MULTIPLE CIRCUIT THERMAL MANAGEMENT SYSTEM COMPRISING MIXING LINES, AND VEHICLE
20230278415 · 2023-09-07
Assignee
Inventors
- Martin MOHLIN (Stockholm, SE)
- Ola Hall (Stockholm, SE)
- Zoltan Kardos (Södertälje, SE)
- Rickard Eriksson (Rönninge, SE)
Cpc classification
F01P3/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P2060/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P2060/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P2007/146
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60Y2200/14
PERFORMING OPERATIONS; TRANSPORTING
B60H1/00885
PERFORMING OPERATIONS; TRANSPORTING
B60K1/00
PERFORMING OPERATIONS; TRANSPORTING
F01P2060/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60K2001/003
PERFORMING OPERATIONS; TRANSPORTING
F01P5/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P11/029
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P7/165
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P2050/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P2005/105
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60H1/00571
PERFORMING OPERATIONS; TRANSPORTING
F01P7/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B60H1/00
PERFORMING OPERATIONS; TRANSPORTING
F01P7/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P5/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P11/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A thermal management system is disclosed configured to regulate the temperature of a number of vehicle components. The system comprises one expansion tank and two or more coolant circuits each configured to regulate the temperature of a vehicle component of the number of vehicle components. Each coolant circuit of the two or more coolant circuits comprises a heat exchanger configured to regulate the temperature of coolant in the coolant circuit, a coolant pump comprising a pump inlet, and a static line fluidly connecting the pump inlet to the expansion tank. The present disclosure further relates to a vehicle comprising a thermal management system.
Claims
1. A thermal management system configured to regulate the temperature of a number of vehicle components, wherein the system comprises: an expansion tank; two or more coolant circuits each configured to regulate the temperature of a vehicle component of the number of vehicle components; and a heat transferring system configured to transfer heat between at least two coolant circuits of the two or more coolant circuits, and wherein each coolant circuit of the two or more coolant circuits comprises: a heat exchanger configured to regulate the temperature of coolant in the coolant circuit; a coolant pump comprising a pump inlet; and a static line fluidly connecting the pump inlet to the expansion tank.
2. The system according to claim 1 further comprising a common static line portion connected to the expansion tank, and wherein the static line of each coolant circuit fluidly connects the respective pump inlet to the expansion tank via the common static line portion.
3. The system according to claim 1, wherein the two or more coolant circuits comprises three or more coolant circuits.
4. The system according to claim 1, wherein at least two coolant circuits of the two or more coolant circuits are configured to operate at different temperature levels.
5. The system according to claim 1, wherein the heat transferring system comprises one or more mixing lines for transferring coolant between at least two coolant circuits of the two or more coolant circuits.
6. The system according to claim 5, wherein the heat transferring system comprises a valve arrangement configured to control flow of coolant through the one or more mixing lines.
7. The system according to claim 5, wherein at least one of the one or more mixing lines is connected to the expansion tank.
8. The system according to claim 1, wherein the system further comprises a common static line portion connected to the expansion tank, and wherein the static line of each coolant circuit fluidly connects the respective pump inlet to the expansion tank via the common static line portion, wherein the heat transferring system comprises one or more mixing lines for transferring coolant between at least two coolant circuits of the two or more coolant circuits, wherein at least one of the one or more mixing lines is connected to the common static line portion.
9. The system according to claim 5, wherein the heat transferring system comprises a set of mixing lines comprising at least the same number of mixing lines as the number of coolant circuits of the thermal management system.
10. The system according to claim 5, wherein each coolant circuit of the two or more coolant circuits comprises a mixing line configured to transfer coolant from the coolant circuit to another coolant circuit of the two or more coolant circuits.
11. The system according to claim 5, wherein at least one of the one or more mixing lines fluidly connects a pump outlet of a coolant pump of one coolant circuit to a pump inlet of a coolant pump of another coolant circuit of the two or more coolant circuits.
12. The system according to claim 5, wherein the heat transferring system comprises a heat pump circuit comprising a condenser arranged in one coolant circuit and an evaporator arranged in another coolant circuit of the two or more coolant circuits.
