All-terrain vehicle

By placing the oil cooler within the radiator's cooling chamber in the all-terrain vehicle's cooling system and optimizing its area-to-size ratio, the problem of low oil cooler cooling efficiency is solved, resulting in more efficient cooling and improved power system stability.

CN119551110BActive Publication Date: 2025-12-12ZHEJIANG CFMOTO POWER CO LTD
View PDF 2 Cites 0 Cited by

Patent Information

Application Number
CN202311133738.0
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-09-04
Publication Date
2025-12-12
Estimated Expiration
2043-09-04

AI Technical Summary

Technical Problem

The oil coolers in existing all-terrain vehicles have low cooling efficiency and cannot effectively dissipate heat, affecting the stability and performance of the power system.

Method used

In the cooling system of all-terrain vehicles, the oil cooler is placed in the cooling chamber of the radiator, and the area ratio, size ratio and positional relationship between the oil cooler and the cooling chamber are optimized to enhance cooling efficiency.

Benefits of technology

It improves the cooling efficiency of the oil cooler, enhances the cooling effect of the coolant, ensures the stable operation of the power system, and optimizes space utilization and overall vehicle performance.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN119551110B_ABST
    Figure CN119551110B_ABST
Patent Text Reader

Abstract

The application provides an all-terrain vehicle, which comprises a frame, a power system, a walking assembly and a cooling system, the power system is arranged in the frame, the power system comprises an engine, a transmission system is at least partially connected to the engine, the walking assembly is arranged below the frame, the walking assembly is at least partially connected to the transmission system, the cooling system is at least partially connected to the engine, the cooling system comprises a radiator and an oil cooler, the radiator comprises at least one cooling chamber and a cooling fin connected to the cooling chamber, two ends of the radiator are connected to the engine, two ends of the oil cooler are connected to the engine, and the oil cooler is arranged in the cooling chamber. By arranging the oil cooler in the cooling chamber of the radiator, the cooling efficiency of the oil cooler is increased, and the cooling efficiency of the coolant is improved.
Need to check novelty before this filing date? Find Prior Art

Description

TECHNICAL FIELD

[0001] The present application relates to the field of vehicle technology, in particular to an all-terrain vehicle. BACKGROUND

[0002] All-terrain vehicles are increasingly favored by consumers as a kind of vehicle with strong passing performance and fun. Among them, SSV (Side by Side Vehicle) and UTV (Utility Vehicle) are two types of all-terrain vehicles mainly referring to vehicles with semi-enclosed cabs.

[0003] The cooling system is an important part of the all-terrain vehicle, and the cooling system can cool the power system to ensure the stability of the power system. The cooling system includes an oil cooler, but the existing design of the oil cooler has low cooling efficiency. SUMMARY

[0004] In order to solve the problems of the prior art, the purpose of the present application is to provide an all-terrain vehicle, wherein the oil cooler in the all-terrain vehicle has higher cooling efficiency.

[0005] To achieve the above-mentioned purpose, the technical scheme adopted by the present application is as follows:

[0006] The present application provides an all-terrain vehicle, which comprises a vehicle frame, a power system, a walking assembly and a cooling system, the power system is arranged in the vehicle frame, the power system comprises an engine, a transmission system is at least partially connected to the engine, the walking assembly is arranged below the vehicle frame, the walking assembly is at least partially connected to the transmission system, the cooling system is at least partially connected to the engine, the cooling system comprises a radiator and an oil cooler, the radiator comprises at least one cooling chamber and a cooling fin connected to the cooling chamber, both ends of the radiator are connected to the engine, both ends of the oil cooler are connected to the engine, and the oil cooler is arranged in the cooling chamber.

[0007] Further, define the extension plane of the radiator as the radiator plane, define a vertical radiator plane direction perpendicular to the radiator plane, in the vertical radiator plane direction, define an oil cooler projection of the oil cooler in the radiator plane, define a cooling chamber projection of the cooling chamber in the radiator plane, and the ratio of the area of the oil cooler projection to the area of the cooling chamber projection is greater than or equal to 0.31 and less than or equal to 0.59.

[0008] Further, define the extension plane of the radiator as the radiator plane, define a vertical radiator plane direction perpendicular to the radiator plane, in the vertical radiator plane direction, define an oil cooler projection of the oil cooler in the radiator plane, define a cooling chamber projection of the cooling chamber in the radiator plane, and the ratio of the area of the oil cooler projection to the area of the cooling chamber projection is greater than or equal to 0.36 and less than or equal to 0.54.

[0009] Further, the extension direction of the cooling chamber is defined as a cooling chamber extension direction, the oil cooler extends along the cooling chamber extension direction, and in the cooling chamber extension direction, the ratio of the size of the oil cooler to the size of the cooling chamber is greater than or equal to 0.38 and less than or equal to 0.72.

[0010] Further, the extension direction of the cooling chamber is defined as a cooling chamber extension direction, the oil cooler extends along the cooling chamber extension direction, and in the cooling chamber extension direction, the ratio of the size of the oil cooler to the size of the cooling chamber is greater than or equal to 0.44 and less than or equal to 0.66.

[0011] Further, the oil cooler includes an oil cooler inlet and an oil cooler outlet, and the oil cooler inlet and the oil cooler outlet are connected to the engine through the cooling chamber, respectively.

[0012] Further, in the height direction of the all-terrain vehicle, the oil cooler inlet is located below the oil cooler outlet.

[0013] Further, the engine includes an engine outlet discharging the coolant and an engine inlet receiving the coolant, the radiator includes a high-temperature side cooling chamber connected to the engine outlet and a low-temperature side cooling chamber connected to the engine inlet, the cooling fins are provided through between the high-temperature side cooling chamber and the low-temperature side cooling chamber, and the oil cooler is provided in the low-temperature side cooling chamber.

[0014] Further, the radiator includes a radiator inlet provided in the high-temperature side cooling chamber and a radiator outlet provided in the low-temperature cooling chamber, the radiator inlet is connected to the engine outlet, and the radiator outlet is connected to the engine inlet.

[0015] Further, in the height direction of the all-terrain vehicle, the height of the radiator inlet is located above the height of the radiator outlet.

[0016] The present application increases the cooling efficiency of the oil cooler and improves the cooling efficiency of the coolant by providing the oil cooler in the cooling chamber of the radiator. BRIEF DESCRIPTION OF DRAWINGS

[0017] Figure 1 FIG. 1 is a structural schematic diagram of an all-terrain vehicle of the present application.

[0018] Figure 2 FIG. 2 is a schematic diagram of a power system and a transmission system of the all-terrain vehicle of the present application.

[0019] Figure 3 FIG. 3 is a structural schematic diagram of a cooling module and a frame of the all-terrain vehicle of the present application.

