuel cell and configured to pressurize a mixture of exhaust water expelled from the fuel cell and ambient air.
Claims
1. A heat management system for a fuel cell vehicle propelled by an electric traction motor, the heat management system comprising: a fuel cell system comprising a fuel cell configured to generate electric power when receiving hydrogen through a hydrogen inlet and oxygen through an oxygen inlet, wherein the fuel cell comprises an outlet configured to expel exhaust water formed in the fuel cell, and a compressor comprising an inlet configured to receive ambient air, and an outlet connected to an ambient environment, wherein the inlet of the compressor is arranged in downstream fluid communication with the outlet of the fuel cell and configured to pressurize a mixture of exhaust water expelled from the fuel cell and ambient air, wherein the pressurized mixture is configured to be directed towards the ambient environment.
2. The heat management system according to claim 1, wherein the heat management system further comprises an air heating arrangement arranged in downstream fluid communication with the outlet of the compressor.
3. The heat management system according to claim 2, wherein the air heating arrangement is an electrical brake resistor, the electrical brake resistor comprises an electric resistive material connectable to the electric power system.
4. The heat management system according to claim 1, wherein the fuel cell system comprises a water tank arranged in fluid communication between the outlet of the fuel cell and the inlet of the compressor.
5. The heat management system according to claim 1, wherein the fuel cell system comprises a valve arranged in fluid communication between the outlet of the fuel cell and the inlet of the compressor.
6. The heat management system according to claim 1, wherein the heat management system further comprises an electric traction motor configured to propel the vehicle and to controllably regenerate electric power during braking of the vehicle.
7. The heat management system according to claim 6, wherein the electric traction motor is electrically connected to an electric power system and configured to receive electric power from the electric power system during propulsion, and to feed electric power to the electric power system during braking.
8. The heat management system according to claim 6, wherein the electric power system comprises an energy storage system configured to receive electric power from the electric traction motor during braking.
9. The heat management system according to claim 8, wherein the energy storage system is electrically connected to the fuel cell and configured to receive electric power generated by the fuel cell.
10. The heat management system according to claim 8, wherein the heat management system further comprises an electric machine electrically connectable to the electric power system of the vehicle, the electric machine being operable by electric power received from the electric power system, and a control unit connected to the electric power system, the control unit comprising control circuitry configured to: determine an electric power absorption capability of the energy storage system, compare the electric power absorption capability with a level of electric power generated by the electric traction motor during braking, and control the electric power system to feed electric power to the electric machine for operating the compressor when the level of electric power generated by the electric traction motor exceeds the electric power absorption capability.
11. The heat management system according to claim 10, wherein the control unit is connected to the fuel cell system, the control circuitry being further configured to: control the fuel cell system to feed exhaust water to the inlet of the compressor when the electric power generated by the electric traction motor exceeds the electric power absorption capability.
12. A method of controlling a heat management system of a fuel cell vehicle, the heat management system comprising a fuel cell system comprising a fuel cell configured to generate electric power when receiving hydrogen through a hydrogen inlet and oxygen through an oxygen inlet, wherein the fuel cell comprises an outlet configured to expel exhaust water formed in the fuel cell, a compressor comprising an inlet configured to receive ambient air and an outlet connected to an ambient environment, wherein the inlet of the compressor is arranged in downstream fluid communication with the outlet of the fuel cell, an electric power system, and an electric traction motor configured to propel the vehicle and to generate electric power during braking, the electric traction motor being electrically connected to the electric power system, wherein the method comprises: determining an electric power absorption capability of an energy storage system of the electric power system, comparing the electric power absorption capability with a level of electric power generated by the electric traction motor during braking, and controlling the compressor to pressurize a mixture of exhaust water expelled from the fuel cell and ambient air when the level of electric power generated by the electric traction motor exceeds the electric power absorption capability, and feed the pressurized mixture towards the ambient environment.
13. A fuel cell vehicle, comprising a heat management system according to claim 1.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0029] The above, as well as additional objects, features, and advantages, will be better understood through the following illustrative and non-limiting detailed description of exemplary embodiments, wherein:
[0030]
[0031]
[0032]
[0033]
DETAILED DESCRIPTION
[0034] The present disclosure will now be described more fully hereinafter with reference to the accompanying drawings, in which exemplary embodiments are shown. The disclosure may, however, be embodied in many different forms and should not be construed as limited to the embodiments set forth herein; rather, these embodiments are provided for thoroughness and completeness. Like reference character refer to like elements throughout the description.
[0035] With particular reference to
[0036] Furthermore, the working machine 1 comprises a fuel cell system (illustrated in
[0037] The working machine 1 is further provided with a control unit 114. The control unit 114 is configured to control various functionalities of the working machine 1 and forms part of the material transportation system.
[0038] The control unit 114 may include a microprocessor, microcontroller, programmable digital signal processor or another programmable device. The control unit 114 may also, or instead, include an application specific integrated circuit, a programmable gate array or programmable array logic, a programmable logic device, or a digital signal processor. Where the control unit 114 includes a programmable device such as the microprocessor, microcontroller or programmable digital signal processor mentioned above, the processor may further include computer executable code that controls operation of the programmable device.
[0039] In order to describe the heat management system in further detail, reference is now made to
[0040] As described above, and as can be seen in
[0041] Moreover, the heat management system 200 further comprises a compressor 250. The compressor 250 comprises an inlet 252 for receiving a flow of ambient air 254. The ambient air 254 is thus directed through a compressor inlet conduit 256 before entering the inlet 252. Although not depicted in the figures, the compressor inlet conduit 256 may be provided with a filter such that the ambient air fed into the compressor is relatively clean and free from debris and particles.
[0042] Furthermore, the inlet 252 of the compressor 250 is arranged in downstream fluid communication with the outlet 212 of the fuel cell 204. According to the exemplified embodiment depicted in
[0043] In the example embodiment depicted in
[0044] The compressor 250 may however be operated by other means than the above described electric machine 260. For example, the compressor 250 may be connected to, and operable by, an electric traction motor shaft (not shown) of one of the electric traction motors 101. The compressor 250 is in such case a mechanically operated compressor. During e.g. braking, the compressor 250 is controllably connected to the electric traction motor shaft and acts as an inertia, which reduces the level of electric power generated by the electric traction motor. As a still further example, the compressor may be an electrically controlled compressor operable by electric power received directly from e.g. the electric power system 220.
[0045] In order to describe the heat management system 200 according to another example embodiment, reference is now made to
[0046] As depicted in
[0047] Moreover, the energy storage system 200 may also comprise a muffler 304 in the compressor outlet conduit 258. The muffler 304 may be arranged in downstream fluid communication with the outlet of the compressor 250, and may also be downstream the air heating arrangement 302.
[0048] As is also depicted in
[0049] Moreover, the heat management system 200 also comprises a valve 316. The valve 316 is connected to the control unit 114 and the control unit thus controls the valve 316 to assume an open position in which water from the fuel cell 202 is allowed to enter the inlet of the compressor 250, as well as to control the valve 316 to assume a closed position in which the water from the fuel cell 202 is prevented from reaching the inlet of the compressor 250. During operation of the fuel cell 202 and the valve 316 is closed, the water level in the water tank 312 will increase, i.e. raise. When the valve is opened, the water level will reduce.
[0050] Furthermore, during operation of the working machine 1 and now also with reference to
[0051] It is to be understood that the present disclosure is not limited to the embodiments described above and illustrated in the drawings; rather, the skilled person will recognize that many changes and modifications may be made within the scope of the appended claims.