All-terrain vehicle

By positioning the engine with its cylinder head facing rearward and optimizing component alignment, the ATV achieves improved space utilization and thermal management, ensuring stability and comfort.

CN120308267APending Publication Date: 2025-07-15ZHEJIANG CFMOTO POWER CO LTD
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Patent Information

Application Number
CN202510067446.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Priority Date
2024-10-31
Filing Date
2025-01-15
Publication Date
2025-07-15

AI Technical Summary

Technical Problem

The engine cylinder head facing forward in existing all-terrain vehicles leads to low space utilization and increases insulation costs.

Method used

The engine cylinder head is set toward the rear and the frame structure is optimized so that the area ratio of the cylinder head projection area and the upper main beam projection area is between 0.6 and 0.9, and the distance between the cylinder head and the upper main beam is between 10mm and 50mm. The air intake components and other components are reasonably arranged to improve space utilization.

Benefits of technology

It improves the utilization rate of the internal space of the frame, avoids engine-related components from extending out of the space formed by the frame, reduces heat insulation costs, and improves the stability and user experience of the vehicle.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses an all-terrain vehicle which comprises a vehicle frame, a vehicle body covering part, a suspension system, a walking system and an engine. The frame comprises an upper main beam, a lower main beam and a connecting bracket connected between the upper main beam and the lower main beam; the engine is used for driving the walking system; the engine comprises at least two cylinder heads arranged in parallel and cylinder covers installed on the cylinder heads. A plane perpendicular to the height direction of the frame and passing through a contact point of the walking system and the ground is defined as a reference plane, and the orthographic projection of the cylinder cover on the reference plane is defined as a cylinder cover projection area; the area surrounded by the orthographic projection of the upper main beam on the datum plane in the height direction of the frame is defined as an upper main beam projection closed area; the part, falling into the upper main beam projection closed area, of the cylinder cover projection area is defined as closed area projection, and the area ratio of the closed area projection to the cylinder cover projection area ranges from 0.6 to 0.9. Through the arrangement, all parts are reasonably arranged, the space utilization rate of the all-terrain vehicle is high, and the heat insulation cost is low.
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Description

Technical Field

[0001] The present application relates to a vehicle, and more particularly to an all-terrain vehicle. Background Art

[0002] An all-terrain vehicle is a multi-functional vehicle designed for various complex terrains. It has powerful off-road capabilities and stability, and can easily travel in complex environments such as mud, sand, snow, and rocks.

[0003] An all-terrain vehicle generally includes a frame, a body cover, a running system, a suspension system, a power assembly, and electrical components. The exhaust pipe in the all-terrain vehicle is used to connect the engine to the outside, so that the exhaust gas generated when the engine runs can be discharged to the outside through the exhaust pipe.

[0004] In the prior art, the cylinder head of the engine is arranged facing the rear, which will occupy a large amount of space. Other components related to the engine, such as the frame, fuel tank, intake assembly, etc., are arranged loosely to avoid interference with the engine, resulting in low space utilization. Summary of the Invention

[0005] To solve the deficiencies of the prior art, the purpose of the present application is to provide an all-terrain vehicle with high space utilization and low heat insulation cost.

[0006] To achieve the above object, the present invention adopts the following technical solutions:

[0007] An all-terrain vehicle, comprising: a frame, the frame includes an upper main beam, a lower main beam, and longitudinal beams connecting the upper main beam and the lower main beam; a body cover, the body cover is arranged on the frame; a suspension system, the suspension system is arranged on the frame; a running system, the running system is connected to the frame through the suspension system; an engine, the engine is used to drive the running system; the engine includes a cylinder, two cylinder heads arranged side by side on the cylinder, and a cylinder head cover installed on the cylinder head; the cylinder head is arranged facing the rear end of the all-terrain vehicle; define a plane perpendicular to the height direction of the frame and passing through the contact point of the running system with the ground as a reference plane, and the orthographic projection of the cylinder head cover on the reference plane is defined as the cylinder head cover projection area; the area enclosed by the orthographic projection of the upper main beam on the reference plane along the height direction of the frame is defined as the upper main beam projection closed area; the part of the cylinder head cover projection area that falls into the upper main beam projection closed area is defined as the closed area projection, and the ratio of the area of the closed area projection to the area of the cylinder head cover projection area ranges from 0.6 to 0.9.