13. The system according to claim 1, wherein one of the two or more coolant circuits is an occupant compartment heating circuit configured to heat an occupant compartment of a vehicle comprising the thermal management system.
14. The system according to claim 13, wherein the heat transferring system comprises a heat pump circuit comprising a condenser arranged in one coolant circuit and an evaporator arranged in another coolant circuit of the two or more coolant circuits, wherein the condenser is arranged in the occupant compartment heating circuit.
15. The system according to claim 1, wherein at least one of the two or more coolant circuits is configured to regulate the temperature of a component of an electric propulsion system.
16. A vehicle comprising a thermal management system configured to regulate the temperature of a number of vehicle components, wherein the system comprises: an expansion tank; two or more coolant circuits each configured to regulate the temperature of a vehicle component of the number of vehicle components; and a heat transferring system configured to transfer heat between at least two coolant circuits of the two or more coolant circuits, wherein each coolant circuit of the two or more coolant circuits comprises: a heat exchanger configured to regulate the temperature of coolant in the coolant circuit; a coolant pump comprising a pump inlet; and a static line fluidly connecting the pump inlet to the expansion tank.
17. The system according to claim 16 further comprising a common static line portion connected to the expansion tank, and wherein the static line of each coolant circuit fluidly connects the respective pump inlet to the expansion tank via the common static line portion.
18. The system according to claim 16, wherein the two or more coolant circuits comprises three or more coolant circuits.
19. The system according to claim 16, wherein at least two coolant circuits of the two or more coolant circuits are configured to operate at different temperature levels.
20. The system according to claim 16, wherein the heat transferring system comprises one or more mixing lines for transferring coolant between at least two coolant circuits of the two or more coolant circuits.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0031] Various Aspects of the Invention, Including its Particular Features and Advantages, Will be Readily Understood from the Example Embodiments Discussed in the Following Detailed Description and the Accompanying Drawings, in which:
[0032]
[0033]
[0034]
[0035]
DETAILED DESCRIPTION
[0036] Aspects of the present invention will now be described more fully. Like numbers refer to like elements throughout. Well-known functions or constructions will not necessarily be described in detail for brevity and/or clarity.
[0037]
[0038] Each coolant circuit 1, 2, 3 of the multiple of coolant circuits 1, 2, 3 comprises a heat exchanger 31, 32, 33 configured to regulate the temperature of coolant in the coolant circuit 1, 2, 3. The respective heat exchanger 31, 32, 33 may be a radiator, which may be arranged at a front area of a vehicle comprising the system 10 so as to be subjected to an airflow during driving of the vehicle. Moreover, each coolant circuit 1, 2, 3 of the multiple of coolant circuits 1, 2, 3 comprises a coolant pump 21, 22, 23 comprising a pump inlet 21′, 22′, 23′. Each coolant pump 21, 22, 23 is configured to circulate coolant through the respective coolant circuit 1, 2, 3. Moreover, according to the illustrated embodiments, each coolant circuit 1, 2, 3 comprises a bypass line 81, 82, 83 and a valve 71, 72, 73. The bypass line 81, 82, 83 of a coolant circuit 1, 2, 3 bypasses the heat exchanger 31, 32, 33 of the coolant circuit 1, 2, 3. The respective valve 71, 72, 73 is configured to direct coolant to the bypass line 81, 82, 83 and/or to a conduit portion 91, 92, 93 connected to the heat exchanger 31, 32, 33 of the coolant circuit 1, 2, 3. Thereby, the temperature of coolant in the coolant circuits 1, 2, 3 can be regulated by regulating the valves 71, 72, 73. The valves 71, 72, 73 may be thermostatic valves configured to open and close to the bypass line 81, 82, 83 and/or to a conduit portion 91, 92, 93 based on the temperature of coolant pumped to the valve 71, 72, 73. As an alternative, or in addition, valves 71, 72, 73 may be electronically controlled valves 71, 72, 73 controlled by a control arrangement.
