oil engine

CN224606512UActive Publication Date: 2026-08-07SHENZHEN ANKEXUCHUANG TECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
SHENZHEN ANKEXUCHUANG TECHNOLOGY CO LTD
Filing Date
2025-09-30
Publication Date
2026-08-07

AI Technical Summary

Technical Problem

[0003]在相关的技术领域中,油机具有注油口,在通过注油口向油箱内注油的过程中,当油箱注满时,油液容易自注油口溢出,导致油液容易残留于箱体的周侧面,为用户的清理工作带来清理不便

Benefits of technology

[0006] Based on the above embodiments, when the user injects oil into the tank through the oil inlet and the flow guiding structure is in the oil guiding state, if the oil overflows from the oil inlet, the overflowing oil can enter the oil guiding channel and drip onto the placement surface through the oil outlet, thereby preventing the oil from flowing to the periphery of the tank. This reduces the probability of oil adhering to the periphery, making it easier for the user to clean the periphery of the tank and also reduces the probability of safety hazards, thereby improving the overall safety performance of the oiler and providing reliable protection for the safety of the user when using the oiler.

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Abstract

The embodiment of the application discloses an oil machine, which comprises a box body, a power generation assembly and an oil guide structure. The top surface of the box body is provided with an oil inlet opening in communication with the inside of the box body. The power generation assembly is arranged in the box body and is used for generating power by using oil stored in the box body. The oil guide structure is movably connected to the top surface of the box body and is provided with an oil guide channel and an oil outlet opening in communication with the oil guide channel. The oil guide structure has at least an oil guiding state. When the oil guide structure is in the oil guiding state, the oil outlet opening is in communication with the oil inlet opening through the oil guide channel, and the end of the oil outlet opening away from the oil inlet opening extends outward relative to the box body, so that when a user pours oil into the box body through the oil inlet opening, if the oil overflows from the oil inlet opening, the overflowing oil can enter the oil guide channel and drip to a placement surface through the oil outlet opening, thereby preventing the oil from flowing to the circumferential surface of the box body and reducing the probability of the oil adhering to the circumferential surface, so as to facilitate the user to clean the circumferential surface of the box body.
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Description

Technical Field

[0001] This application relates to the field of power generation equipment technology, and more specifically, to a generator. Background Technology

[0002] With the continuous improvement of technology and living standards, oil generators are gradually entering thousands of households. Oil generators can drive generators to generate electricity by burning oil to power external equipment.

[0003] In the relevant technical field, the oil dispenser has an oil inlet. During the process of filling the oil tank through the oil inlet, when the oil tank is full, the oil is easy to overflow from the oil inlet, which makes it easy for the oil to remain on the periphery of the tank, causing inconvenience to the user's cleaning work. Utility Model Content

[0004] This application provides an oil dispenser, including an oil guiding structure. The oil guiding structure has at least an oil guiding state, which is designed so that when the oil guiding structure is in the oil guiding state, the overflowing oil drips onto the placement surface through the oil guiding structure, thereby preventing the oil from flowing to the peripheral side of the housing, thereby reducing the probability of oil adhering to the peripheral side, so as to facilitate the user to clean the peripheral side of the housing.

[0005] This application provides a generator, including a housing, a power generation component, and an oil guiding structure. The top surface of the housing has an oil inlet communicating with the interior of the housing. The power generation component is disposed inside the housing and is used to generate electricity using oil stored inside the housing. The oil guiding structure is movably connected to the top surface of the housing and has an oil guiding channel and an oil outlet communicating with the oil guiding channel. The oil guiding structure has at least an oil guiding state. When the oil guiding structure is in the oil guiding state, the oil outlet is connected to the oil inlet through the oil guiding channel, and the end of the oil outlet away from the oil inlet extends outward relative to the housing to guide the oil flowing through the oil guiding channel to flow out of the housing.