[0008] Further, the ratio of the area of the closed area projection to the area of the cylinder head cover projection area ranges from 0.7 to 0.85.

[0009] Further, the ratio of the area of the closed area projection to the area of the cylinder head cover projection area ranges from 0.75 to 0.8.

[0010] Further, in the height direction of the frame, the distance between the uppermost end of the cylinder head and the lowermost end of the upper main beam ranges from 10 mm to 50 mm.

[0011] Further, in the height direction of the frame, the distance between the uppermost end of the cylinder head and the lowermost end of the upper main beam ranges from 20 mm to 40 mm.

[0012] Further, in the height direction of the frame, the distance between the uppermost end of the cylinder head and the lowermost end of the upper main beam ranges from 25 mm to 35 mm.

[0013] Further, in the width direction of the frame, there is a preset gap between two juxtaposed cylinder heads, and the range of the preset gap is from 6 mm to 12 mm.

[0014] Further, in the width direction of the frame, there is a preset gap between two juxtaposed cylinder heads, and the range of the preset gap is from 8 mm to 10 mm.

[0015] Further, the all-terrain vehicle further includes a steering assembly, which is arranged on the frame and located at the front side of the all-terrain vehicle; the engine further includes an intake assembly and an air intake port, the air intake port is arranged on the housing of the engine and connected to the intake assembly, and the air intake port is arranged between the steering assembly and the cylinder head.

[0016] Further, the orthographic projection of the frame on the reference plane is the frame projection, and the orthographic projection of the air intake port in the reference plane is the air intake port projection, and the air intake port projection is arranged in the area outside the frame projection.

[0017] Through the above settings, the cylinder heads of the engine of the all-terrain vehicle face backward and are arranged within the range of the frame as much as possible, thereby improving the utilization rate of the internal space of the frame, and at the same time preventing the related components of the engine from extending out of the space formed by the frame, avoiding adding heat insulation mechanisms or increasing heat insulation costs. Description of the Drawings

[0018] Figure 1 is a three-dimensional schematic diagram of the all-terrain vehicle provided by the embodiment of the present application;

[0019] Figure 2 is a top view of the internal structure of the all-terrain vehicle provided by the embodiment of the present application;

[0020] Figure 3 is a left view of the internal structure of the all-terrain vehicle provided by the embodiment of the present application;

[0021] Figure 4 is an exploded view of the engine of the all-terrain vehicle provided by the embodiment of the present application;

[0022] Figure 5 is a top view of the assembly of the upper main beam and the engine of the all-terrain vehicle provided by the embodiment of the present application;

[0023] Figure 6 is a top view of the internal structure of the all-terrain vehicle provided by the embodiment of the present application, with the frame removed;

[0024] Figure 7 is a sectional view of the engine of the all-terrain vehicle provided by the embodiment of the present application;

[0025] Figure 8 is a left assembly view of the engine, frame and running system of the all-terrain vehicle provided by the embodiment of the present application. Detailed Embodiments

[0026] The present invention will be described in detail below in conjunction with the specific embodiments shown in the drawings. However, these embodiments do not limit the present invention, and any structural, methodical, or functional transformations made by those of ordinary skill in the art based on these embodiments are included within the protection scope of the present invention.

