Air Cooling Unit

By incorporating a protrusion in the air outlet to stabilize air flow, the air-cooling unit ensures accurate temperature detection and safe operation of electrical devices by reducing air flow impact on sensors, preventing overheating.

JP7768099B2Active Publication Date: 2025-11-12TOYOTA JIDOSHA KK
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Patent Information

Application Number
JP2022177237
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-11-04
Publication Date
2025-11-12
Estimated Expiration
2042-11-04

AI Technical Summary

Technical Problem

Temperature sensors in air-cooling units are affected by the air blowing volume, leading to inaccurate temperature detection and difficulty in appropriately limiting the operation of electrical devices.

Method used

The air-cooling unit incorporates a protrusion in the air outlet to stabilize the air flow rate downstream of the temperature sensor, ensuring consistent temperature detection by positioning the sensor downstream of the protrusion and reducing air flow impact.

Benefits of technology

This configuration allows for reliable operation control of electrical devices by stabilizing the air flow rate around the temperature sensor, preventing damage from excessive temperatures.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide a technique that can reliably limit the operation of electrical equipment by suppressing the effect of the amount of air blown out on a temperature sensor.SOLUTION: An air-cooling unit disclosed in this specification includes an electrical device, a duct having an outlet that blows air along the surface of the electrical device, a temperature sensor provided in the electrical device, and a control device that limits the operation of the electrical device when the temperature detected by the temperature sensor exceeds a threshold temperature. A protrusion is provided on the inner surface of the outlet, and when viewed from a direction perpendicular to the surface of the electrical device, the protrusion and the temperature sensor are located on the same straight line parallel to the direction in which air is blown out of the outlet.SELECTED DRAWING: Figure 2
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Description

[Technical Field]

[0001] The technology disclosed in this specification relates to an air cooling unit. [Background technology]

[0002] The power converter in Patent Document 1 includes a semiconductor device and a cooler having a fan that blows air to cool the semiconductor device. The power converter continues to operate the fan of the cooler, for example, when the temperature of the semiconductor device has only slightly decreased. In other words, the power converter controls the operation of the fan in accordance with the temperature of the semiconductor device. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Publication No. 2017-118616 Summary of the Invention [Problem to be solved by the invention]

[0004] A temperature sensor installed downstream of an air outlet is easily affected by the amount of air blown out from the outlet (i.e., the air blowing volume). Specifically, when the air blowing volume is large, the temperature detected by the temperature sensor becomes low, and when the air blowing volume is small, the temperature detected by the temperature sensor becomes high. If the temperature detected by the temperature sensor changes depending on the air blowing volume, it becomes difficult to appropriately limit the operation of an electrical device in accordance with the temperature detected by the temperature sensor. This specification provides a technology that can appropriately limit the operation of an electrical device in an air-cooling unit that limits the operation of an electrical device in accordance with the temperature detected by the temperature sensor by suppressing the effect of the temperature sensor on the air blowing volume. [Means for solving the problem]

[0005] The air-cooling unit disclosed in this specification includes an electrical device, a duct having an outlet that blows air along a surface of the electrical device, a temperature sensor provided in the electrical device, and a control device that limits operation of the electrical device when the temperature detected by the temperature sensor exceeds a threshold temperature. A protrusion is provided on the inner surface of the outlet, and when viewed from a direction perpendicular to the surface of the electrical device, the protrusion and the temperature sensor are located on the same straight line that is parallel to the direction in which air is blown out of the outlet.

[0006] In the above-described air-cooling unit, a protrusion is provided on the inner surface of the air outlet. The protrusion obstructs the flow of air within the duct. As a result, the amount of air blown out is reduced downstream of the protrusion. Furthermore, when viewed from a direction perpendicular to the surface of the electrical device, the protrusion and the temperature sensor are located on the same straight line parallel to the air blowing direction at the air outlet. In other words, the temperature sensor is located downstream of the protrusion in terms of the blowing direction. As a result, the air blown out from the air outlet is less likely to reach the area around the temperature sensor. In other words, the air flow rate is stably reduced around the temperature sensor. Therefore, the air-cooling unit disclosed in this specification can prevent the temperature sensor from being affected by the amount of air blown out. As a result, the air-cooling unit can reliably limit the operation of the electrical device.