[0020] Figure 4 FIG. 4 is a side view schematic diagram of the cooling module of the all-terrain vehicle of the present application.

[0021] Figure 5Fig. 1 is a top view of a cooling module of an all-terrain vehicle of the present application.

[0022] Figure 6 Fig. 2 is a position view of the cooling module of the all-terrain vehicle of the present application.

[0023] Figure 7 Fig. 3 is a top view of a flow guide mechanism of the all-terrain vehicle of the present application.

[0024] Figure 8 Fig. 4 is a side view of the flow guide mechanism of the all-terrain vehicle of the present application.

[0025] Figure 9 Fig. 5 is a front view of the flow guide mechanism of the all-terrain vehicle of the present application.

[0026] Figure 10 Fig. 6 is a structure view of a fixing frame of the cooling module of the all-terrain vehicle of the present application.

[0027] Figure 11 Fig. 7 is a circuit view of a fan control circuit of the all-terrain vehicle of the present application.

[0028] Figure 12 Fig. 8 is a structure view of a radiator of the cooling module of the all-terrain vehicle of the present application.

[0029] Figure 13 Fig. 9 is a structure view of an oil cooler and a radiator of the all-terrain vehicle of the present application.

[0030] Figure 14 Fig. 10 is a structure view of a cooling water bottle of the all-terrain vehicle of the present application. DETAILED DESCRIPTION

[0031] In order to make the personnel in the art better understand the present application scheme, the technical scheme in the specific embodiment of the present application will be described clearly and completely below by combining the drawings in the embodiment of the present application.

[0032] It should be noted that when an element is referred to as being "disposed on" another element, it can be directly on the other element or there can be intervening elements. When an element is referred to as being "connected" to another element, it can be directly connected to the other element or intervening elements can be present. The terms "vertical", "horizontal", "left", "right", and similar terms as used herein are for descriptive purposes only and not meant to be limiting.

[0033] In the description of the present application, it should be understood that the terms "first", "second" are only for the purpose of description, and cannot be understood as indicating or implying relative importance or implicitly indicating the number of the indicated technical features. Therefore, the features defined with "first", "second" can explicitly or implicitly include at least one of the features.

[0034] In the description of the present application, it needs to be understood that the description "one component is located inside another component" means that one component is located on the side of another component away from the vehicle body covering 12 or away from the outer surface of the ATV 100.

[0035] The present application provides an ATV 100 as shown in Figure 1 The present application provides an ATV 100 as shown in Figure 1 The present application provides an ATV 100 as shown in

[0036] In the description of the present application, it needs to be understood that the term "length direction" refers to the front-rear direction of the vehicle in the driving state of the driver of the ATV 100, the term "width direction" refers to the left-right direction of the vehicle in the driving state of the driver of the ATV 100, and the term "height direction" refers to the up-down direction of the vehicle in the driving state of the driver of the ATV 100.

[0037] The present application provides an ATV 100 as shown in Figure 1 The present application provides an ATV 100 as shown in Figure 2 The present application provides an ATV 100 as shown in The present application provides an ATV 100 as shown in

[0038] The present application provides an ATV 100 as shown in Figure 3 The present application provides an ATV 100 as shown in Figure 4As shown, the all-terrain vehicle 100 comprises a cooling system 27, which can assist the engine 151 in heat exchange, and can keep the engine 151 at a suitable working temperature. The cooling system 27 comprises a cooling module 271 connected to the rear frame 114, which is arranged above the engine 151 in the height direction of the all-terrain vehicle, and is mainly used for heat dissipation of the engine 151. The cooling module 271 is arranged close to the engine 151, which can improve the heat dissipation efficiency of the engine 151. The all-terrain vehicle 100 comprises a vehicle body cover 12 comprising a cargo box connected to the rear frame 114, and a seat assembly 23. The cooling module 271 is arranged rearward of the seat assembly 23 and forward of the cargo box in the length direction of the all-terrain vehicle 100. The cooling module 271 is arranged between the seat assembly 23 and the cargo box, which can make full use of the space in the frame 11 and improve the space utilization of the all-terrain vehicle 100. The cooling module 271 is arranged close to the power system 15, which can reduce the distance between the cooling module 271 and the engine 151, and also can increase the heat dissipation efficiency. As shown in the figure, the cooling module 271 comprises an integrated intercooler 2711, a radiator 2712 and a fan device 2713. The fan device 2713 is arranged on one side of the radiator 2712, and the intercooler 2711 is arranged on the other side of the radiator 2712. The intercooler 2711, the radiator 2712 and the fan device 2713 are integrated as a whole. Figure 4 As shown, the cooling module 271 comprises an integrated intercooler 2711, a radiator 2712 and a fan device 2713. The fan device 2713 is arranged on one side of the radiator 2712, and the intercooler 2711 is arranged on the other side of the radiator 2712. The intercooler 2711, the radiator 2712 and the fan device 2713 are integrated as a whole. The intercooler 2711 is used to reduce the intake air temperature of the engine 151, improve the operation stability of the engine 151, and improve the working efficiency of the engine 151. The radiator 2712 is connected to the engine 151. When the engine 151 is working, the high-temperature coolant generated by the engine 151 is discharged into the radiator 2712. The high-temperature coolant flows and cools in the radiator 2712. The coolant cooled in the radiator 2712 reenters the engine 151 to cool the engine 151. The fan device 2713 drives the air flow around the intercooler 2711 and the radiator 2712, increases the rate of air flow, and removes the heat generated in the intercooler 2711 and the radiator 2712 through air flow to achieve heat dissipation of the cooling module 271. The intercooler 2711, the radiator 2712 and the fan device 2713 are integrated as the cooling module 271, which reduces the space occupied by the intercooler 2711, the radiator 2712 and the fan device 2713, improves the space utilization of the all-terrain vehicle 100, and optimizes the arrangement space of the all-terrain vehicle 100. The integrated intercooler 2711 and radiator 2712 share one fan device 2713 for heat dissipation, which improves the utilization rate of the fan device 2713 and reduces the energy consumption of the all-terrain vehicle 100.