[0027] As Figures 1 to 3 shown, the present application provides an all-terrain vehicle 100, which includes a frame 11, a body covering 12, a running system 13, a suspension system 14, a power assembly 15, a transmission assembly 16, a fuel assembly 17, a seat assembly 19, a steering assembly 20, an electrical assembly 22, and a footrest assembly 27. Among them, the frame 11 constitutes the basic structure of the all-terrain vehicle 100. The body covering 12 is at least partially disposed on the frame 11 and forms an accommodation space 115 with the frame 11. The power assembly 15 includes an engine 151, and the engine 151 is at least partially disposed in the accommodation space 115. The suspension system 14 is at least partially connected to the frame 11, and the running system 13 is connected to the frame 11 through the suspension system 14. The transmission assembly 16 is also drivingly connected to the engine 151 and can transmit the power of the engine 151 to the running system 13. The fuel assembly 17 is supported by the frame 11. The seat assembly 19 is for the user to ride on, and the footrest assembly 27 is disposed below the seat assembly 19. The steering assembly 20 can be operated to realize the steering of the all-terrain vehicle 100. To clearly define the technical solution of the present application, the front, rear, upper, lower, left, and right as shown in Figure 1 are also defined. Among them, the front-rear direction is the length direction of the frame 11, the left-right direction is the width direction of the frame 11, and the up-down direction is the height direction of the frame 11. A plane perpendicular to the height direction of the all-terrain vehicle 100 and passing through at least one contact point between the running system 13 and the horizontal plane is defined as a reference plane 102. A plane perpendicular to the length direction of the frame 11 and passing through the midpoint of the wheelbase of the all-terrain vehicle 100 is defined as the lateral center plane 105 of the all-terrain vehicle 100. A plane perpendicular to the width direction of the frame 11 and passing through the midpoint of the width of the all-terrain vehicle 100 is defined as the longitudinal center plane 10s of the all-terrain vehicle 100, and the seat assembly 19 straddles the longitudinal center plane 10s.

[0028] As shown in Figures 2 to 4 Figures 2 to 4 , as an implementation, the engine 151 provided by the embodiments of the present application includes a cylinder head 1512, a cylinder 1513, and a cylinder head 1514. Along the height direction of the all-terrain vehicle 100, the cylinder head 1512 is used to close the cylinder head 1514, and the cylinder head 1514 is connected to the cylinder 1513 and located above the cylinder 1513. Along the width direction of the all-terrain vehicle 100, the cylinder heads 1514 are distributed and provided with a plurality along the width direction of the all-terrain vehicle 100. Along the front-rear direction of the all-terrain vehicle 100, the cylinder heads 1514 are arranged towards the rear end of the all-terrain vehicle 100. It can be understood that according to the power requirement of the all-terrain vehicle 100, the cylinder heads 1514 can be provided with 1, 2, 3 or more, which is not limited herein.

[0029] As an alternative implementation, the powertrain 15 further includes a continuously variable transmission mechanism 152 and a magneto 157. The continuously variable transmission mechanism 152 and the engine 151 are distributed along the width direction of the all-terrain vehicle 100, and the continuously variable transmission mechanism 152 is drivingly connected to the engine 151. The continuously variable transmission mechanism 152 is provided with a driving pulley 1521 and a driven pulley 1522. The driving pulley 1521 is drivingly connected to the driven pulley 1522. The magneto 157 can be driven to generate electricity. As an implementation, the magneto 157 is arranged on the right side of the all-terrain vehicle 100, and the driving pulley 1521 is arranged on the left side of the all-terrain vehicle 100.

[0030] As shown in Figures 2 to 5As shown in the figure, the vehicle frame 11 includes a main vehicle frame 113. The main vehicle frame 113 includes an upper main beam 1131 and a lower main beam 1132. The upper main beam 1131, the lower main beam 1132, a cross beam 1134, and longitudinal beams 1133 disposed between the upper main beam 1131 and the lower main beam 1132. Along the height direction of the all-terrain vehicle 100, the longitudinal beams 1133 are used to connect the upper main beam 1131 and the lower main beam 1132. The upper main beam 1131 includes two upper main beam tubes that are symmetrically distributed about the longitudinal central plane 10s. The lower main beam 1132 includes two lower main beam tubes that are symmetrically distributed about the longitudinal central plane 10s. Along the width direction of the vehicle frame 11, the two upper main beam tubes and the two lower main beam tubes are all connected by the cross beam 1134. It can be understood that the upper main beam 1131, the lower main beam 1132, and the cross beam 1134 enclose the above-mentioned accommodation space 115, and the engine 151 and the transmission assembly 16 are at least partially disposed in the accommodation space 115. Specifically, along the height direction of the vehicle frame 11, the distance range between the uppermost end of the cylinder head 1514 of the engine 151 and the lowermost end of the upper main beam 1131 is 10 mm to 50 mm. If the distance is less than 10 mm, the heat of the cylinder head 1514 will be transferred above the seat cushion, affecting the user experience and making it inconvenient to install the engine 151. If the distance is greater than 50 mm, the space between the upper main beam 1131 and the lower main beam 1132 will be wasted, unable to meet the installation requirements of other parts.