[0007] Details and further improvements of the technology disclosed in this specification are described in the following "Description of Embodiments of the Invention." [Brief explanation of the drawings]

[0008] [Figure 1] 1 shows a side view of an electric vehicle 100 on which an air-cooling unit 10 according to an embodiment is mounted. [Figure 2] 2 shows a cross-sectional view taken along line II in FIG. 1. [Figure 3] 3 shows a cross-sectional view taken along line III in FIG. 2. [Figure 4] 4 shows a cross-sectional view taken along line IV in FIG. 2. [Figure 5]10 shows a graph of the change over time in the temperature Ts detected by the temperature sensor 40. DETAILED DESCRIPTION OF THE INVENTION

[0009] In one embodiment of the present technology, the air outlet may have a flat cross-sectional shape along the surface of the electrical device and may have a first inner surface and a second inner surface facing each other. In this case, a first protrusion may be provided on the first inner surface as at least a part of the protrusion. With this configuration, the amount of air blown out between the first inner surface and the second inner surface facing each other is likely to be uniform. Therefore, the amount of air blown out from the first protrusion is reliably reduced compared to the amount of air blown out from other parts.

[0010] In one embodiment of the present technology, the second inner surface may be provided with a second protruding portion facing the first protruding portion as at least a part of the protruding portion. With this configuration, the protruding amount of the first protruding portion can be reduced compared to a configuration in which the protruding portion is formed only by the first protruding portion. This can improve the manufacturing efficiency of the duct.

[0011] In one embodiment of the present technology, the tip of the first protrusion and the tip of the second protrusion may be in contact with each other. With this configuration, it is possible to block the flow of air between the tip of the first protrusion and the tip of the second protrusion. This makes it possible to further reduce the amount of air blown out from the protrusion.

[0012] In one embodiment of the present technology, a heat sink having a plurality of fins extending along the airflow direction may be provided on the surface of the electrical device. With this configuration, air passing through the air outlet flows along the plurality of fins in the airflow direction. This further reduces the air flow downstream of the protrusion. This more reliably reduces the air flow rate around the temperature sensor.

[0013] (Example) An air-cooling unit according to an embodiment will be described with reference to the drawings. FIG. 1 shows a side view of the rear of an electric vehicle 100 equipped with an air-cooling unit 10 according to the embodiment. The electric vehicle 100 includes a floor 3, a rear seat 4, an undercover 6, and the air-cooling unit 10 within a passenger compartment 2. The rear seat 4 is disposed on the floor 3. The rear seat 4 has a seat surface on which a passenger sits and a seat back extending upward from the seat surface. The undercover 6 is positioned below the rear seat 4. The undercover 6 is an interior component that covers structures such as the air-cooling unit 10 disposed between the rear seat 4 and the floor 3 from the inside of the passenger compartment 2. The undercover 6 is provided with a grill 8. The grill 8 has multiple bars arranged in a lattice pattern, connecting the inside and outside of the undercover 6.

[0014] The detailed structure of the air-cooling unit 10 will be described with reference to Figures 2 to 4. Figure 2 is a cross-sectional view taken along line II-II in Figure 1, showing a plan view of the air-cooling unit 10. Figure 3 is a cross-sectional view taken along line III-III in Figure 2, and Figure 4 is a cross-sectional view taken along line IV-IV in Figure 2. Arrows UP, RH, and RR in the figures each indicate directions as seen by a passenger seated in the rear seat 4 of the electric vehicle 100. Hereinafter, the direction indicated by the arrow UP may be simply referred to as "up," and the opposite direction may be simply referred to as "down." Furthermore, the direction indicated by the arrow RH may be simply referred to as "right," and the opposite direction may be simply referred to as "left." The direction indicated by the arrow RR may be simply referred to as "rear," and the opposite direction may be simply referred to as "front."

[0015] The air-cooling unit 10 includes a charger 11, a duct 20, a temperature sensor 40, and a control device 50. The charger 11 is a box-shaped in-vehicle electrical device that can be charged with AC power from an AC power source such as a known household power source. As shown in FIG. 3 , a temperature sensor 40 and a semiconductor element 42 are provided inside the charger 11. The temperature sensor 40 and the semiconductor element 42 are fixed inside the charger 11 with a bolt B1. The temperature sensor 40 is located above the semiconductor element 42. Although not particularly limited, the semiconductor element 42 is an IGBT (short for Insulated Gate Bipolar Transistor) transistor. Although not shown, the charger 11 also includes other elements in addition to the semiconductor element 42. For this reason, the charger 11 generates heat during operation.