[0039] AsFigure 4 and Figure 5 As shown, the extending plane of the cooling module 271 is defined as the cooling module plane 301. The axis of the fan 2713a is perpendicular to the cooling module plane 301. The ratio of the dimension L1 of the cooling module 271 along the axis of the fan 2713a to the dimension L2 of the cooling module 271 along the width direction of the all-terrain vehicle is greater than or equal to 0.18 and less than or equal to 0.33. The dimension L1 of the cooling module 271 along the axis of the fan 2713a is the thickness of the cooling module 271, and the dimension L2 of the cooling module 271 along the width direction of the all-terrain vehicle is the length of the cooling module 271. When the ratio of the thickness to the length of the cooling module 271 is within the above range, the cooling module 271 has a larger fan device 2713. A larger fan device 2713 can provide more cooling airflow, improving the cooling effect of the cooling module 271. At the same time, a smaller thickness of the cooling module 271 increases the integration level of the cooling module 271 and reduces the space occupied by the cooling module 271 along the length direction of the all-terrain vehicle. Furthermore, the ratio of the dimension L1 of the cooling module 271 along the axis of the fan 2713a to the dimension L2 of the cooling module 271 along the width direction of the all-terrain vehicle is greater than or equal to 0.2 and less than or equal to 0.3. Even further, the ratio of the dimension L1 of the cooling module 271 along the axis of the fan device 2713 to the dimension L2 of the cooling module 271 along the width direction of the all-terrain vehicle is greater than or equal to 0.23 and less than or equal to 0.28. A transverse plane 302 perpendicular to the length direction of the all-terrain vehicle is defined, and the angle α1 between the cooling module plane 301 and the transverse plane 302 is greater than or equal to 5° and less than or equal to 30°. The cooling module 271 is tilted at a certain angle, which facilitates airflow to the cooling module 271 area driven by the fan device 2713; better airflow results in stronger heat dissipation. Furthermore, the angle α1 between the cooling module plane 301 and the transverse plane 302 is greater than or equal to 10° and less than or equal to 25°. Furthermore, the angle α1 between the cooling module plane 301 and the transverse plane 302 is greater than or equal to 15° and less than or equal to 20°. In addition, the fan 2713a is distributed along the cooling module plane 301.

[0040] like Figure 6As shown, a reference plane perpendicular to the height direction of the ATV is defined, the projection of the cooling module 271 on the reference plane along the height direction of the ATV is the cooling module projection, the projection of the axis of the front wheel 141 on the reference plane along the height direction of the ATV is the front wheel axis projection 303, the projection of the axis of the rear wheel 142 on the reference plane along the height direction of the ATV is the rear wheel axis projection 304, the distance from the front end of the cooling module projection to the front wheel axis projection 303 is defined as the cooling module front end distance L3, the distance from the front wheel axis projection 303 to the rear wheel axis projection 304 is defined as the drive shaft distance L4, the ratio between the cooling module front end distance L3 and the drive shaft distance L4 is greater than or equal to 0.6 and less than or equal to 0.9. The cooling module 271 is arranged closer to the rear wheel 142, which can avoid excessive occupation of the front space of the ATV 100 by the cooling module 271, and is also conducive to the weight distribution of the ATV 100, avoiding the increase of the front weight of the ATV 100 due to the arrangement of the cooling module 271. Further, the ratio between the cooling module front end distance L3 and the drive shaft distance L4 is greater than or equal to 0.65 and less than or equal to 0.85. Still further, the ratio between the cooling module front end distance L3 and the drive shaft distance L4 is greater than or equal to 0.7 and less than or equal to 0.8. The projection of the rear wheel 142 on the reference plane along the height direction of the ATV is the rear wheel projection, and in the width direction of the ATV, the ratio between the size L5 of the cooling module projection and the size L6 of the rear wheel projection is greater than or equal to 0.39 and less than or equal to 0.72. Controlling the size of the cooling module 271 in the width direction of the ATV can not only make the size of the cooling module 271 large enough to increase the cooling efficiency, but also avoid the size of the cooling module 271 being too large to occupy the arrangement space of other components. Further, the ratio between the size L5 of the cooling module projection and the size L6 of the rear wheel projection is greater than or equal to 0.44 and less than or equal to 0.66. Still further, the ratio between the size L5 of the cooling module projection and the size L6 of the rear wheel projection is greater than or equal to 0.49 and less than or equal to 0.61.

[0041] As an embodiment, the cooling system 27 comprises a flow guide mechanism 272 for guiding air to the cooling module 271, and the flow guide mechanism 272 extends substantially in the width direction of the ATV. Figure 7 and Figure 8As shown, the flow guide mechanism 272 includes a flow guide housing 2721 and an air inlet 2722 arranged at at least one end of the flow guide housing 2721. The flow guide housing 2721 encloses a gas chamber, and the air inlet 2722 is in communication with the gas chamber. The flow guide mechanism 272 is arranged at least partially on the vehicle frame 11, and the flow guide mechanism 272 is arranged behind the seat. The flow guide mechanism 272 guides air to dissipate heat for the cooling module 271. At least part of the cooling module 271 is arranged in the gas chamber enclosed by the flow guide housing 2721. During driving of the ATV 100, the flow guide mechanism 272 guides air along the direction of the ATV 100 into the gas chamber enclosed by the flow guide housing 2721 through the air inlet 2722. The cooling module 271 arranged in the gas chamber enclosed by the flow guide housing 2721 removes heat generated by air flow, thereby increasing the heat dissipation effect of the cooling module 271 of the ATV 100.

[0042] As Figure 7 and Figure 8As shown, the air inlet 2722 includes an air inlet opening 2722a, an extending straight line of the air inlet opening 2722a is defined as an air inlet extending straight line 305, a longitudinal plane 102 perpendicular to the width direction of the ATV is defined, and an angle a2 between the air inlet extending straight line 305 and the longitudinal plane 102 is greater than or equal to 30° and less than or equal to 70°. The orientation of the air inlet opening 2722a has an important influence on the air inlet amount, and the orientation of the air inlet opening 2722a is set in the above range, so that the air inlet opening 2722a can better utilize the air guiding effect of the door assembly 29, and meanwhile the orientation of the air inlet opening 2722a is matched with the driving direction of the ATV, thereby further increasing the air inlet amount. Further, the angle a2 between the first straight line and the longitudinal plane 102 is greater than or equal to 40° and less than or equal to 60°. Further, the angle a2 between the air inlet extending straight line 305 and the longitudinal plane 102 is greater than or equal to 45° and less than or equal to 65°. The angle a3 between the air inlet extending straight line 305 and the reference plane 103 is greater than or equal to 0° and less than or equal to 30°. Further, the angle a3 between the air inlet extending straight line 305 and the reference plane 103 is greater than or equal to 5° and less than or equal to 25°. Further, the angle a3 between the air inlet extending straight line 305 and the reference plane 103 is greater than or equal to 10° and less than or equal to 20°. In the height direction of the ATV, the flow guide shell 2721 at least partially overlaps with the power system 15, and the overlapping arrangement improves the space utilization of the ATV 100. The ratio of the size L7 of the flow guide mechanism 272 in the width direction of the ATV to the size L8 of the flow guide shell 2721 in the width direction of the ATV is greater than or equal to 1.1 and less than or equal to 2.2. The air inlet 2722 in the flow guide mechanism 272 is arranged on both sides of the flow guide shell 2721, and the width of the flow guide shell 2721 is narrower, and the size of the flow guide shell 2721 is smaller, so that the airflow introduced by the air inlet 2722 can form airflow with higher speed in the flow guide shell 2721, which is beneficial to improve the heat dissipation efficiency. Further, the ratio of the size L7 of the flow guide mechanism 272 in the width direction of the ATV to the size L8 of the flow guide shell 2721 in the width direction of the ATV is greater than or equal to 1.3 and less than or equal to 2.1. Further, the ratio of the size L7 of the flow guide mechanism 272 in the width direction of the ATV to the size L8 of the flow guide shell 2721 in the width direction of the ATV is greater than or equal to 1.5 and less than or equal to 1.9. The projection of the air inlet 2722a in the length direction of the ATV on the transverse plane is an air inlet projection, and the area of the air inlet projection is greater than or equal to 700 square centimeters and less than or equal to 1600 square centimeters. The above air inlet projection is the projection of all air inlets 2722a of the air inlets 2722 of the flow guide mechanism 272 on the transverse plane in the length direction of the ATV. The size of the air inlet 2722a is set in the above range, which can meet the requirement of the heat dissipation air amount and avoid the problem of excessive width of the ATV 100 caused by the air inlet 2722a being too large.