[0031] As an implementation manner, the distance range between the uppermost end of the cylinder head 1514 of the engine 151 and the lowermost end of the upper main beam 1131 is 20 mm to 40 mm. In some embodiments, the distance range between the uppermost end of the cylinder head 1514 of the engine 151 and the lowermost end of the upper main beam 1131 is 25 mm to 35 mm. Through the above settings, it can not only ensure a reliable distance between the cylinder head 1514 and the vehicle frame 11, avoiding the heat on the cylinder head 1514 from being transferred to the vehicle frame 11, thereby generating heat conduction and affecting the user experience, but also facilitate the disassembly and assembly of the engine 151, improve the convenience of maintenance and assembly, and effectively utilize the space between the upper main beam 1131 and the lower main beam 1132, avoiding space waste, and further improving the space utilization rate of the all-terrain vehicle 100.

[0032] As Figures 4 to 7As shown, as an implementation, the engine 151 further includes at least two cylinder heads 1514 arranged side by side on the cylinder 1513 and a cylinder head cover 1512 mounted on the cylinder head 1514. The two cylinder heads 1514 are arranged on the cylinder 1513. The cylinder head 1514 is arranged towards the rear side of the all-terrain vehicle 100. The orthographic projection of the cylinder head cover 1512 on the reference plane 102 is defined as the cylinder head cover projection area S1; the area surrounded by the orthographic projection of the upper main beam 1131 on the reference plane 102 along the height direction of the vehicle frame 11 is defined as the upper main beam projection closed area; the part of the cylinder head cover projection area S1 that falls into the upper main beam projection closed area is defined as the closed area projection S2, and the ratio range of the closed area projection S2 to the cylinder head cover projection area S1 is 0.6 to 0.9.

[0033] Among them, the ratio range of the closed area projection S2 to the cylinder head cover projection area S1 is 0.6 to 0.9. In fact, when the ratio of the closed area projection S2 to the cylinder head cover projection area S1 is less than 0.6, the engine 151 will occupy too little internal space of the vehicle frame 11, resulting in excessive leakage of the cylinder head 1514, thereby increasing the heat insulation cost of the all-terrain vehicle 100, and even possibly causing the center of gravity of the all-terrain vehicle 100 to be offset, affecting the stability of the all-terrain vehicle 100.

[0034] As an implementation, the ratio range of the closed area projection S2 to the cylinder head cover projection area S1 is 0.7 to 0.85. Further, the ratio range of the closed area projection S2 to the cylinder head cover projection area S1 is 0.75 to 0.8. Through this setting, the engine 151 can occupy as much internal space of the vehicle frame 11 as possible, improving the utilization rate of the internal space of the vehicle frame 11, thereby avoiding the relevant components of the engine 151 from extending out of the space formed by the vehicle frame 11, and thus being able to avoid adding a heat insulation mechanism or increasing the heat insulation cost.

[0035] As an implementation, the cylinder head 1514 includes a left cylinder head 1514a and a right cylinder head 1514b, which are distributed along the width direction of the frame 11 and are arranged substantially parallel. Along the width direction of the frame 11, the left cylinder head 1514a is disposed on the left side of the all-terrain vehicle 100, and the right cylinder head 1514b is disposed on the right side of the all-terrain vehicle 100. The cylinder 1513 includes a left cylinder 1513a and a right cylinder 1513b. The left cylinder head 1514a is disposed on the left cylinder 1513a, and the right cylinder head 1514b is disposed on the right cylinder 1513b. The central axis of the left cylinder 1513a is the left cylinder axis, and the central axis of the right cylinder 1513b is the right cylinder axis. The horizontal distance from the left cylinder axis to the longitudinal central plane 10s is the first distance W1, that is, the left cylinder spacing. The horizontal distance from the right cylinder axis to the longitudinal central plane 10s is the second distance W2, that is, the right cylinder spacing. The ratio range between the first distance W1 and the second distance W2 is from 0 to 1. The ratio range between the first distance W1 and the second distance W2 is from 0.2 to 0.8. As an implementation, the ratio range between the first distance W1 and the second distance W2 is from 0.4 to 0.6. As an implementation, the range of the first distance W1 is from 0 mm to 200 mm, the second distance W2 is from 200 mm to 400 mm, the second distance W2 is from 80 mm to 160 mm, the first distance W1 is 25 mm, the second distance W2 is 130 mm, and the left cylinder axis and the right cylinder axis are both on the same side of the longitudinal central plane 10s, and the ratio between the first distance W1 and the second distance W2 is 0.19. As an implementation, the first distance W1 is 20 mm, the second distance W2 is 95 mm, and the left cylinder axis and the right cylinder axis are both on both sides of the longitudinal central plane 10s, and the ratio between the first distance W1 and the second distance W2 is 0.21.