[0006] Based on the above embodiments, when the user injects oil into the tank through the oil inlet and the flow guiding structure is in the oil guiding state, if the oil overflows from the oil inlet, the overflowing oil can enter the oil guiding channel and drip onto the placement surface through the oil outlet, thereby preventing the oil from flowing to the periphery of the tank. This reduces the probability of oil adhering to the periphery, making it easier for the user to clean the periphery of the tank and also reduces the probability of safety hazards, thereby improving the overall safety performance of the oiler and providing reliable protection for the safety of the user when using the oiler. Attached Figure Description

[0007] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0008] Figure 1 This is a schematic diagram of the oil guiding structure of the oil generator in a retracted state in one embodiment of this application; Figure 2 This is a schematic diagram of the oil guiding structure of the oil generator in an oil guiding state according to one embodiment of this application; Figure 3 This is a top view structural diagram of the oil generator in one embodiment of this application; Figure 4 For along Figure 3 A schematic diagram of a cross-sectional structure of line AA in the middle; Figure 5 For along Figure 3 Another cross-sectional structure diagram of the middle AA line; Figure 6 For along Figure 3 A schematic diagram of another cross-sectional structure of line AA in the middle.

[0009] Explanation of reference numerals in the attached drawings: 1. Oil generator; 11. Housing; 11A. Top surface; 11B. Peripheral side surface; 11C. Oil inlet; 12. Cover; 2. Oil guiding structure; 2A. Oil guiding channel; 2B. Oil outlet; 21. Fixing component; 21A. First channel; 21B. Sliding groove; 211. First protrusion; 211A. Oil collecting ring groove; 212. Second protrusion; 212A. Extended channel; 22. Moving component; 22A. Second channel; 23. Rotating shaft; 24. Limiting assembly; 241. First limiting component; 242. Second limiting component; 25. Handle. Detailed Implementation

[0010] To make the objectives, technical solutions, and advantages of this application clearer, the following detailed description is provided in conjunction with the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative and not intended to limit the scope of this application.

[0011] Please refer to Figure 1 This application provides a generator 1, which includes a housing 11, a power generation component, and an oil tank.

[0012] The housing 11 has a receiving cavity, within which the power generation components and fuel tank are disposed. The housing 11 can be made of metal or plastic. The shape of the housing 11 can be rectangular or cylindrical. In other embodiments, the housing 11 can also be made of a mixture of metal and plastic. The shape of the housing 11 can also be other forms. In the embodiments of this application, there are no specific limitations on the material or shape of the housing 11.

[0013] The power generation unit is used to generate electricity using oil stored in the fuel tank. The unit includes an engine and a generator, which work together to generate electricity using the oil. For example, the oil stored in the fuel tank can be mixed with air and delivered to the engine cylinder, where it burns. The heat generated by the combustion produces high-temperature, high-pressure gas in the cylinder. The expanding gas pushes the piston to do work, and then, through a crankshaft connecting rod mechanism or other transmission structure, it is connected to the generator to convert mechanical energy into electrical energy. This allows the generator to supply power to external devices when the user connects them to the output port of the generator 1.

[0014] The housing 11 has a top surface 11A, a bottom surface, and a peripheral side surface 11B located between the two. As an example, the housing 11 has the following characteristics: Figure 1 The four peripheral surfaces 11B are shown.

[0015] Please refer to Figure 1 To facilitate the injection of oil into the tank, the top surface 11A of the tank body 11 has an oil inlet 11C communicating with the interior of the tank body 11. The oil inlet 11C is connected to the oil tank, and a cover 12 can be connected to the oil inlet 11C. When the user needs to inject oil into the tank, the cover 12 is opened to expose the oil inlet 11C, allowing oil to be added to the tank through the oil inlet 11C. After adding oil, the cover 12 is closed again to seal the oil inlet 11C, reducing the probability of oil leakage from the oil inlet 11C and thus providing reliable protection for transportation and use safety. It is understood that the cover 12 can be connected to the oil inlet 11C by threads or by snap-fit. In other embodiments, the cover 12 can also be connected to the oil inlet 11C in other ways. In the embodiments of this application, there are no specific limitations on the connection method between the cover 12 and the oil inlet 11C.

[0016] However, during the process of filling the oil tank through the oil inlet 11C, when the oil tank is full, the oil is easy to overflow from the oil inlet 11C, which makes it easy for the oil to remain on the peripheral side 11B of the tank body 11, causing inconvenience for the user's cleaning work.