[0043] As shown in Figure 8 , the bottom of the flow guide shell 2721 is inclined, and the space present at the bottom of the flow guide shell 2721 can be used as a maintenance space for other elements of the engine 151 at this position, increasing the maintenance space of the all-terrain vehicle 100 to facilitate maintenance. The extension plane of the bottom of the flow guide shell 2721 is defined as the bottom extension plane 306, and the included angle a4 between the bottom extension plane 306 and the reference plane 103 is greater than or equal to 10° and less than or equal to 30°. The inclined arrangement of the bottom of the flow guide shell 2721 can serve to avoid the power system 15, and at the same time, the bottom of the flow guide shell 2721 can also increase the airflow introduced to the power system 15 when the all-terrain vehicle 100 is running, improving the passive heat dissipation efficiency of the power system 15. Further, the included angle a4 between the bottom extension plane 306 and the reference plane 103 is greater than or equal to 15° and less than or equal to 25°. Further, the included angle a4 between the bottom extension plane 306 and the reference plane 103 is greater than or equal to 17° and less than or equal to 22°. The flow guide shell 2721 is also provided with a detachable cover plate. The detachable cover plate can increase the maintenance convenience of the power system 15 related components located below the flow guide shell 2721. The flow guide shell 2721 and the air inlet 2722 are integrally formed, and the integral forming can increase the strength. The flow guide mechanism 272 can be made of plastic material. Plastic material has the characteristics of lightness, and using plastic material as the flow guide mechanism 272 can reduce the weight of the vehicle body and improve the performance of the vehicle body.

[0044] As shown in Figure 9As shown, the all-terrain vehicle 100 includes door assemblies 29 arranged on both sides of the all-terrain vehicle 100. In the length direction of the all-terrain vehicle 100, the door assemblies 29 are located in front of the air inlet members 2722. The door assemblies 29 are located in front of the air inlet members 2722, which can ensure that the air inlet members 2722 do not interfere with the opening and closing of the door assemblies 29. Define a transverse plane perpendicular to the length direction of the all-terrain vehicle, the projection of the air inlet member 2722 on the transverse plane along the length direction of the all-terrain vehicle 100 is the air inlet member projection, the projection of the door assembly 29 on the transverse plane along the length direction of the all-terrain vehicle 100 is the door projection, and the door projection is located between the two air inlet member projections. Through the above arrangement, the air inlet member 2722 can be prevented from being blocked by the door assembly 29, and at the same time, the door assembly 29 can be used to guide the air for the air inlet member 2722, increase the air volume entering the air inlet member 2722, and improve the air inlet efficiency of the air inlet member 2722. The flow guide mechanism 272 further includes an auxiliary air inlet member 2723 arranged at the front end of the flow guide housing 2721. The auxiliary air inlet member 2723 is arranged in the middle of the flow guide mechanism 272 and close to the upper position. The auxiliary air inlet member 2723 has an auxiliary air inlet function and guides the air together with the air inlet member 2722 to enter the all-terrain vehicle 100. The arrangement of the auxiliary air inlet member 2722 can improve the air guiding effect of the flow guide mechanism 272 and improve the heat dissipation capacity of the all-terrain vehicle 100. In the length direction of the all-terrain vehicle, the auxiliary air inlet member 2723 partially overlaps the seat assembly 23. The seat assembly 23 has little effect on the partially overlapping auxiliary air inlet member 2723, while the remaining part can maximize the auxiliary air inlet and air guiding functions. In addition, the partially overlapping arrangement can save space in the all-terrain vehicle 100 and improve the space utilization of the all-terrain vehicle 100. The above arrangement allows the auxiliary air inlet member 2723 to be arranged substantially above the seat, reducing the influence of the seat on the auxiliary air inlet and air guiding functions of the auxiliary air inlet member 2723, and improving the auxiliary air inlet and air guiding functions of the auxiliary air inlet member 2723. In the height direction of the all-terrain vehicle 100, the top end of the seat assembly 23 is higher than the bottom end of the auxiliary air inlet member 2723, and the top end of the seat assembly 23 is lower than the top end of the auxiliary air inlet member 2723. The above arrangement allows the auxiliary air inlet member 2723 to be arranged substantially above the seat, reducing the influence of the seat on the auxiliary air inlet and air guiding functions of the auxiliary air inlet member 2723, and improving the auxiliary air inlet and air guiding functions of the auxiliary air inlet member 2723. The auxiliary air inlet member 2723 and the seat assembly 23 partially overlap in the height direction of the all-terrain vehicle 100, which can further improve the compactness of the structure of the auxiliary air inlet member 2723 and the seat assembly 23. In the height direction of the all-terrain vehicle, the distance L9 between the top end of the air inlet member 2722 and the bottom end of the air inlet member 2722 is greater than or equal to 650 mm and less than or equal to 1250 mm.The dimension of the air intake 2722 in the height direction of the ATV is within the above range, so that the air intake 2722 can increase the air intake amount as much as possible by the door assembly, and meanwhile, the size of the air intake 2722 does not affect the arrangement of the cargo box and other components. Further, the distance L9 between the top end of the air intake 2722 and the bottom end of the air intake 2722 is greater than or equal to 750 mm and less than or equal to 1150 mm. Further, the distance L9 between the top end of the air intake 2722 and the bottom end of the air intake 2722 is greater than or equal to 850 mm and less than or equal to 1050 mm.