[0039] According to further embodiments of the herein described, the one or more of the coolant circuits 1, 2, 3 of the multiple of coolant circuits 1, 2, 3 may lack a bypass line 81, 82, 83 bypassing the heat exchanger 31, 32, 33 of the coolant circuit 1, 2, 3 and consequently also a valve 71, 72, 73 configured to direct coolant to the bypass line 81, 82, 83 and/or to a conduit portion 91, 92, 93 connected to the heat exchanger 31, 32, 33 of the coolant circuit 1, 2, 3. According to such embodiments, the temperature of coolant in the coolant circuit 1, 2, 3, and/or the cooling power of the vehicle component 11, 12, 13, may be regulated by controlling operation of the coolant pump 21, 22, 23 of the coolant circuit 1, 2, 3 and/or by controlling operation of a fan configured to generate an airflow through the heat exchanger 31, 32, 33 of the coolant circuit 1, 2, 3. According to embodiments herein, each coolant circuit 1, 2, 3 of the multiple of coolant circuits 1, 2, 3 comprises a static line 41, 42, 43 fluidly connecting the pump inlet 21′, 22′, 23′ of the coolant pump 21, 22, 23 to the expansion tank 5.
[0040] Due to these features, the respective cooling circuit 1, 2, 3 of the multiple of coolant circuits 1, 2, 3 can be operated in an independent and individual manner so as to regulate the temperature of a vehicle component 11, 12, 13. That is, a cooling circuit 1, 2, 3 of the multiple of coolant circuits 1, 2, 3 can be operated at a different temperature level and at a different coolant flow rate level than the other coolant circuits 1, 2, 3 of the system 10. Furthermore, since the system 10 comprises one common expansion tank 5 fluidly connected to each coolant circuit 1, 2, 3 of the system 10, a less complex and costly system 10 is provided. In addition, a system 10 is provided having conditions for utilizing available space in a vehicle in an efficient manner.
[0041] Moreover, a modularized system 10 is provided in which coolant circuits 1, 2, 3 can be added and removed from the system 10 for different configurations of vehicles without significantly adding cost, complexity, and weight to a vehicle comprising the system 10.
[0042] According to the illustrated embodiments, the expansion tank 5 is mounted at a higher point than the other components of the system 1 relative to a local gravity vector gv when the system 10 is mounted to a vehicle and the vehicle is positioned in an upright use position. Each static line 41, 42, 43 fluidly connects the expansion tank 5 to a coolant circuit 1, 2, 3. Moreover, each static line 41, 42, 43 may be formed by a duct or conduit. In this manner, when the system 10 is filled with coolant, the static lines 41, 42, 43 will provide a static pressure to a respective coolant circuit 1, 2, 3 of the system 10. A static line 41, 42, 43 is separated from a coolant circuit 1, 2, 3 in the sense that no coolant is pumped through the static line 41, 42, 43, during normal operation of the coolant circuit 1, 2, 3, upon operation of the coolant pump 21, 22, 23 of the coolant circuit 1, 2, 3. Accordingly, substantially no flow of fluid, or at least only a low flow rate of fluid, may be provided through the respective static line 41, 42, 43 during normal operation of the system 10.
[0043] As can be seen in
[0044] According to the illustrated embodiments, the system 10 comprises a common static line portion 4 connected to the expansion tank 5. The static line 41, 42, 43 of each coolant circuit 1, 2, 3 fluidly connects the respective pump inlet 21′, 22′, 23′ to the expansion tank 5 via the common static line portion 4. Thereby, a further simplified system 10 is provided in which coolant circuits 1, 2, 3 can be added to the system 10 simply by connecting a static line 41, 42, 43 of the added coolant circuit 1, 2, 3 to the common static line portion 4. The common static line portion 4 may have a greater cross sectional area than the individual static lines 41, 42, 43. According to further embodiments, the static lines 41, 42, 43 of the system 10 may be directly connected to the expansion tank 5.
[0045] According to the illustrated embodiments, each of the coolant circuits 1, 2, 3 of the multiple of coolant circuits 1, 2, 3 are configured to operate at different temperature levels. According to further embodiments, at least two coolant circuits 1, 2, 3 of the multiple of coolant circuits 1, 2, 3 may be configured to operate at different temperature levels.