[0017] Based on the above, please refer to Figure 1-3The oil pump 1 also includes an oil guiding structure 2, which is movably connected to the top surface 11A of the housing 11. The oil guiding structure 2 has an oil guiding channel 2A and an oil outlet 2B communicating with the oil guiding channel 2A. The oil guiding structure 2 has at least an oil guiding state. When the oil guiding structure 2 is in the oil guiding state, the oil outlet 2B can communicate with the oil inlet 11C through the oil guiding channel 2A, and the end of the oil outlet 2B away from the oil inlet 11C extends outward relative to the housing 11 to guide the oil flowing through the oil guiding channel 2A to flow out of the housing 11.

[0018] In this embodiment, when the user injects oil into the housing 11 through the oil inlet 11C and the guide structure is in the oil guiding state, since the end of the oil outlet 2B away from the oil inlet 11C extends outward relative to the housing 11, if the oil overflows from the oil inlet 11C, the overflowing oil can enter the oil guiding channel 2A and drip directly onto the placement surface of the oil dispenser 1 through the oil outlet 2B, thus preventing the oil from flowing to the peripheral side 11B of the housing 11. This reduces the probability of oil adhering to the peripheral side 11B, making it easier for the user to clean the peripheral side 11B of the housing 11. Furthermore, reducing the probability of oil adhering to the peripheral side 11B also reduces the probability of safety hazards, thereby improving the overall safety performance of the oil dispenser 1 and providing reliable protection for the user's safety when using the oil dispenser 1.

[0019] It is understandable that, from top to bottom, the oil outlet 2B can be inclined away from the oil inlet 11C, or it can be parallel to the height direction of the housing 11. Along the height direction of the housing 11, the projection of the end of the oil outlet 2B is outside the projection range of the housing 11, so as to reduce the probability of oil adhering to the peripheral side surface 11B of the housing 11 when flowing out of the oil outlet 2B. In other embodiments, the entire projection of the oil outlet 2B is outside the projection range of the housing 11, which can also reduce the probability of oil adhering to the peripheral side surface 11B of the housing 11 when flowing out of the oil outlet 2B.

[0020] It is understandable that the oil guiding structure 2 can always remain in the oil guiding state. At this time, the oil outlet 2B is always connected to the oil inlet 11C through the oil guiding channel 2A, and the end of the oil outlet 2B away from the oil inlet 11C extends outward relative to the tank 11, so that when the user injects oil into the oil tank through the oil inlet 11C, the overflowing oil can always flow out through the oil guiding channel 2A and the oil outlet 2B, thereby reducing the probability of oil adhering to the peripheral side 11B.

[0021] It is understood that the oil guiding structure 2 can include an oil guiding state and a retracted state. When the oil guiding structure 2 is in the oil guiding state, the oil outlet 2B can be connected to the oil inlet 11C through the oil guiding channel 2A, and the end of the oil outlet 2B furthest from the oil inlet 11C extends outward relative to the housing 11. This ensures that when the user injects oil into the oil tank through the oil inlet 11C, any overflowing oil can always flow out through the oil guiding channel 2A and the oil inlet 11C, reducing the probability of oil adhering to the peripheral side 11B. When the oil guiding structure 2 is in the retracted state, the end of the oil outlet 2B furthest from the oil inlet 11C is retracted to prevent the oil outlet 2B from being exposed and damaged by impact. This also reduces the space occupied by the generator 1, improving the portability and service life of the generator 1.

[0022] Please refer to Figure 1-3 In one embodiment, the oil guiding structure 2 includes a fixing member 21 and a movable member 22. The fixing member 21 is disposed on the top surface 11A and has a first channel 21A, which is connected to the oil inlet 11C. The movable member 22 is movably connected to the fixing member 21 and has a second channel 22A. The oil outlet 2B is disposed at the end of the movable member 22 and is connected to the second channel 22A.

[0023] Before oil filling, the movable part 22 is driven to move relative to the fixed part 21 so that the oil guiding structure 2 is in the oil guiding state. At this time, the first channel 21A and the second channel 22A are connected to form the oil guiding channel 2A. When oil is filled, if the oil overflows from the oil filling port 11C, since the first channel 21A of the fixed part 21 is directly connected to the oil filling port 11C, a stable initial collection path is provided for the oil overflowing from the first channel 21A, ensuring that the oil can quickly enter the oil guiding channel 2A, reducing the probability of oil overflowing, and reducing the probability of oil moving to the peripheral side 11B.