[0036] It can be understood that there is a preset gap between the left cylinder head 1514a and the right cylinder head 1514b along the width direction of the frame 11. As an implementation, the range of the preset gap is from 6 mm to 12 mm. Through such a setting, on the one hand, the internal space of the frame 11 can be fully utilized, and on the other hand, it can ensure that there is enough gap between the left cylinder head 1514a and the right cylinder head 1514b, so that the heat generated by the left cylinder head 1514a and the right cylinder head 1514b can be quickly dissipated, avoiding damage to the engine due to overheating, and at the same time, it can also avoid the influence of heat radiation between the left cylinder head 1514a and the right cylinder head 1514b on each other, thereby affecting the heat dissipation efficiency.

[0037] As an implementation manner, the upper main beam 1131 includes a left upper main beam 1131a and a right upper main beam 1131b. The left upper main beam 1131a and the right upper main beam 1131b each extend along the length direction of the all-terrain vehicle 100. When the rider straddles the all-terrain vehicle 100, at the longitudinal positions of the left upper main beam 1131a and the right upper main beam 1131b where the rider's legs are located, the minimum distance between the left upper main beam 1131a and the right upper main beam 1131b is defined as the third distance W3, that is, the straddle width. At the longitudinal position closest to the left cylinder axis and the right cylinder axis, there is a fourth distance W4 between the left upper main beam 1131a and the right upper main beam 1131b, that is, the top width of the engine 151. The fourth distance W4 is greater than the third distance W3.

[0038] As an implementation manner, the first distance W1 or the second distance W2 is less than half of the third distance W3, and the sum of the first distance W1 and the second distance W2 is less than the fourth distance W4.

[0039] As an implementation manner, the first distance W1 is less than half of the fourth distance W4.

[0040] Through the above settings, the layout between the engine 151 and the frame 11 can be made more reasonable, the space utilization rate is higher, and the engine 151 will not be overly offset to one side of the longitudinal central plane 10s, thereby affecting the clamping of the rider or increasing the heat of the rider's legs and increasing the heat insulation cost. Therefore, the layout position between the engine 151 and the upper main beam 1131 is reasonable, which is convenient for the rider's legs to be clamped, and improves the stability and safety of riding.

[0041] Such as Figure 4As shown in the figure, in the width direction of the vehicle frame 11, the vertical distance between the leftmost side of the left cylinder head 1514a and the longitudinal center plane 10s is set as W5, and the vertical distance between the rightmost side of the right cylinder head 1514b and the longitudinal center plane 10s is set as the sixth distance W6. Among them, the ratio range of the fifth distance W5 to the sixth distance W6 is 0.2 to 1.8. As an implementation method, the ratio range of the fifth distance W5 to the sixth distance W6 is 0.5 to 1.5. As an implementation method, the ratio range of the fifth distance W5 to the sixth distance W6 is 0.8 to 1.2. Through the above settings, it can be ensured that there is a certain distance between the clamping positions of the left cylinder head 1514a and the right cylinder head 1514b and the human legs, and they will not be too offset, so that the heat generated by the left cylinder head 1514a and the right cylinder head 1514b can be quickly dissipated, avoiding engine damage caused by overheating. At the same time, it can also avoid the heat of the left cylinder head 1514a and the right cylinder head 1514b from affecting the driving experience of the driver and passengers. As an implementation method, the distance between the leftmost side of the engine 151 and the longitudinal center plane 10s is set as the seventh distance W7, and the distance between the rightmost side of the engine 151 and the longitudinal center plane 10s is set as the eighth distance W8. Among them, the ratio of the seventh distance W7 to the eighth distance W8 is set in the range of 0.6 to 1.3. Further, the ratio range of the seventh distance W7 to the eighth distance W8 is 0.7 to 1.2. As an implementation method, the ratio range of the seventh distance W7 to the eighth distance W8 is 0.8 to 1. In fact, the ratio of the seventh distance W7 to the eighth distance W8 can also be set to 0.9. Through such settings, the engine 151 can be set narrower in the width direction of the vehicle frame 11, with good clamping performance and good man-machine relationship during driving by the driver and passengers, greatly improving the user experience.