[0046] According to the illustrated embodiments, the thermal management system 10 comprises a heat transferring system 20 configured to transfer heat between at least two coolant circuits 1, 2, 3 of the multiple of coolant circuits 1, 2, 3. In more detail, according to the illustrated embodiments, each coolant circuit 1, 2, 3 of the multiple of coolant circuits 1, 2, 3 comprises a mixing line 51, 52, 53 configured to transfer coolant from the coolant circuit 1, 2, 3 to another coolant circuit 1, 2, 3 of the multiple of coolant circuits 1, 2, 3. The heat transferring system 20 may thus comprise a set of mixing lines 51, 52, 53 comprising the same number of mixing lines 51, 52, 53 as the number of coolant circuits 1, 2, 3 of the thermal management system 10. Moreover, according to the illustrated embodiments, each mixing line 51, 52, 53 is connected to the expansion tank 5. In more detail, each mixing line 51, 52, 53 fluidly connects a portion of the respective coolant circuit 1, 2, 3 downstream of the heat exchanger 31, 32, 33 of the coolant circuit 1, 2, 3 to the expansion tank 5. Moreover, each mixing line 51, 52, 53 is connected to a second connection 5″ of the expansion tank 5, whereas the common static line portion 4 is connected to a first connection 5′ of the expansion tank 5. According to further embodiments, the system 10 may comprise a common mixing line portion connected to the second connection 5″ of the expansion tank 5, wherein the mixing lines 51, 52, 53 are connected to the common mixing line portion. According to further embodiments of the herein described, the system 10 may comprise one or more mixing lines 51, 52, 53 for transferring coolant between at least two coolant circuits 1, 2, 3 of the multiple of coolant circuits 1, 2, 3. Moreover, a least one of such one or more mixing lines 51, 52, 53 may be connected to the expansion tank 5.
[0047] Thus, the heat transferring system 20, as referred to herein, may comprise one or more mixing lines 51, 52, 53 for transferring coolant between at least two coolant circuits 1, 2, 3 of the multiple of coolant circuits 1, 2, 3 so as to transfer heat between the at least two coolant circuits 1, 2, 3. According to further embodiments, the heat transferring system 20 may have another layout and/or design and may be configured to transfer heat between at least two coolant circuits 1, 2, 3 of the multiple of coolant circuits 1, 2, 3 in another manner by conduction, by convection, and/or by radiation for example using an arrangement or a system such as a heat exchanger, a heat pump circuit, or the like, as is further explained herein. The heat transferring system 20, as referred to herein, may also be referred to as a heat transferring arrangement.
[0048] According to the illustrated embodiments, the heat transferring system 20 comprises a valve arrangement 61, 62, 63 configured to control flow of coolant through the mixing lines 51, 52, 53. In more detail, according to the illustrated embodiments, each mixing line 51, 52, 53 comprises a valve 61, 62, 63 configured to control flow of coolant through the mixing line 51, 52, 53. In this manner, a system 10 is provided in which heat can be transferred from a colder cooling circuit 1, 2, 3 to a warmer cooling circuit 1, 2, 3 and vice versa, via the expansion tank 5. Thus, according to the embodiments illustrated in
[0049] Moreover, as indicated above, according to the illustrated embodiments, each mixing line 51, 52, 53 is connected to the respective coolant circuit 1, 2, 3 at a location downstream of the heat exchanger 31, 32, 33 of the coolant circuit 1, 2, 3. Thereby, each mixing line 51, 52, 53 can be utilized for deairing the respective coolant circuit 1, 2, 3. Each mixing line 51, 52, 53 of the system 10 may be routed so as to facilitate the transport of air bubbles from the respective coolant circuit 1, 2, 3 to the expansion tank 5 by gravity. In more detail, each mixing line 51, 52, 53 of the system 10 may be routed such that that an extension direction of the mixing line 51, 52, 53 has a vector component parallel to a local gravity vector gv along the full length of the mixing line 51, 52, 53 when the system 10 is mounted in an intended mounting position on a vehicle and the vehicle is positioned in an upright use position. Moreover, according to some embodiments, one or more of the mixing lines 51, 52, 53 of the system 10 may be routed such that that a portion of the mixing line 51, 52, 53 has an extension direction parallel to a horizontal plane at the location of the system 10. According to such embodiments, such a mixing line 51, 52, 53 may be routed such that a vector component of the extension direction parallel to a local gravity vector gv does not change sign along the full length of the mixing line 51, 52, 53 when the system 10 is mounted in an intended mounting position on a vehicle and the vehicle is positioned in an upright use position. In this manner, air bubbles entering a mixing line 51, 52, 53 can be transported along the full length of the mixing line 51, 52, 53 in an efficient manner due to gravity and the density difference between the air bubbles and the coolant. Since each mixing line 51, 52, 53 can be utilized for deairing the respective coolant circuit 1, 2, 3, the mixing lines 51, 52, 53, as referred to herein, may also be referred to as a “deaeration line” 51, 52, 53.