[0016] The charger 11 further includes a radiator 12, an upper cover 16, and a fan 18. As shown in particular in FIGS. 3 and 4, the radiator 12 is located on the surface 11t of the charger 11. The radiator 12 is a so-called heat sink and includes multiple fins 14. As shown in FIG. 4, each of the multiple fins 14 protrudes upward from the upper surface of the flat portion of the radiator 12. As shown in FIG. 2, the multiple fins 14 extend in the vehicle width direction (i.e., the left-right direction). The upper cover 16 is a cover that covers the radiator 12 from above. In this embodiment, the charger 11 is disposed along the horizontal direction of the electric vehicle 100. That is, FIG. 2, which is a plan view of the air-cooling unit 10, shows the structure of the air-cooling unit 10 as viewed from a direction perpendicular to the surface 11t of the charger 11.

[0017] The upper cover 16 and the grille 8 are connected by a duct 20. The duct 20 has an air outlet 30, a protrusion 22, and a seal 31. As shown in FIG. 2 in particular, the duct 20 communicates with the passenger compartment 2 via the grille 8. The duct 20 also communicates with the space between the upper cover 16 and the radiator 12 via the air outlet 30. When the fan 18 is operated, it exhausts air from the space between the upper cover 16 and the radiator 12. This creates a negative pressure in the space between the upper cover 16 and the radiator 12, and air A1 in the passenger compartment 2 is drawn into the duct 20. The air A2 drawn into the duct 20 is blown out along the radiator 12 through the air outlet 30 of the duct 20.

[0018] The seal 31 seals between the outer peripheral surface of the duct 20 and the inner surface of the upper cover 16 and the top surface of the radiator 12. This ensures that the air A2 taken into the duct 20 is blown out into the space between the upper cover 16 and the radiator 12.

[0019] Here, the detailed structure of the air outlet 30 of the duct 20 will be described. As shown in FIG. 4 in particular, the air outlet 30 of the duct 20 has a cross-sectional shape that is flat in the left-right direction along the surface 11t of the charger 11. Furthermore, the air outlet 30 has a first inner surface 32 and a second inner surface 36 located below the first inner surface 32. The first inner surface 32 and the second inner surface 36 face each other. That is, the air outlet 30 of the duct 20 has a rectangular cross-sectional shape. This makes the cross-sectional area of ​​the air outlet 30 constant in the longitudinal direction of the air outlet 30 (i.e., the left-right direction). As a result, the amount of air blown out from the air outlet 30 can be made nearly uniform in the longitudinal direction of the air outlet 30.

[0020] Furthermore, the first inner surface 32 has a first protrusion 24 that protrudes downward toward the second inner surface 36. The first protrusion 24 has a shape of a truncated quadrangular pyramid, and has four inclined surfaces and a first tip 24t that connects the lower ends of the four inclined surfaces. The first tip 24t is a flat surface that extends along the first inner surface 32 (i.e., horizontally).

[0021] The second inner surface 36 has a second protrusion 26 that protrudes upward. The second protrusion 26 faces the first protrusion 24 and has a shape that is vertically symmetrical to the first protrusion 24. Therefore, the second protrusion 26 has a second tip 26t that extends along the first tip 24t. The protrusion of both the first protrusion 24 and the second protrusion 26 forms a protrusion 22 on the inner surfaces 32, 36 of the air outlet 30. This reduces the protrusion amount of the first protrusion 24 compared to a configuration in which the protrusion 22 is formed only by the first protrusion 24. This improves the manufacturing efficiency of the duct 20.

[0022] 3 and 4, the first tip 24t of the first protrusion 24 abuts against the second tip 26t of the second protrusion 26. Therefore, the flow of air A2 is blocked between the first tip 24t and the second protrusion 26. As a result, as shown in FIG. 2, the air A2 in the duct 20 branches into air A10 and air A20 and flows. In this way, the first tip 24t and the second tip 26t of the protrusion 22 abut against each other, thereby reducing the amount of air blown out downstream of the protrusion 22.