[0042] As Figures 1 to 3 shown, the steering assembly 20 is disposed on the vehicle frame 11 and is located at the front side of the all-terrain vehicle 100. The engine 151 further includes an intake assembly 1516 and an air intake port 1517. The air intake port 1517 is disposed on the engine 151 housing and is connected to the intake assembly 1516. The intake assembly 1516 includes an intake pipe and an air filter. The intake pipe connects the air filter and the air intake port 1517, thereby delivering the air filtered by the air filter to the air intake port 1517 to meet the intake requirement of the engine 151. As an implementation method, the orthographic projection of the vehicle frame 11 in the reference plane 102 is the first projection, and the orthographic projection of the air intake port 1517 in the reference plane 102 is the second projection. The second projection is disposed in an area outside the first projection. The air intake port 1517 is disposed between the steering assembly 20 and the cylinder head 1514, so that the intake is smoother and the layout of the intake structure is convenient.

[0043] As Figure 3As shown, the fuel assembly 17 includes a fuel tank 171 for supplying energy to the engine 151. Along the front-back direction of the all-terrain vehicle 100, the air filter is disposed between the fuel tank 171 and the engine 151. That is, the engine 151 is disposed at the rear side, the fuel tank 171 is disposed at the front side, and the air filter is disposed in the middle. As an implementation manner, along the up-down direction of the all-terrain vehicle 100, the fuel tank 171 is disposed between the upper main beam 1131 and the lower main beam 1132. As an implementation manner, the fuel tank 171 may be disposed at a position close to the upper main beam 1131. As Figure 5 shown, as another implementation manner, the fuel tank 171 may also be disposed at a position close to the lower main beam 1132, so that the center of gravity of the all-terrain vehicle 100 is lower, improving the controllability of the all-terrain vehicle 100; meanwhile, the space at the front part of the all-terrain vehicle 100 can be fully utilized.

[0044] As Figure 3 , Figure 8 shown, the cylinder 1513 has a cylinder axis 10m, and the orthographic projection of the cylinder axis 10m on the longitudinal central plane 10s is the cylinder projection line. As an implementation manner, the included angle κ between the cylinder projection line and the reference plane 102 ranges from 45° to 65°. By such a setting, the height of the cylinder head 1514 of the engine 151 can be controlled within a reasonable range, which is beneficial to the overall vehicle layout, making the layout structure of the engine 151 compact, and facilitating the smoother flow of the intake system and exhaust system of the engine 151, improving the performance and reliability of the engine 151.

[0045] As an alternative implementation, the connecting line between the orthographic projection of the axis center of the driving wheel 1521 on the longitudinal central plane 10s and the orthographic projection of the axis center of the driven wheel 1522 on the longitudinal central plane 10s is the transmission projection line 152a. The opening of the included angle β formed by the cylinder projection line and the transmission projection line 152a is arranged towards the rear of the all-terrain vehicle 100, and the angle range of the included angle β is from 35° to 75°. Specifically, the angle range of the included angle β formed by the cylinder projection line and the transmission projection line 152a is from 40° to 70°. More specifically, the angle range of the included angle β formed by the cylinder projection line and the transmission projection line 152a is from 45° to 65°. For example, in this implementation, the included angle β formed by the cylinder projection line and the transmission projection line 152a is 64.7°. Through the above settings, it is beneficial for the exhaust pipe 321 to be directly arranged towards the rear, thereby facilitating the shortening of the overall length of the exhaust pipe 321. Also, through the above settings, it is possible to avoid the increase in the length of the exhaust pipe 321 caused by the included angle β formed by the cylinder projection line and the transmission projection line 152a being too large, thus facilitating the shortening of the overall length of the exhaust pipe 321. In addition, it is also possible to avoid the cylinder head 1514 being too far back due to the included angle β formed by the cylinder projection line and the transmission projection line 152a being too small, thereby avoiding the cylinder head 1514 interfering with the assembly of other components due to being too far back.