[0045] The projection of the flow guide mechanism 272 on the lateral plane in the length direction of the ATV is defined as the flow guide mechanism projection, and the projection of the auxiliary air intake 2723 on the lateral plane in the length direction of the ATV is defined as the auxiliary air intake projection. The auxiliary air intake 2723 occupies a certain proportion on the flow guide mechanism 272 to better assist the flow guide mechanism 272 in guiding air. When the size of the auxiliary air intake 2723 on the flow guide mechanism 272 is less than 0.21, the size of the auxiliary air intake 2723 on the flow guide mechanism 272 is small, and the auxiliary air intake 2723 has a small effect on assisting air intake and guiding air, and the effect of the auxiliary air intake 2723 on assisting air intake of the flow guide mechanism 272 is small. When the size of the auxiliary air intake 2723 on the flow guide mechanism 272 is greater than 0.39, the size of the auxiliary air intake 2723 on the flow guide mechanism 272 is large, which affects the spatial structure of the flow guide mechanism 272. In summary, the ratio of the dimension of the auxiliary air intake projection in the width direction of the ATV to the dimension of the flow guide mechanism projection in the width direction of the ATV is greater than or equal to 0.2 and less than or equal to 0.4. Further, the ratio of the dimension of the auxiliary air intake projection in the width direction of the ATV to the dimension of the flow guide mechanism projection in the width direction of the ATV is greater than or equal to 0.24 and less than or equal to 0.36. Further, the ratio of the dimension of the auxiliary air intake projection in the width direction of the ATV to the dimension of the flow guide mechanism projection in the width direction of the ATV is greater than or equal to 0.27 and less than or equal to 0.33.

[0046] As Figure 4 and Figure 10As shown, as an embodiment, the cooling module 271 further comprises a fixed frame 2714 connected to the vehicle frame 11. The fixed frame 2714 comprises a first mounting surface 2714a to which the fan device 2713 is connected, a second mounting surface 2714b to which the radiator 2712 is connected, and a middle cooler 2711. The fan device 2713, the radiator 2712, and the middle cooler 2711 form an integrated whole through the fixed frame 2714, achieving integrated arrangement of the fan device 2713, the radiator 2712, and the middle cooler 2711, saving installation space of the ATV 100 and improving space utilization of the ATV 100. Meanwhile, integrated arrangement of the cooling module 271 can reduce the connection points of the vehicle frame 11 and the installation supports on the vehicle frame 11, improving assembly efficiency. The middle cooler 2711, the radiator 2712, and the fan device 2713 can be assembled to the fixed frame 2714 first when the ATV 100 is installed, and then the cooling module 271 is assembled to the vehicle frame 11 as a whole, saving installation and assembly processes. The extension plane of the fixed frame 2714 is defined as the fixed frame plane, and the fixed frame perpendicular line perpendicular to the fixed frame plane is defined. The ratio of the size L1 of the cooling module 271 along the fixed frame perpendicular line to the size L10 of the fixed frame 2714 along the width direction of the ATV is greater than or equal to 0.16 and less than or equal to 0.32. After the cooling module 271 is arranged in the above manner, the thickness of the cooling module 271 can be reduced. Further, the ratio of the size L1 of the cooling module 271 along the fixed frame perpendicular line to the size L10 of the fixed frame 2714 along the width direction of the ATV is greater than or equal to 0.19 and less than or equal to 0.29. Further, the ratio of the size L1 of the cooling module 271 along the fixed frame perpendicular line to the size L10 of the fixed frame 2714 along the width direction of the ATV is greater than or equal to 0.21 and less than or equal to 0.27. In the width direction of the ATV, the radiator 2712 coincides with the fixed frame 2714 and is arranged in the fixed frame 2714, so that the fixed frame 2714 can protect the radiator 2712. The ratio of the size of the radiator 2712 along the fixed frame perpendicular line to the size of the fixed frame 2714 along the fixed frame perpendicular line is greater than or equal to 0.6 and less than or equal to 1.2. The thickness of the radiator 2712 is basically the same as that of the fixed frame 2714, so that the radiator 2712 can be arranged in the fixed frame 2714 and be better protected. Further, the ratio of the size of the radiator 2712 along the fixed frame perpendicular line to the size of the fixed frame 2714 along the fixed frame perpendicular line is greater than or equal to 0.7 and less than or equal to 1.1.Furthermore, the ratio of the dimension of the radiator 2712 along the vertical direction of the fixed frame to the dimension of the fixed frame 2714 along the vertical direction of the fixed frame is greater than or equal to 0.8 and less than or equal to 1.0.

[0047] like Figure 10 As shown, mounting surface 2714a has at least three fan mounting brackets 2714b for fixing the fan assembly 2713, and mounting surface 2714a has at least three heat sink mounting brackets 2714c for fixing the heat sink 2712. To ensure the connection strength between the fan assembly 2713 and the heat sink 2712 and the fixed frame 2714, fan mounting brackets 2714b and heat sink mounting brackets 2714c are respectively provided on the fixed frame 2714, thereby improving the connection strength between the fan assembly 2713 and the heat sink 2712 on the fixed frame 2714. In the vertical direction of the fixed frame, the distance between the fan mounting bracket 2714b and the mounting surface 2714a is greater than or equal to the distance between the heat sink mounting bracket 2714c and the mounting surface 2714a. With the above arrangement, the fan assembly 2713 is mounted outside the heat sink 2712, facilitating heat dissipation from the heat sink 2712 by the fan assembly 2713. Specifically, the radiator mounting bracket 2714c has at least two insertion holes and at least one fixing hole. The radiator 2712 is connected to the fixed frame 2714 through the insertion holes and fixing holes. The insertion holes facilitate the installation of the radiator 2712 onto the fixed frame 2711, reducing the assembly difficulty of the radiator 2712. The insertion holes and fixing holes work together to improve the connection stability between the radiator 2712 and the fixed frame 2714. The fixed frame 2714 has at least three connecting seats 2714d for connecting the fixed frame 2714 to the vehicle frame 11. The connecting seats 2714d on the fixed frame 2714 serve as the connection structure between the cooling module 271 and the vehicle frame 11. The presence of at least three connecting seats 2714d for connecting the fixed frame 2714 to the vehicle frame 11 ensures the reliability of the connection between the fixed frame 2714 and the vehicle frame 11, thereby improving the reliability of the connection between the cooling module 271 and the vehicle frame 11. The mounting frame 2714 can be made of plastic, which is lightweight and reduces vehicle weight, thus improving performance. Plastic is also a good insulator and chemically stable, exhibiting excellent resistance to acids and alkalis. Using plastic for the mounting frame 2714 allows it to withstand various vehicle conditions, extending its service life. The mounting frame plane is parallel to the cooling module plane.