[0024] Furthermore, since the second channel 22A is connected to the first channel 21A, the oil can pass through the first channel 21A and the second channel 22A in sequence, and drip onto the placement surface through the oil outlet 2B. This prevents the oil from flowing to the peripheral side 11B of the housing 11, reduces the probability of oil adhering to the peripheral side 11B, makes it easier for users to clean the peripheral side 11B of the housing 11, and provides reliable protection for the safety of users using the oiler 1.

[0025] Please refer to Figure 1-3 Furthermore, the bottom height of the second channel 22A is not higher than the bottom height of the first channel 21A. By utilizing gravity, the oil flows naturally from the first channel 21A into the second channel 22A, reducing the amount of oil remaining in the first channel 21A. This further reduces the probability of oil overflowing from the first channel 21A, further improving the reliability of oil flow and the overall safety performance of the oil generator 1.

[0026] When not filling with oil, the user can drive the movable part 22 to move so that the oil guiding structure 2 can switch from the oil guiding state to the storage state, avoiding damage to the oil outlet 2B and the movable part 22 due to exposure, while reducing the space occupied by the oil generator 1 and improving the portability and service life of the oil generator 1.

[0027] It is understood that the movable component 22 and the fixed component 21 can be connected in at least one of sliding connection and rotational connection. In other embodiments, the movable component 22 and the fixed component 21 can be connected in other forms. In this application embodiment, no specific limitation is made on the movable connection method between the movable component 22 and the fixed component 21.

[0028] Please refer to Figure 2 and Figure 4 In one specific embodiment, the fixing member 21 has a groove 21B, and the movable member 22 is at least partially disposed within the groove 21B and slides in cooperation with the groove 21B. Before oil filling, the user can drive the movable member 22 to move along the groove 21B away from the oil filling port 11C, so that the oil guiding structure 2 switches from the storage state to the oil guiding state; when not filling oil, the user can drive the movable member 22 to move along the groove 21B towards the oil filling port 11C, so that the oil guiding structure 2 switches from the oil guiding state to the storage state.

[0029] The movable component 22 achieves the switching between the oil guiding structure 2 and the storage state through sliding engagement with the slide groove 21B. The user only needs to push the movable component 22 linearly along the slide groove 21B to complete the switching between the oil guiding and storage states. The operation is simple and intuitive, reducing the complexity of multi-directional operations and lowering the probability of user error. Simultaneously, since the movable component 22 is at least partially located within the slide groove 21B, the slide groove 21B provides support for the movable component 22, making the state switching process smoother, reducing the risk of oil leakage, and improving the operational reliability of the oil guiding structure 2.

[0030] Furthermore, when the movable part 22 moves into the slide groove 21B for storage, the slide groove 21B can completely or partially accommodate the exposed part of the movable part 22, making the overall volume of the oil guiding structure 2 smaller in the stored state. This reduces the space occupied by the oil guiding structure 2 in the external space of the oil generator 1, thereby reducing the overall volume of the oil generator 1 and preventing the movable part 22 from colliding with other objects due to its protrusion, thus reducing the probability of damage to the movable part 22. Further, since the slide groove 21B can completely or partially accommodate the exposed part of the movable part 22 when the oil guiding structure 2 is in the stored state, the sealing property of the slide groove 21B can protect the second channel 22A of the movable part 22, reducing the probability of dust and impurities entering the second channel 22A, thereby reducing the risk of blockage in the second channel 22A and providing a reliable guarantee for the long-term stability of the oil guiding function of the oil guiding channel 2A.

[0031] Please refer to Figure 2 , Figure 3 , Figure 5 and Figure 6 In another specific embodiment, the oil guiding structure 2 includes a rotating shaft 23, which is rotatably connected to at least one of the movable member 22 and the fixed member 21, so that the movable member 22 can rotate relative to the fixed member 21 via the rotating shaft 23. Before oil filling, the user can drive the movable member 22 to rotate around the rotating shaft 23 in a direction away from the oil filling port 11C until the movable member 22 and the fixed member 21 are arranged side by side along the extension direction of the first channel 21A, so that the oil guiding structure 2 switches from the storage state to the oil guiding state. When not filling oil, the user can drive the movable member 22 to rotate around the rotating shaft 23 in a direction closer to the oil filling port 11C until the movable member 22 is stacked on the upper surface of the fixed member 21, so that the oil guiding structure 2 switches from the oil guiding state to the storage state.

