FLOW RESTRICTOR
20230130382 ยท 2023-04-27
Inventors
Cpc classification
F16L55/027
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15D1/025
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H01M10/6556
ELECTRICITY
Y02E60/10
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
H01M50/213
ELECTRICITY
International classification
F15D1/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H01M10/6556
ELECTRICITY
Abstract
A cooling system for a battery module, said cooling system including: at least one flow tube adapted to receive a cooling fluid, wherein a material of the at least one flow tube is a polymer-based material, and a member attached on an inner wall of at least a part of the at least one flow tube, wherein a material of the member is a metal, said member being sized such as to reduce the flow of the cooling fluid through the at least one flow tube to thereby achieve a balanced flow.
Claims
1. A cooling system comprising: at least one flow tube adapted to receive a cooling fluid, wherein a material of the at least one flow tube is a polymer-based material; and a member attached on an inner wall of at least a part of the at least one flow tube, wherein a material of the member is a metal, said member being sized such as to reduce flow of the cooling fluid through the at least one flow tube to thereby achieve a balanced flow.
2. The cooling system of claim 1, wherein the member is attached on the inner wall of the at least one flow tube by press-fitting.
3. The cooling system of claim 1, further comprising: a hose arranged around an outer wall of the at least one flow tube, wherein a material of the hose is a silicone-based material.
4. The cooling system of claim 3, further comprising: a clamp member arranged at a predetermined position on the outer wall of the hose.
5. The cooling system of claim 4, wherein the predetermined position overlaps, at least in part, with the part of the at least one flow tube on which the member is arranged on the inner wall of the at least one flow tube.
6. The cooling system of claim 4, wherein a length of the member is longer for a predetermined value than a width of the clamp member in a direction along the length of the at least one flow tube.
7. The cooling system of claim 4, wherein the member has a predetermined thickness, wherein the predetermined thickness of the member is determined depending on a clamping force to be applied when arranging the clamp member.
8. The cooling system of claim 1, wherein the member has an outer diameter and an inner diameter, wherein the inner diameter has a predetermined value such as to reduce the flow of the cooling fluid through the at least one flow tube to thereby achieve a balanced flow.
9. The cooling system of claim 1, wherein the member is attached on the inner wall of an end portion of the at least one flow tube.
10. A method of manufacturing a cooling system, said method comprising: providing at least one flow tube adapted to receive a cooling fluid, wherein a material of the at least one flow tube is a polymer-based material; and attaching a member on an inner wall of at least a part of the at least one flow tube, wherein a material of the member is a metal, said member being sized such as to reduce flow of the cooling fluid through the at least one flow tube to thereby achieve a balanced flow.
11. The cooling system according to claim 1, wherein the cooling system is provided in a battery pack, said battery pack comprising one or more battery modules, each battery module comprising a plurality of battery cells.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0015] Embodiments of the present invention, which are presented for better understanding the inventive concepts, but which are not to be seen as limiting the invention, will now be described with reference to the figures in which:
[0016]
[0017]
[0018]
[0019]
[0020]
[0021]
DETAILED DESCRIPTION
[0022]
[0023] The cooling system (cooling arrangement) comprises at least one flow tube 1 (a part of one flow tube 1 being shown in
[0024] The cooling system may comprise one flow tube 1, as it is shown in
[0025] The flow tube 1 may have a cylindrical shape and accordingly circular cross-section but may also have at least in part other shape with other cross-section if needed.
[0026] Normally, the material of the at least one flow tube 1 is a polymer-based material. The term polymer-based material is to be understood in the context described here below as pure polymer material or as a composite material comprising polymer material and a non-polymer material. The pure polymer material may be natural polymer or man-made polymer such as semi-natural or purely synthetic polymer. For example, the material of the at least one flow tube 1 may be plastic.
[0027] The polymer-based flow tube 1 (for example plastic tube) is in general not robust to applied external force such as mechanical force, for example clamping force applied when mounting a clamp to the flow tube 1. The clamp is normally mounted to connect two flow tubes 1 together or to mount the flow tube 1 on a predetermined position in the environment in which the cooling system is provided.