[0048] The all-terrain vehicle 100 includes a control system 26, which is located in the frame 11 and is at least partially connected to a fan unit 2713. Figure 11As shown, the fan device 2713 includes a fan 2713a for generating airflow, and a control circuit 2713b connected to the fan 2713a. The fan 2713a can flow the airflow to cool the cooling module 271. The control circuit 2713b includes a high-speed circuit 2713c and a low-speed circuit 2713d connected in parallel. When the fan 2713a is connected to the high-speed circuit 2713c, the fan 2713a operates at a high speed. When the fan 2713a is connected to the low-speed circuit 2713d, the fan 2713a operates at a low speed. The all-terrain vehicle 100 can set the fan 2713a speed according to the power of the engine 151 or according to the temperature control adjustment of the temperature sensor 273 arranged on the engine 151 or the cooling module 271. When the fan device 2713 is connected to the low-speed circuit 2713d and operates at a low speed, the energy consumption of the all-terrain vehicle 100 can be reduced, and the service life of the fan device 2713 can be improved. When the fan device 2713 operates at a low speed, the fan device 2713 is also more quiet, which can improve the driving comfort. When the fan device 2713 is connected to the high-speed circuit 2713c and operates at a high speed, the heat dissipation effect of the all-terrain vehicle 100 under high temperature conditions can be improved. The control system 26 includes a vehicle controller 261 and a fan controller 262 electrically connected to the vehicle controller 261. The high-speed circuit 2713c and the low-speed circuit 2713d are connected to the fan controller 262 in parallel. The vehicle controller 261 can output a speed control signal to control the fan controller 262 to turn on the low-speed circuit 2713d or the high-speed circuit 2713c. The fan controller 262 controls the fan 2713a to switch between the low-speed circuit 2713d and the high-speed circuit 2713c, which can improve the efficiency of the fan 2713a speed control. The fan controller 262 can control the fan 2713a to switch between a first fan state, a second fan state and a third fan state. When the fan 2713a is in the first fan state, the fan 2713a does not work. When the fan 2713a is in the second fan state, the fan 2713a works at a low speed. When the fan 2713a is in the third fan state, the fan 2713a works at a high speed. The fan device 2713 includes at least two fans 2713a, and the fans 2713a are distributed along the width direction of the all-terrain vehicle 100. Arranging multiple fans 2713a in the fan device 2713 can improve the heat dissipation performance, which can meet the heat dissipation requirements of the integrated cooling module 271 and the high-power engine 151. The fan device 2713 includes two sets of independently arranged control circuits 2713b. The two fans 2713a are independently connected to the control circuits 2713b and can independently operate in the first fan state, the second fan state or the third fan state. The operating state of different fans 2713a is not affected by other fans 2713a, thereby improving the overall working efficiency of the fan device 2713. The cooling system 27 further includes a temperature sensor 273 connected to the vehicle controller 261 to output a temperature signal to the vehicle controller 261.The temperature sensor 273 can feed back the whole vehicle temperature signal, so as to facilitate the cooling system 27 to control and cool the whole vehicle in time. The whole vehicle controller 261 receives the temperature signal given by the temperature sensor 273 and outputs the rotating speed control signal to the fan controller 262 according to the temperature signal, and the fan controller 262 switches between the high rotating speed loop 2713c and the low rotating speed loop 2713d according to the rotating speed control signal. The rotating speed of the fan 2713a can be controlled according to the temperature of the all-terrain vehicle 100. The temperature sensor 273 is arranged in the radiator 2712 or in the engine 151. The temperature sensor 273 arranged in the radiator 2712 and the engine 151 can monitor the temperature of the all-terrain vehicle 100 in time when the all-terrain vehicle 100 is running, and feed back to the cooling module 271 to cool and radiate the all-terrain vehicle 100 in time.

[0049] The control system 26 comprises a power supply 263, and the fan controller 262 is further connected to the power supply 263. The power supply 263 supplies power to the fan controller 262, and the fan controller 262 connects the high rotating speed loop 2713c to the power supply 263 or connects the low rotating speed loop 2713d to the power supply 263 according to the rotating speed control signal. After the fan controller 262 connects the high rotating speed loop to the power supply 263, the fan 2713a can operate at a high rotating speed to improve the cooling efficiency of the cooling module 271. After the fan controller 262 connects the low rotating speed loop to the power supply 263, the fan 2713a can operate at a low rotating speed to reduce energy consumption and noise while meeting the cooling requirement. The control system 26 comprises a fan fuse 264, which is arranged between the fan controller 262 and the power supply 263. The fan fuse 264 can cut off the circuit in time when the circuit is abnormal, so as to improve the safety of the all-terrain vehicle 100.