[0046] As Figure 2As shown, along the width direction of the frame 11, the pedal assemblies 27 are arranged on both sides in the width direction of the frame 11. Specifically, the pedal assemblies 27 include a left pedal 271 and a right pedal 272, and the left pedal 271 and the right pedal 272 are symmetrically distributed about the longitudinal central plane 10s substantially. As an implementation manner, a left pedal serration 2711 for increasing friction is provided on the left pedal 271, and a right pedal serration 2721 for increasing friction is provided on the right pedal 272. Both the left pedal serration 2711 and the right pedal serration 2721 can be set to adapt to the shape of the pedal. As an implementation manner, the left pedal serration 2711 and the right pedal serration 2721 are set to be rectangular. The orthographic projection of the left pedal serration 2711 on the reference plane 102 is a left pedal serration projection 2711a, and the orthographic projection of the right pedal serration 2721 on the reference plane 102 is a right pedal serration projection 2721a. As an implementation manner, the traveling system 13 includes a front wheel 132 and a rear wheel 133. The front wheel 132 has a first rotation center 132a, and the rear wheel 133 has a second rotation center 133a. Along the length direction of the frame 11, the left pedal serration projection 2711a and the right pedal serration projection 2721a are located between the first rotation center 132a and the second rotation center 133a, and are located at the middle position between the first rotation center 132a and the second rotation center 133a. As an implementation manner, the front wheel 132 includes a left front wheel 1321 and a right front wheel 1322, and the rear wheel 133 includes a left rear wheel 1331 and a right rear wheel 1332. The longitudinal central plane 10s passes through the midpoint of the distance between the left front wheel 1321 and the right front wheel 1322. The orthographic projections of the left front wheel 1321, the right front wheel 1322, the left rear wheel 1331 and the right rear wheel 1332 in the reference plane 102 surround to form a projection area, and both the left pedal serration projection 2711a and the right pedal serration projection 2721a are arranged in this projection area.

[0047] As an implementation, along the front-rear direction of the all-terrain vehicle 100, the distance L between the rightmost side of the left footrest sawtooth projection 2711a and the rotation center of the driving wheel 1521 is greater than 0 to 420 mm. The distance between the leftmost side of the right footrest sawtooth projection 2721a and the rotation center of the magneto 157 is greater than 0 to 420 mm. When the distance between the left footrest sawtooth projection 2711a and the rotation center of the driving wheel 1521 is greater than 420 mm, the center of gravity of the all-terrain vehicle 100 will be rearward, and the stability of the all-terrain vehicle 100 will be poor. When the distance between the right footrest sawtooth projection 2721a and the rotation center of the magneto 157 is greater than 420 mm, the center of the all-terrain vehicle 100 will be rearward, and the stability of the all-terrain vehicle 100 will be poor. It can be understood that along the front-rear direction of the all-terrain vehicle 100, the distance range between the rightmost side of the left footrest sawtooth projection 2711a and the rotation center of the driving wheel 1521 is 40 mm to 380 mm. The distance range between the leftmost side of the right footrest sawtooth projection 2721a and the rotation center of the magneto 157 is 40 mm to 380 mm. Further, along the front-rear direction of the all-terrain vehicle 100, the distance range between the rightmost side of the left footrest sawtooth projection 2711a and the rotation center of the driving wheel 1521 is 60 mm to 300 mm. The distance range between the leftmost side of the right footrest sawtooth projection 2721a and the rotation center of the magneto 157 is 60 mm to 300 mm.