[0028] To increase the robustness of the flow tube 1 a member such as a metal insert 11 is attached to the flow tube 1 on the inner wall 1-1 of the flow tube 1. The attaching of the metal member 11 to the inner wall 1-1 of the flow tube 1 may be performed by press-fitting. When applying press-fitting the metal insert 11 is mechanically pressed in the flow tube 1 (or more specifically in the inner wall 1-1 of the flow tube 1) such that the shape of the flow tube 1 follows the shape of the metal insert 11. For this, the inner diameter of the flow tube 1 is for a predetermined value smaller than the outer diameter of the metal insert 11. The metal insert 11 may also have a cylindrical shape with accordingly circular cross section when the flow tube has a cylindrical shape as elaborated above but may also have other suitable shape if needed. The metal insert 11 may have smooth outer wall but may also have one or more protrusions 11-1 on the outer wall as shown in
[0029] On the metal insert 11 (and more specifically on the inner wall of the metal insert 11) the above described flow restrictor 12 is attached for balancing the flow distribution of the cooling fluid. The attachment is normally performed by use of an adhesive 13 applied between the metal insert 11 and the flow restrictor 12. In other words, normally the flow restrictor 12 is glued to the metal insert 11.
[0030] However, in such cooling system in which adhesive 13 is used for gluing the flow restrictor 12 to the metal insert 11 the cooling fluid which is in direct contact with the flow restrictor 12 can unstick or detach the flow restrictor 12 from the metal insert 11 and the detached flow restrictor 12 may cause disruption of the cooling fluid flow or even block the cooling fluid flow in the flow tube 1.
[0031] Therefore, the present invention aims at providing a cooling system, also called a cooling arrangement here below, in which balanced flow distribution of the cooling fluid is achieved while disruption of a cooling fluid flow is prevented and the robustness of the cooling system to external mechanical influences is increased. The cooling system 100 (cooling arrangement) according to the present invention may be provided in different environments, as elaborated further below, for cooling one or more heat generating components.
[0032] For this, according to the present invention the two members i.e. the metal insert 11 and the flow restrictor 12 are replaced for enabling the two functions of crash support and balanced flow distribution with one member that performs both functions. This also eliminates the need for use of the above-described adhesive 13 and hence eliminates the risk of the flow restrictor 12 elaborated above to unstick or detach from the metal insert 11 to thereby disrupt the cooling fluid flow.
[0033]
[0034] The cooling system 100 according to the embodiment of the present invention comprises at least one flow tube 1 adapted to receive a cooling fluid. The material of the at least one flow tube 1 is a polymer-based material. The same elaborations regarding the at least one flow tube 1 from above apply to the embodiment of the present invention described here below as well.
[0035] The cooling system 100 comprises further a member 2 attached on the inner wall 1-1 of at least a part of the at least one flow tube 1. The material of the member 2 is a metal. In this way, by the material of the member 2 being metal the member 2 acts as a crush support and increases the robustness of the flow tube 1. Accordingly, a cooling channel 20 is formed in the at least one flow tube 1 on which inner wall the member 2 is attached through which cooling fluid can flow. The member 2 may be attached on different positions on the inner wall of the flow tube 1. Preferably, the member 2 is attached on the inner wall 11-1 at one end position (end portion) of the flow tube 1 as shown for example in
[0036] The member 2 may also have a cylindrical shape and circular cross section (as shown in
[0037] The member 2 is sized such as to reduce the flow of the cooling fluid (when flowing) through the at least one flow tube 1 to thereby achieve a balanced flow. As it is shown in
[0038] The member 2 is attached to the inner wall 1-1 of the flow tube 1 by press-fitting. The same elaborations regarding press-fitting from above apply here as well. More specifically, the inner diameter 1-1 of the flow tube is for a predetermined value smaller than the outer diameter (d2) of the member 2 such that when the member 2 is press-fitted in the flow tube 1 the flow tube 1 at least in the part in which the member 2 is press-fitted takes the shape of the member 2. For example when the member 2 is provided with one or more protrusions 2-1 on the outer wall as shown in
[0039] The member 2 being attached on the inner wall of at least a part of the at least one flow tube 1 in one embodiment of the present invention means that the inner wall 1-1 of the flow tube 1 is in a direct contact with the outer wall of the member 2. The member 2 being attached on the inner wall of at least a part of the at least one flow tube in other embodiment of the present invention means that the inner wall 1-1 of the flow tube 1 is in contact with the outer wall of the member 2 via a further layer. Such further layer may be for example a layer that facilitates the connection via press-fitting between the flow tube 1 and the member 2.
[0040] As elaborated above the material of the member 2 is metal. The metal may be chosen in accordance with the type of cooling fluid flowing through the cooling channel. In other words, the metal may be chosen such that the cooling fluid is not able to make a damage, for example to cause corrosion of the metal, since the cooling fluid is in direct contact with the member 2. For example, the metal may be stainless steel or an appropriate alloy not being sustainable to corrosion or other damage caused by the cooling fluid.