[0050] The cooling system 27 comprises an oil cooler 274, which is used to cool the lubricating oil in the engine 151. As shown in FIG. 6, the oil cooler 274 is arranged on the engine 151. Figure 12 and Figure 13As shown, the radiator 2712 includes at least one cooling chamber 2712a and a plurality of fins 2712b connected to the cooling chamber 2712a, the cooling chamber 2712a provides a storage space for the coolant, the fins 2712b serve to cool the coolant, and the fins 2712b can increase the contact area between the coolant and the air. The two ends of the radiator 2712 are connected to the engine 151, and the two ends of the oil cooler 274 are connected to the engine 151, and the oil cooler 274 is arranged in the cooling chamber 2712a. Define the extension plane of the radiator 2712 as the radiator plane, define a radiator vertical line perpendicular to the radiator plane, define the projection of the oil cooler in the radiator plane along the radiator vertical line as the oil cooler projection, define the projection of the cooling chamber in the radiator plane along the radiator vertical line as the cooling chamber projection, and the oil cooler projection is completely located in the cooling chamber projection. The oil cooler 274 is arranged in the radiator 2712, and the oil cooler 274 can directly use the coolant in the radiator 2712 for cooling, and compared with the cooling mode relying on air alone, the coolant cooling has higher cooling efficiency. At the same time, the oil cooler 274 arranged in the cooling chamber 2712a of the radiator 2712 can also occupy less space and improve the space utilization. At the same time, the integrated arrangement of the radiator 2712 and the oil cooler 274 can also reduce the assembly difficulty and improve the assembly efficiency of the all-terrain vehicle 100. The ratio of the area of the oil cooler projection to the area of the cooling chamber projection is greater than or equal to 0.31 and less than or equal to 0.59. Further, the ratio of the area of the oil cooler projection to the area of the cooling chamber projection is greater than or equal to 0.36 and less than or equal to 0.54. Further, the ratio of the area of the oil cooler projection to the area of the cooling chamber projection is greater than or equal to 0.4 and less than or equal to 0.5. Define the extension direction of the cooling chamber 2712a as the cooling chamber extension direction, and the oil cooler 274 also extends along the cooling chamber extension direction. In the cooling chamber extension direction, the ratio of the size L11 of the oil cooler 274 to the size L12 of the cooling chamber 2712a is greater than or equal to 0.38 and less than or equal to 0.72. The ratio of the length of the oil cooler 274 to the length of the cooling chamber 2712a is in the above range, which can improve the cooling effect of the oil cooler 274 and also ensure the storage space of the coolant in the cooling chamber 2712a. Further, in the cooling chamber extension direction, the ratio of the size L11 of the oil cooler 274 to the size L12 of the cooling chamber 2712a is greater than or equal to 0.44 and less than or equal to 0.66. Further, in the cooling chamber extension direction, the ratio of the size L11 of the oil cooler 274 to the size L12 of the cooling chamber 2712a is greater than or equal to 0.49 and less than or equal to 0.61. The oil cooler 274 includes an oil cooler inlet 2741 and an oil cooler outlet 2742, and the oil cooler inlet 2741 and the oil cooler outlet 2742 pass through the cooling chamber and are connected to the engine 151. In the height direction of the all-terrain vehicle, the oil cooler inlet 2741 is located below the oil cooler outlet 2742.The high-temperature lubricating oil enters the oil cooler 274 from the oil cooler inlet 2741, is cooled in the oil cooler 274, and is discharged from the oil cooler 274 from the oil cooler outlet 2742, so as to realize the circulation cooling of the lubricating oil in the oil cooler 274. The oil cooler inlet 2741 is located below the oil cooler outlet 2742. The high-temperature lubricating oil entering the oil cooler 274 from the oil cooler inlet 2741 contacts the cooling liquid of a lower temperature to realize heat exchange, so as to improve the heat exchange efficiency and reduce the cooling time of the lubricating oil.

[0051] The engine 151 comprises an engine outlet 153 for discharging the cooling liquid and an engine inlet 154 for receiving the cooling liquid. The radiator 2712 comprises a high-temperature side cooling chamber 2712c connected to the cooling liquid outlet and a low-temperature side cooling chamber 2712d connected to the cooling liquid inlet. The radiator fins 2712b are arranged through the high-temperature side cooling chamber 2712c and the low-temperature side cooling chamber 2712d. The radiator inlet 2712e is arranged in the high-temperature side cooling chamber 2712c, and the radiator outlet 2712f is arranged in the low-temperature cooling chamber. The radiator 2712 further comprises the radiator inlet 2712e arranged in the high-temperature side cooling chamber 2712c and the radiator outlet 2712f arranged in the low-temperature cooling chamber 2712d. The radiator inlet 2712e is connected to the engine outlet 153, and the radiator outlet 2712f is connected to the engine inlet 154. In the height direction of the all-terrain vehicle, the height of the radiator inlet 2712e is above the height of the radiator outlet 2712f. In the working process of the radiator 2712, the high-temperature cooling liquid first enters the high-temperature side cooling chamber 2712c of the radiator 2712 from the radiator inlet 2712e, is cooled by the radiator fins 2712b arranged through the high-temperature side cooling chamber 2712c and the low-temperature side cooling chamber 2712d, and then enters the low-temperature side cooling chamber 1612d. After the oil cooler 274 is cooled and cooled, the cooling liquid is discharged from the radiator outlet 2712f, and the cooling is completed. The radiator 2712 can be made of metal materials such as aluminum, copper, stainless steel or castings, and the oil cooler 274 can also be made of metal materials such as aluminum, copper, stainless steel or castings.

[0052] As an embodiment, the cooling system 27 further comprises a cooling water kettle 275. One part of the cooling water kettle 275 is connected to the engine 151, and the other part of the cooling water kettle 275 is connected to the radiator 2712. As shown in FIG. 1, the cooling water kettle 275 is arranged on the engine 151. The cooling water kettle 275 is connected to the engine inlet 154 and the radiator outlet 2712f. The cooling water kettle 275 is connected to the engine inlet 154 through the cooling water kettle inlet 2751, and is connected to the radiator outlet 2712f through the cooling water kettle outlet 2752. The cooling water kettle 275 is arranged on the engine 151, and the cooling water kettle inlet 2751 is arranged above the engine inlet 154. The cooling water kettle outlet 2752 is arranged below the radiator outlet 2712f. The cooling water kettle 275 is connected to the engine inlet 154 and the radiator outlet 2712f, so as to realize the circulation cooling of the cooling liquid in the cooling water kettle 275. Figure 14As shown, the cooling water kettle 275 includes a kettle body 2751 and a pressure cover 2752 connected to the kettle body 2751. Specifically, the pressure cover 2752 includes a pressure valve capable of bidirectional communication. The pressure cover 2752 includes a closed state of closing the kettle body 2751 and a communication state of making the kettle body 2751 communicate with the air, when the pressure in the kettle body 2751 is greater than the first critical pressure and less than the second critical pressure, the pressure valve in the pressure cover 2752 is closed, so that the pressure cover 2752 is in a closed state, when the pressure in the kettle body 2751 is less than the first critical pressure or greater than the second critical pressure, the pressure valve in the pressure cover 2752 is opened, so that the pressure cover 2752 is in a communication state, the first critical pressure is less than the second critical pressure. The cooling water kettle 275 provided with the pressure cover 2752 is basically a closed environment, and the closed cooling water kettle 275 can reduce the loss of cooling liquid and improve the operation stability of the cooling system 27. The cooling water kettle 275 can balance the liquid level and pressure in the radiator 2712 and the engine 151, and the pressure cover 2752 can adjust the pressure of the cooling water kettle 275. During the driving of the ATV 100, the temperature of the cooling liquid in the engine 151 will slowly rise, and the pressure in the engine 151 will also rise. The high-temperature and high-pressure cooling liquid in the engine 151 will affect the performance and service life of the engine 151, and the high-temperature and high-pressure cooling liquid contains steam bubbles, which will cause cavitation in the engine 151 and affect the operation stability of the engine 151. After the ATV 100 is provided with the cooling water kettle 275, the cooling water kettle 275 and the engine 151 are communicated, and the cooling liquid can move between the engine 151 and the cooling water kettle 275. When the pressure in the cooling water kettle 275 is less than the first critical pressure, the pressure cover 2752 of the cooling water kettle 275 is opened, and the air in the environment can enter the cooling water kettle 275 to balance the pressure in the cooling water kettle 275. When the pressure in the cooling water kettle 275 is too high, the pressure cover 2752 of the cooling water kettle 275 is opened, and the excess steam in the cooling water kettle 275 can be discharged to the environment. By providing the cooling water kettle 275 with the pressure cover 2752, the situation of too low or too high pressure in the cooling system 27 can be prevented, and the pressure of the engine 151 is ensured to be in an appropriate range, thereby improving the reliability of the engine 151. Specifically, the first critical pressure is greater than or equal to -10 kPa and less than or equal to 0 kPa, and the second critical pressure is greater than or equal to 90 kPa and less than or equal to 170 kPa. Further, the first critical pressure is greater than or equal to -7 kPa and less than or equal to -3 kPa, and the second critical pressure is greater than or equal to 100 kPa and less than or equal to 160 kPa. Further, the first critical pressure is greater than or equal to -6 kPa and less than or equal to -4 kPa, and the second critical pressure is greater than or equal to 115 kPa and less than or equal to 145 kPa.