[0048] As an implementation, the distance between the rightmost side of the left footrest sawtooth projection 2711a and the leftmost side of the driving wheel 1521 is set to be greater than 0 to 150 mm, and the distance between the rightmost side of the right footrest sawtooth projection 2721a and the rightmost side of the magneto 157 is set to be greater than 0 to 150 mm. It can be understood that the distance between the rightmost side of the left footrest sawtooth projection 2711a and the leftmost side of the driving wheel 1521 is set in the range of 40 mm to 110 mm, and the distance between the rightmost side of the right footrest sawtooth projection 2721a and the rightmost side of the magneto 157 is set in the range of 40 mm to 110 mm. Further, the distance between the rightmost side of the left footrest sawtooth projection 2711a and the leftmost side of the driving wheel 1521 is set in the range of 60 mm to 90 mm, and the distance between the rightmost side of the right footrest sawtooth projection 2721a and the rightmost side of the magneto 157 is set in the range of 60 mm to 90 mm. Through the above settings, the layout of the engine 151 can be effectively improved, and the engine 151 can be set more in the middle position of the all-terrain vehicle 100 to a greater extent, and the cylinder head 1514 can effectively face the rear of the all-terrain vehicle 100, so that the heat of the engine 151 can effectively stay away from the driver and passenger, effectively improving the user experience.

[0049] It should be understood that those of ordinary skill in the art can make improvements or modifications based on the above description, and all such improvements and modifications shall fall within the scope of protection of the appended claims of this application.

Claims

1. An all-terrain vehicle, comprising: a frame, the frame including an upper main beam, a lower main beam, and longitudinal beams connecting between the upper main beam and the lower main beam; a body covering, the body covering being supported by at least one of the upper main beam, the lower main beam, and the longitudinal beams; a suspension system, the suspension system being supported by the lower main beam; a running system, the running system being connected to the frame through the suspension system; an engine, the engine being used to drive the running system, the engine including a cylinder, two cylinder heads arranged side by side on the cylinder, and a cylinder head cover mounted on the cylinder heads; characterized in that the cylinder head is arranged towards the rear end of the all-terrain vehicle; a plane perpendicular to the height direction of the frame and passing through the contact point of the running system with the ground is defined as a reference plane, and the orthographic projection of the cylinder head cover on the reference plane is defined as the cylinder head cover projection area; the area defined by the orthographic projection of the upper main beam on the reference plane along the height direction of the frame is defined as the upper main beam projection closed area; the part of the cylinder head cover projection area falling into the upper main beam projection closed area is defined as the closed area projection, and the ratio of the area of the closed area projection to the area of the cylinder head cover projection area ranges from 0.6 to 0.

9.

2. The all-terrain vehicle according to claim 1, characterized in that the ratio of the area of the closed area projection to the area of the cylinder head cover projection area ranges from 0.7 to 0.

85.

3. The all-terrain vehicle according to claim 1, characterized in that the ratio of the area of the closed area projection to the area of the cylinder head cover projection area ranges from 0.75 to 0.

8.

4. The all-terrain vehicle according to claim 1, characterized in that along the height direction of the frame, the distance between the uppermost end of the cylinder head cover and the lowermost end of the upper main beam ranges from 10 mm to 50 mm.

5. The all-terrain vehicle according to claim 1, characterized in that along the height direction of the frame, the distance between the uppermost end of the cylinder head cover and the lowermost end of the upper main beam ranges from 20 mm to 40 mm.

6. The all-terrain vehicle according to claim 1, characterized in that along the height direction of the frame, the distance between the uppermost end of the cylinder head cover and the lowermost end of the upper main beam ranges from 25 mm to 35 mm.

7. The all-terrain vehicle according to claim 1, characterized in that along the width direction of the frame, there is a preset gap between the two cylinder heads arranged side by side, and the range of the preset gap is from 6 mm to 12 mm.

8. The all-terrain vehicle according to claim 7, characterized in that along the width direction of the frame, there is a preset gap between the two cylinder heads arranged side by side, and the range of the preset gap is from 8 mm to 10 mm.

9. The all-terrain vehicle according to claim 1, characterized in that The all-terrain vehicle further includes a steering assembly, which is arranged on the vehicle frame and located at the front side of the all-terrain vehicle; the engine further includes an air intake assembly and an air intake port, the air intake port is arranged on the housing of the engine and connected to the air intake assembly, and the air intake port is arranged between the steering assembly and the cylinder head.

10. The all-terrain vehicle according to claim 9, wherein The orthographic projection of the vehicle frame on the reference plane is the vehicle frame projection, the orthographic projection of the air intake port in the reference plane is the air intake port projection, and the air intake port projection is arranged in an area outside the vehicle frame projection.