[0023] The branched air A10, A20 is blown out along a plurality of fins 14 provided on the heat sink 12. As a result, the blown air A10, A20 cools the heat sink 12. As a result, the heat sink 12 dissipates the heat generated by the charger 11. Hereinafter, in this specification, the direction in which the air A10, A20 is blown out (i.e., the left-right direction in this embodiment) is referred to as the "blowing direction." In this embodiment, the blowing direction is a direction perpendicular to the air outlet 30. That is, FIG. 3 is a cross-sectional view of the air-cooling unit 10 taken along a plane defined by a straight line L1 parallel to the blowing direction and a direction perpendicular to the surface 11t of the charger 11.

[0024] The control device 50 is electrically connected to the charger 11 and the temperature sensor 40. The control device 50 controls the operation of the charger 11 according to the driving conditions of the electric vehicle 100. For example, the control device 50 limits the operation of the charger 11 according to the temperature received from the temperature sensor 40.

[0025] The change over time in temperature Ts detected by temperature sensor 40 in air-cooling unit 10 of this embodiment (hereinafter referred to as detected temperature Ts) will be described with reference to Fig. 5. In Fig. 5, the vertical axis represents temperature, and the horizontal axis represents time.

[0026] The control device 50 stores the threshold temperature Th1 in advance in its memory. The threshold temperature Th1 is calculated by multiplying the upper limit of the allowable temperature at which the operation of the charger 11 is guaranteed by a predetermined safety factor. The threshold temperature Th1 is set based on the charge capacity of the charger 11, the number of elements included in the semiconductor element 42, etc.

[0027] As shown in FIG. 5, when the charger 11 is activated at time T0, the detected temperature Ts rises due to heat generation from the semiconductor elements 42 and other components. As the operation of the charger 11 continues, the detected temperature Ts exceeds the threshold temperature Th1 at time T1. In this case, the control device 50 stops the operation of the charger 11 at time T1. As a result, the heat generation from the semiconductor elements 42 and other components stops, causing the detected temperature Ts to gradually decrease, and then to suddenly decrease from time T2. When the detected temperature Ts falls below a predetermined temperature at time T3, the control device 50 activates the charger 11 again. As a result, the detected temperature Ts rises again. In this way, when the detected temperature Ts exceeds the threshold temperature Th1, the control device 50 stops the operation of the charger 11. This prevents the temperature of the charger 11 from rising above the allowable temperature of the charger 11.

[0028] Here, the detected temperature Td in FIG. 5 indicates a temperature detected by a temperature sensor (hereinafter referred to as another temperature sensor) that is different from the temperature sensor 40 and is provided at a position shifted in the front-rear direction from the downstream of the protrusion 22 of the charger 11. The detected temperature Td is lower than the detected temperature Ts of the temperature sensor 40. For example, the detected temperature Td does not reach the threshold temperature Th1 at timing T1. This is because the air A10 and A20 blown out from the air outlet 30 in the blowing direction reaches the vicinity of the another temperature sensor. In other words, this is because the flow rate of the air A10 and A20 blown out around the another temperature sensor is high. In this way, the temperature detected by the temperature sensor is affected by the flow rate of the air A10 and A20 from the air outlet 30. In other words, the temperature detected by the temperature sensor changes depending on the flow rate of the air A10 and A20.

[0029] If the protrusion 22 were not provided at the air outlet 30 of the duct 20 and the temperature Ts detected by the temperature sensor 40 changed depending on the flow rate of the air A10 and A20, the control device 50 might not be able to appropriately stop the operation of the charger 11. At timing T1, the temperature Ts detected by the temperature sensor might become lower than the threshold temperature Th1 due to the influence of the air A10 and A20. In this case, the control device 50 continues to operate the charger 11 even though the actual temperature of the semiconductor element 42 exceeds the allowable temperature of the semiconductor element 42, which could damage the semiconductor element 42.