[0053] The cooling water tank 275 further comprises a first degassing port 2753 for communicating with the engine 151, a second degassing port 2754 for communicating with the radiator 2712, and a water supplement port 2755 for supplementing cooling liquid into the radiator 2712. The first degassing port 2753 is communicated with the engine 151 through a pipe, and the first degassing port 2753 and the engine 151 are connected to ensure pressure balance in the engine 151. The second degassing port 2754 is communicated with the radiator 2712 through a pipe, and the second degassing port 2754 and the radiator 2712 are connected to ensure pressure balance in the radiator 2712. The water supplement port 2755 is communicated with the radiator 2712 through a pipe, and the water supplement port 2755 is used for supplementing cooling liquid into the radiator 2712 to ensure liquid level balance in the cooling system 27. The diameter of the first degassing port 2753 is smaller than that of the water supplement port 2755, and the diameter of the second degassing port 2754 is smaller than that of the water supplement port 2755, so that the first degassing port 2753 and the second degassing port 2754 only need to meet the gas flow requirement, and the smaller diameter can also reduce the occupied space. The radiator 2712 comprises a radiator degassing port 2712g and a radiator water supplement port 2712h, and the radiator degassing port 2712g is arranged above the radiator water supplement port 2712h in the height direction of the ATV. The second degassing port 2754 in the cooling water tank 275 is connected to the radiator 2712, and the high-temperature and high-pressure cooling liquid and steam in the radiator 2712 are discharged into the cooling water tank 275 through the second degassing port 2754 to reduce the gas pressure in the radiator 2712 and prevent the pressure in the radiator 2712 from being too high. The cooling water tank 275 has simple overall structure and cooling process, and meets the engine 151 end degassing and radiator 2712 end degassing functions at the same time.

[0054] It should be understood that, for those skilled in the art, improvements or changes can be made according to the above description, and all these improvements and changes shall belong to the protection scope of the appended claims of the present application.

Claims

1. An all-terrain vehicle, comprising: a frame; a power system disposed in the frame, the power system including an engine; a transmission system at least partially connected to the engine; a travel assembly disposed below the frame, the travel assembly at least partially connected to the transmission system; a cooling system at least partially connected to the engine, the cooling system including a radiator and an oil cooler; characterized in that: the radiator includes at least one cooling chamber and fins connected to the cooling chamber, both ends of the radiator are connected to the engine, both ends of the oil cooler are connected to the engine, and the oil cooler is disposed in the cooling chamber; the all-terrain vehicle further includes a seat assembly, the cooling system further includes a flow guide mechanism, the flow guide mechanism includes an auxiliary air inlet, a top end of the seat assembly is disposed higher than a bottom end of the auxiliary air inlet and lower than a top end of the auxiliary air inlet along a height direction of the all-terrain vehicle.

2. The all-terrain vehicle according to claim 1, characterized in that: an extension plane of the radiator is defined as a radiator plane, a vertical radiator plane direction perpendicular to the radiator plane is defined, an oil cooler projection of the oil cooler in the radiator plane is defined in the vertical radiator plane direction, a cooling chamber projection of the cooling chamber in the radiator plane is defined, and a ratio of an area of the oil cooler projection to an area of the cooling chamber projection is greater than or equal to 0.31 and less than or equal to 0.

59.

3. The all-terrain vehicle according to claim 1, characterized in that: an extension plane of the radiator is defined as a radiator plane, a vertical radiator plane direction perpendicular to the radiator plane is defined, an oil cooler projection of the oil cooler in the radiator plane is defined in the vertical radiator plane direction, a cooling chamber projection of the cooling chamber in the radiator plane is defined, and a ratio of an area of the oil cooler projection to an area of the cooling chamber projection is greater than or equal to 0.36 and less than or equal to 0.

54.

4. The all-terrain vehicle according to claim 1, characterized in that: an extension direction of the cooling chamber is defined as a cooling chamber extension direction, the oil cooler extends along the cooling chamber extension direction, and a ratio of a size of the oil cooler to a size of the cooling chamber in the cooling chamber extension direction is greater than or equal to 0.38 and less than or equal to 0.

72.

5. The all-terrain vehicle according to claim 1, characterized in that: an extension direction of the cooling chamber is defined as a cooling chamber extension direction, the oil cooler extends along the cooling chamber extension direction, and a ratio of a size of the oil cooler to a size of the cooling chamber in the cooling chamber extension direction is greater than or equal to 0.44 and less than or equal to 0.

66.

6. The all-terrain vehicle according to claim 1, characterized in that: the oil cooler includes an oil cooler inlet and an oil cooler outlet, and the oil cooler inlet and the oil cooler outlet are connected to the engine through the cooling chamber, respectively.

7. The all-terrain vehicle according to claim 6, characterized in that: The oil cooler inlet is located below the oil cooler outlet in the height direction of the all-terrain vehicle.

8. The all-terrain vehicle of claim 1, wherein: The engine includes an engine outlet that discharges coolant and an engine inlet that receives coolant, the radiator includes a high-temperature side cooling chamber connected to the engine outlet and a low-temperature side cooling chamber connected to the engine inlet, the fins are disposed through between the high-temperature side cooling chamber and the low-temperature side cooling chamber, and the oil cooler is disposed in the low-temperature side cooling chamber.

9. The all-terrain vehicle of claim 8, wherein: The radiator includes a radiator inlet provided in the high-temperature side cooling chamber and a radiator outlet provided in the low-temperature cooling chamber, the radiator inlet is connected to the engine outlet, and the radiator outlet is connected to the engine inlet.

10. The all-terrain vehicle of claim 9, wherein: The height of the radiator inlet is above the height of the radiator outlet in the height direction of the all-terrain vehicle.

Citation Information

Patent Citations

  • Oil cold charge is put with fin

    CN205387963U

  • Straddle type electric vehicle

    CN216002920U