[0050] According to further embodiments of the present disclosure, one or more of the coolant circuits 1, 2, 3 of the multiple of coolant circuits 1, 2, 3 may lack a mixing line 51, 52, 53 configured to transfer coolant from the coolant circuit 1, 2, 3 to another coolant circuit 1, 2, 3 of the multiple of coolant circuits 1, 2, 3. Moreover, according to some embodiments, each of the coolant circuits 1, 2, 3 of the multiple of coolant circuits 1, 2, 3 may lack a mixing line 51, 52, 53 configured to transfer coolant from the coolant circuit 1, 2, 3 to another coolant circuit 1, 2, 3 of the multiple of coolant circuits 1, 2, 3.
[0051] According to the illustrated embodiments, the system 10 comprises a first coolant circuit 1 configured to operate at a high temperature level, a second coolant circuit 2 configured to operate at an intermediate temperature level, and a third coolant circuit 3 configured to operate at a low temperature level. As an example, in order to transfer heat from the first circuit 1 to the third circuit 3, the valves 61, 63 of the first and third circuits 1, 3 can be controlled to an open state. As a result thereof, coolant from the first and third circuit 1, 3 is mixed in the expansion tank 5. Moreover, a flow of coolant is obtained from the expansion tank 5 to the first and second coolant circuit 1, 3 via the common static line portion 4 and the respective static line 41, 43 of the first and third coolant circuits 1, 3. In this manner, the first coolant circuit 1 is fed with coolant having a lower temperature than would be the case if the valves 61, 63 were in a closed state and the third coolant circuit 3 is fed with coolant having a higher temperature than would be the case if the valves 61, 63 were in a closed state. The second coolant circuit 2 is unaffected as long as the valve 62 of the mixing line 52 thereof is in a closed state. This is because there is only one fluid connection to the other coolant circuits 1, 3 via the static line 42 of the second coolant circuit 2 when the valve 62 of the mixing line 52 of the second coolant circuit 2 is in a closed state. Accordingly, the coolant circuits 1, 2, 3 of the system 10 are closed circuits in the sense that coolant is pumped through a coolant circuit 1, 2, 3 when the respective valve 61, 62, 63 is in a closed state.
[0052] The system 10 according to the present disclosure may comprise a control arrangement configured to control the opening states of the valves 61, 62, 63. Such a control arrangement is not illustrated in
[0053]
[0054] According to the embodiments illustrated in
[0055]
[0056] Each coolant circuit 1, 2, 3 of the multiple of coolant circuits 1, 2, 3 comprises a heat exchanger 31, 32, 33 configured to regulate the temperature of coolant in the coolant circuit 1, 2, 3. The respective heat exchanger 31, 32, 33 may be a radiator, which may be arranged at a front area of a vehicle comprising the system 10 so as to be subjected to an airflow during driving of the vehicle. Moreover, each coolant circuit 1, 2, 3 of the multiple of coolant circuits 1, 2, 3 comprises a coolant pump 21, 22, 23 comprising a pump inlet 21′, 22′, 23′. Each coolant pump 21, 22, 23 is configured to circulate coolant through the respective coolant circuit 1, 2, 3. Moreover, each coolant circuit 1, 2, 3 comprises a bypass line 81, 82, 83 and a valve 71, 72, 73. The bypass line 81, 82, 83 of a coolant circuit 1, 2, 3 bypasses the heat exchanger 31, 32, 33 of the coolant circuit 1, 2, 3. The respective valve 71, 72, 73 is configured to direct coolant to the bypass line 81, 82, 83 and/or to a conduit portion 91, 92, 93 connected to the heat exchanger 31, 32, 33 of the coolant circuit 1, 2, 3. Thereby, the temperature of coolant in the coolant circuits 1, 2, 3 can be regulated by regulating the valves 71, 72, 73. The valves 71, 72, 73 may be thermostatic valves configured to open and close to the bypass line 81, 82, 83 and/or to a conduit portion 91, 92, 93 based on the temperature of coolant pumped to the valve 71, 72, 73. As an alternative, or in addition, valves 71, 72, 73 may be electronically controlled valves 71, 72, 73 controlled by a control arrangement.