[0041] The member 2 has a predetermined thickness. Thickness of the member is to be understood as the dimension of the member 2 between the inner wall of the member 2 and the outer wall of the member 2 in the direction perpendicular to the longitudinal direction of the flow tube (y direction in
[0042] As elaborated above, the inner diameter (d1) of the member 2 is chosen to have a predetermined value such as to reduce the flow of the cooling fluid through the at least one flow tube to thereby achieve a balanced flow.
[0043] Therefore, the thickness (y) of the member 2 may be chosen such that a balance is achieved between the reduction of the flow of the cooling fluid and the robustness the member 2 provides to the flow tube 1.
[0044] The cooling system 100 comprises further a hose 3 arranged around the outer wall 1-2 of the flow tube 1. The hose 3 is arranged in the part of the flow tube 1 where the member 2 is arranged. The material of the hose 3 is a flexible material having at least the ability to bend such as for example rubber or a silicon-based material. The hose 3 may be arranged directly on the outer wall 1-2 of the flow tube 1 or may be arranged via an intermediate layer on the outer wall 1-2 of the flow tube 1. Such intermediate layer may be, for example, an intermediate layer that facilitates the arrangement of the hose 3 around the outer wall 1-2 of the flow tube 1.
[0045] The cooling system 100 comprises further at least one clamp member 4. The at least one clamp member 4 is arranged at a predetermined position on the outer wall of the hose 3.
[0046] The predetermined position overlaps, at least in part, with the part of the flow tube 1 on which the member 2 is arranged on the inner wall of the flow tube 1. The overlap is shown in
[0047] As elaborated above, the clamp member 4 may be used, for example, to connect two flow tubes 1 together or to mount the flow tube 1 on a predetermined position in the environment in which the cooling system 100 is provided. For example, the clamp member 4 may be used to connect the flow tube 1 to a specific part for distribution of the cooling fluid in the flow tube 1, for example an inlet member and/or an outlet member.
[0048] Such inlet member and outlet member may be configured to be connected to feedline pipes or further tubes for distribution of the cooling fluid. The cooling fluid may be stored in a cooling fluid tank. The cooling fluid may be supplied in the at least one flow tube 1 through the inlet member and leave the at least one flow tube 1 through the outlet member. The cooling fluid that leaves through the outlet member may be stored in a different cooling tank or the same cooling tank. A pump may be used for distributing the cooling fluid. The cooling fluid may be water, oil, a mixture thereof or other suitable cooling fluid.
[0049] The clamp member 4 may be made from a metal or a metal-based material and is arranged to be mounted at the predetermined position by applying external mechanical force, also called a clamping force. The clamp member 4 is arranged on the outer wall of the hose 3 preferably along the entire circumference of the hose 3. The hose 3 enables that the clamp member 4 is not arranged directly on the rigid flow tube 1 which may damage the rigid flow tube 1 and serves as a connection point for arranging the clamp member 4 on the flow tube 1. In this way, the combination of the hose 3 and the clamp member 4 serves to prevent leakage of the cooling fluid when flowing through the flow tube 1.
[0050] The length of the member 2 (l) is larger for a predetermined value than the width (w) of the clamp member 4 in the longitudinal direction of the flow tube 1 as shown in FIG. 3B. Preferably, the clamp member 4 is arranged such that at least a part of the member 2 extends on both sides of the clamp member 4 below the clamp member 4 in the longitudinal direction of the flow tube 1. In
[0051] The thickness (y) of the member 2 is determined depending on the clamping force to be applied when arranging the clamp member and hence is determined depending on the degree of robustness the member 2 should provide to the flow tube as elaborated above.
[0052]
[0053]
[0054] The battery pack 300 may be mounted in a vehicle. The vehicle may be an electric vehicle but may also be a hybrid vehicle or a conventional fuel-based internal combustion vehicle.
[0055] The cooling system 100 according to the present invention may be used and accordingly provided also in environment other than a battery pack. For example, the cooling system 100 according to the present invention may be provided in the vehicle for cooling other heat generating components of the vehicle or may be provided in environment other than a vehicle.
[0056] In general, the cooling system 100 according to the present invention may be provided in various environments for cooling one or more heat generating components where cooling via a distribution of a cooling fluid is needed and applied.
[0057] Although detailed embodiments have been described, these only serve to provide a better understanding of the invention defined by the independent claims and are not to be seen as limiting.