[0032] When the movable part 22 rotates towards the oil inlet 11C, switching the oil guiding structure 2 from the oil guiding state to the storage state, the movable part 22 can be snapped back onto the upper surface of the fixed part 21, forming a compact structure that significantly reduces the overall size of the oil pump 1. Furthermore, since the movable part 22 can be snapped back onto the upper surface of the fixed part 21, the risk of deformation caused by external impacts (such as friction during handling or compression during stacking) is reduced, while also reducing the probability of external dust and water directly entering the oil guiding channel 2A, thus extending the service life of the oil guiding structure 2.

[0033] Please refer to Figure 2-4 In one embodiment, the oil guiding structure 2 further includes a limiting component 24, which is disposed on the fixed member 21 and the movable member 22 to limit the movement of the movable member 22 relative to the fixed member 21.

[0034] Please refer to Figure 2-4In one specific embodiment, when the movable part 22 and the fixed part 21 slide together through the groove 21B, the limiting component 24 can limit the position of the movable part 22 in the oil guiding state to prevent the movable part 22 from continuing to move away from the oil inlet 11C along the groove 21B, thereby reducing the probability of the movable part 22 disengaging from the groove 21B; it can also prevent the movable part 22 from moving towards the oil inlet 11C due to external forces (such as shaking of the housing 11 or slight collision), so as to ensure that the end of the oil outlet 2B away from the oil inlet 11C extends outward relative to the housing 11 along the height direction of the housing 11, thereby ensuring that the oil overflowing from the oil inlet 11C can drip onto the placement surface through the oil guiding channel 2A and the oil outlet 2B, thereby reducing the probability of oil adhering to the peripheral side 11B.

[0035] In other embodiments, the limiting component 24 can also limit the position of the movable part 22 when the oil guiding structure 2 is in the retracted state, so as to prevent the movable part 22 from moving away from the oil inlet 11C along the slide 21B, reduce the wear caused by shaking of the movable part 22 during transportation and handling, reduce the risk of loosening of the movable part 22, and extend the overall service life of the oil guiding structure 2.

[0036] In one specific embodiment, when the movable part 22 and the fixed part 21 are rotatably engaged by the rotating shaft 23, the limiting component 24 can limit the position of the movable part 22 in the oil guiding state, so as to prevent the movable part 22 from rotating around the rotating shaft 23 in the direction closer to the oil inlet 11C due to external force, thereby reducing the probability of gaps appearing between the first channel 21A and the second channel 22A, ensuring that the oil overflowing from the oil inlet 11C can enter the second channel 22A through the first channel 21A, and thus ensuring that the oil overflowing from the oil inlet 11C can drip onto the placement surface through the oil guiding channel 2A and the oil outlet 2B, thereby reducing the probability of oil adhering to the peripheral side 11B.

[0037] The limiting component 24 can also limit the position of the movable part 22 in the storage state to prevent the movable part 22 from rotating around the shaft 23 in a direction away from the oil inlet 11C, reduce the wear of the movable part 22 caused by shaking during transportation and handling, reduce the risk of loosening of the movable part 22, and enable the oil guiding structure 2 to have a longer service life.

[0038] Please refer to Figure 2-4 In one embodiment, the limiting component 24 includes a first limiting member 241 and a second limiting member 242. The first limiting member 241 is disposed on the fixed member 21; the second limiting member 242 is disposed on the movable member 22 and can cooperate with the first limiting member 241 to limit the movement of the movable member 22 relative to the fixed member 21.