[0057] According to further embodiments of the herein described, the one or more of the coolant circuits 1, 2, 3 of the multiple of coolant circuits 1, 2, 3 may lack a bypass line 81, 82, 83 bypassing the heat exchanger 31, 32, 33 of the coolant circuit 1, 2, 3 and consequently also a valve 71, 72, 73 configured to direct coolant to the bypass line 81, 82, 83 and/or to a conduit portion 91, 92, 93 connected to the heat exchanger 31, 32, 33 of the coolant circuit 1, 2, 3. According to such embodiments, the temperature of coolant in the coolant circuit 1, 2, 3, and/or the cooling power of the vehicle component 11, 12, 13, may be regulated by controlling operation of the coolant pump 21, 22, 23 of the coolant circuit 1, 2, 3 and/or by controlling operation of a fan configured to generate an airflow through the heat exchanger 31, 32, 33 of the coolant circuit 1, 2, 3. According to embodiments herein, each coolant circuit 1, 2, 3 of the multiple of coolant circuits 1, 2, 3 comprises a static line 41, 42, 43 fluidly connecting the pump inlet 21′, 22′, 23′ to the expansion tank 5.
[0058] According to the illustrated embodiments, the expansion tank 5 is mounted at a higher point than the other components of the system 10 relative to a local gravity vector gv when the system 10 is mounted to a vehicle and the vehicle is positioned in an upright use position. Each static line 41, 42, 43 fluidly connects the expansion tank 5 to a coolant circuit 1, 2, 3. Moreover, each static line 41, 42, 43 may be formed by a duct or conduit. In this manner, when the system 10 is filled with coolant, the static lines 41, 42, 43 will provide a static pressure to a respective a respective coolant circuit 1, 2, 3 of the system 10. A static line 41, 42, 43 is separated from a coolant circuit 1, 2, 3 in the sense that no coolant is pumped through the static line 41, 42, 43, during normal operation of the coolant circuit 1, 2, 3, upon operation of the coolant pump 21, 22, 23 of the coolant circuit 1, 2, 3. Accordingly, substantially no flow of fluid, or at least only a low flow rate of fluid, may be provided through the respective static line 41, 42, 43 during normal operation of the system 10.
[0059] As can be seen in
[0060] According to the illustrated embodiments, the system 10 comprises a common static line portion 4 connected to the expansion tank 5. The static line 41, 42, 43 of each coolant circuit 1, 2, 3 fluidly connects the respective pump inlet 21′, 22′, 23′ to the expansion tank 5 via the common static line portion 4. Thereby, a further simplified system 10 is provided in which coolant circuits 1, 2, 3 can be added to the system 10 simply by connecting a static line 41, 42, 43 of the added coolant circuit 1, 2, 3 to the common static line portion 4. The common static line portion 4 may have a greater cross sectional area than the individual static lines 41, 42, 43. According to further embodiments, the static lines 41, 42, 43 of the system 10 may be directly connected to the expansion tank 5.
[0061] According to the illustrated embodiments, each of the coolant circuits 1, 2, 3 of the multiple of coolant circuits 1, 2, 3 are configured to operate at different temperature levels. According to further embodiments, at least two coolant circuits 1, 2, 3 of the multiple of coolant circuits 1, 2, 3 may be configured to operate at different temperature levels.