[0030] As shown in FIG. 2, in the air-cooling unit 10 of this embodiment, the protrusion 22 and the temperature sensor 40 are located on the same straight line L1 that is parallel to the blowing direction of the air A10 and A20 from the air outlet 30. That is, the temperature sensor 40 is located downstream of the protrusion 22 in terms of the blowing direction. As a result, the air A10 and A20 blown out from the air outlet 30 along the blowing direction are less likely to reach the periphery of the temperature sensor 40. That is, regardless of the flow rate of the air A10 and A20, the flow rate of the air A10 and A20 is stably reduced around the temperature sensor 40. Furthermore, the heat radiator 12 has multiple fins 14 extending along the blowing direction. The multiple fins 14 direct the air A10 and A20 blown out from the air outlet 30 along the blowing direction along the blowing direction. Therefore, compared to a configuration that does not have the radiator 12 having the plurality of fins 14, the air A10, A20 blown out from the air outlet 30 along the blowing direction is even less likely to reach the periphery of the temperature sensor 40.

[0031] In this way, the air-cooling unit 10 of this embodiment can prevent the temperature sensor 40 from being affected by the air A10, A20 by stably reducing the flow rate of the air A10, A20 around the temperature sensor 40 using the protrusion 22. As a result, the control device 50 can appropriately limit the operation of the charger 11, thereby preventing the charger 11 from being damaged.

[0032] Although specific examples of the technology disclosed in this specification have been described in detail above, these are merely examples and do not limit the scope of the claims. The technology described in the claims includes various modifications and variations of the specific examples exemplified above. Modifications of the above examples are listed below.

[0033] (Modification 1) The charger 11 is an example of an "electrical device", but the "electrical device" is not limited to the charger 11. For example, the electrical device may be a DC / DC converter.

[0034] (Modification 2) The temperature sensor 40 may be formed integrally with the semiconductor element 42.

[0035] (Variation 3) The air outlet 30 does not have to have a flat cross-sectional shape. For example, the air outlet 30 may have a circular cross-sectional shape or an elliptical cross-sectional shape.

[0036] (Modification 4) The protrusion 22 may be formed only by the first protrusion 24. In that case, the second inner surface 36 may not be provided with the second protrusion 26.

[0037] (Modification 5) The first tip 24t of the first protrusion 24 does not have to abut on the second tip 26t of the second protrusion 26, and a gap may be provided between them.

[0038] (Modification 6) The charger 11 does not have to include the heat sink 12.

[0039] The technical elements described in this specification or drawings may exhibit technical utility either alone or in various combinations, and are not limited to the combinations described in the claims at the time of filing. Furthermore, the technologies illustrated in this specification or drawings may achieve multiple objectives simultaneously, and achieving one of those objectives alone is technically useful. [Explanation of symbols]

[0040] 2: passenger compartment, 3: floor, 4: rear seat, 6: undercover, 8: grille, 10: air-cooling unit, 11: charger, 11t: surface, 12: radiator, 14: fin, 16: upper cover, 18: fan, 20: duct, 22: protrusion, 24: first protrusion, 24t: first tip, 26: second protrusion, 26t: second tip, 30: air outlet, 31: seal, 32: first inner surface, 36: second inner surface, 40: temperature sensor, 42: semiconductor element, 50: control device, 100: electric vehicle, B1: bolt, A1, A2, A10, A20: air, L1: line, Th1: threshold temperature

Claims

1. Electrical equipment and a duct having an outlet for blowing air along a surface of the electrical device; a temperature sensor provided in the electrical device; a control device that limits the operation of the electrical equipment when the temperature detected by the temperature sensor exceeds a threshold temperature; Equipped with A protrusion is provided on the inner surface of the air outlet, When viewed from a direction perpendicular to the surface of the electrical device, the protrusion and the temperature sensor are positioned on the same straight line that is parallel to the air blowing direction at the air outlet. Air cooling unit.

2. the air outlet has a flat cross-sectional shape that conforms to the surface of the electrical device and has a first inner surface and a second inner surface that face each other, The air-cooling unit according to claim 1 , wherein the first inner surface is provided with a first protrusion as at least a part of the protrusion.

3. The air-cooling unit according to claim 2 , wherein the second inner surface is provided with a second protrusion as at least a part of the protrusion, the second protrusion facing the first protrusion.

4. The air cooling unit according to claim 3 , wherein a tip of the first protrusion and a tip of the second protrusion abut against each other.

5. The air-cooling unit according to claim 4 , wherein a radiator having a plurality of fins extending along the air outlet direction is provided on the surface of the electrical device.

Citation Information

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