[0062] According to the illustrated embodiments, the thermal management system 10 comprises a heat transferring system 20 configured to transfer heat between at least two coolant circuits 1, 2, 3 of the multiple of coolant circuits 1, 2, 3. In more detail, According to the embodiments illustrated in
[0063] According to the illustrated embodiments, one of the multiple of coolant circuits 1, 2, 3 is an occupant compartment heating circuit 1 configured to heat an occupant compartment 35 of a vehicle 30 comprising the thermal management system 10. As seen in
[0064] The heat transferring system 20 of the thermal management system 10 illustrated in
[0065] According to the illustrated embodiments, the heat transferring system 20 comprises a first mixing line 51′ fluidly connecting a pump outlet 21″ of a coolant pump 21 of a first coolant circuit 1 to a pump inlet 23′ of a coolant pump 23 of a third coolant circuit 3. Moreover, the heat transferring system 20 comprises a valve 61′ configured to regulate flow of coolant through the first mixing line 51′. In this manner, coolant can be transferred in a direct manner from the first coolant circuit 1 to the third coolant circuit 3 via the first mixing line 51′ so as to transfer heat from the first coolant circuit 1 to the third coolant circuit 3. Coolant may be returned from the third coolant circuit 3 to the first coolant circuit 1 via the static line 43 of the third coolant circuit 3, the common static line portion 4, and the static line 41 of the first coolant circuit 1. Thus, in this manner, coolant can be transferred in a direct manner from the third coolant circuit 3 to the first coolant circuit 1 so as to transfer heat from the third coolant circuit 3 to the first coolant circuit 1. By controlling the opening degree of the valve 61′ and the operation rate of the coolant pumps 21, 23 of the first and third coolant circuits 1, 3, the mixing rate between the first and third coolant circuits 1, 3 can be controlled in an efficient manner.
[0066] Moreover, according to the illustrated embodiments, the heat transferring system 20 comprises a second mixing line 52′ fluidly connecting a pump outlet 21″ of a coolant pump 21 of a first coolant circuit 1 to a pump inlet 22′ of a coolant pump 22 of the second coolant circuit 2. Moreover, the heat transferring system 20 comprises a valve 62′ configured to regulate flow of coolant through the second mixing line 52′. According to the illustrated embodiments, the valve 62′ is configured to regulate flow of coolant through the second mixing line 52′ in an indirect manner, as is explained in the following. According to the embodiments illustrated in
[0067] The system 10 according to the present disclosure may comprise a control arrangement configured to control the opening states of the valves 61′, 62′. Such a control arrangement is not illustrated in
[0068] The system 10 according to the embodiments illustrated in
[0069] Moreover, the system 10 according to the embodiments illustrated in
[0070] Since the thermal management system 10 described herein comprises a number of coolant circuits 1, 2, 3, the thermal management system 10 may also be referred to as a cooling system 10, or a coolant system 10.
[0071]
[0072] The vehicle 30 comprises an electric propulsion system 40 configured to provide motive power to the vehicle 30 via wheels 38 of the vehicle 30. The electric propulsion system 40 may comprise one or more electric machines, one or more propulsion batteries, power electronics and the like. Moreover, the vehicle 30 illustrated in
[0073] The wording upstream and downstream, as used herein, relates to the relative positions of objects in relation to an intended flow direction of fluid in the system or circuit referred to. As an example, the feature that a first object is arranged upstream of a second object in a circuit means that the first object is arranged before the second object seen relative to the intended flow direction of fluid through the circuit. As another example, the feature that a first object is arranged downstream of a second object in a circuit means that the first object is arranged after the second object seen relative to the intended flow direction of fluid through the circuit.
[0074] It is to be understood that the foregoing is illustrative of various example embodiments and that the invention is defined only by the appended claims. A person skilled in the art will realize that the example embodiments may be modified, and that different features of the example embodiments may be combined to create embodiments other than those described herein, without departing from the scope of the present invention, as defined by the appended claims.
[0075] As used herein, the term “comprising” or “comprises” is open-ended, and includes one or more stated features, elements, steps, components, or functions but does not preclude the presence or addition of one or more other features, elements, steps, components, functions, or groups thereof.