[0039] Please refer to Figure 2-4Specifically, when the movable part 22 and the fixed part 21 slide together through the groove 21B, the first limiting part 241 is set in the groove 21B and is located on the side of the groove wall of the groove 21B away from the oil inlet 11C. The second limiting part 242 is set on the side of the movable part 22 close to the oil inlet 11C. When the oil guiding structure 2 is in the oil guiding state, the first limiting part 241 and the second limiting part 242 limit each other, which can restrict the movable part 22 from continuing to move away from the oil inlet 11C along the groove 21B, and can also restrict the movable part 22 from moving towards the oil inlet 11C along the groove 21B, thereby stabilizing the oil guiding structure 2 in the oil guiding state.

[0040] Of course, the limiting component 24 may also include a third limiting member. The third limiting member is disposed on the side of the groove wall of the slide 21B near the oil inlet 11C. When the oil guiding structure 2 is in the retracted state, the cooperation between the third limiting member and the second limiting member 242 restricts the movement of the movable part 22 along the slide 21B away from the oil inlet 11C, thereby stabilizing the oil guiding structure 2 in the retracted state. This reduces the wear caused by shaking of the movable part 22 during transportation and handling, reduces the risk of loosening of the movable part 22, and enables the oil guiding structure 2 to have a longer service life.

[0041] Specifically, when the movable part 22 and the fixed part 21 are rotated and engaged by the rotating shaft 23, the limiting assembly 24 may also include a third connecting part and a fourth connecting part. The first limiting part 241 is located on the side of the fixed part 21 away from the oil inlet 11C, and the second limiting part 242 is located on the side of the movable part 22 close to the oil inlet 11C. The third connecting part is located on the side of the fixed part 21 close to the oil inlet 11C, and the fourth limiting part is located on the side of the movable part 22 away from the oil inlet 11C.

[0042] When the oil guiding structure 2 is in the oil guiding state, the first limiting member 241 and the second limiting member 242 cooperate to limit the movement of the movable member 22 around the rotating shaft 23 in the direction closer to the oil inlet 11C, so that the oil guiding structure 2 is stable in the oil guiding state; when the oil guiding structure 2 is in the storage state, the third limiting member and the fourth limiting member cooperate to limit the movement of the movable member 22 around the rotating shaft 23 in the direction away from the oil inlet 11C, so that the oil guiding structure 2 is stable in the storage state.

[0043] Please refer to Figure 2-4In one embodiment, when the movable member 22 and the fixed member 21 are slidably engaged through the groove 21B, one of the first limiting member 241 and the second limiting member 242 is an elastic protrusion, and the other of the first limiting member 241 and the second limiting member 242 is a groove. The elastic protrusion can engage with the groove wall. When the oil guiding structure 2 is in the oil guiding state, the elastic protrusion engages with the groove wall to restrict the movement of the movable member 22 relative to the fixed member 21 away from the oil inlet 11C. Of course, it can also restrict the movement of the movable member 22 relative to the fixed member 21 towards the oil inlet 11C, so that the oil guiding structure 2 can be stabilized in the oil guiding state. The third limiting member is the same as the first limiting member 241, and the third limiting member engages with the second limiting member 242 to stabilize the oil guiding structure 2 in the retracted state.

[0044] It is understandable that the first limiting member 241 and the second limiting member 242 can also be two magnetic attractors. When the oil guiding structure 2 is in the oil guiding state, the two magnetic attractors are magnetically connected to restrict the movement of the movable member 22 relative to the fixed member 21 in the direction away from the oil inlet 11C. Of course, it can also restrict the movement of the movable member 22 relative to the fixed member 21 in the direction closer to the oil inlet 11C, so that the oil guiding structure 2 can be stabilized in the oil guiding state. The third limiting member is the same as the first limiting member 241, and the third limiting member is magnetically connected to the second limiting member 242 to stabilize the oil guiding structure 2 in the storage state.

[0045] Please refer to Figure 4 In this embodiment, when the movable part 22 and the fixed part 21 are slidably engaged through the slide groove 21B, the first limiting part 241 can be a first limiting protrusion, and the second limiting part 242 can be a second limiting protrusion. When the oil guiding structure 2 is in the oil guiding state, the surface of the first limiting protrusion facing the oil inlet 11C can abut against the surface of the second limiting protrusion away from the oil inlet 11C, thereby restricting the movement of the movable part 22 relative to the fixed part 21 away from the oil inlet 11C, so as to reduce the probability of the movable part 22 disengaging from the slide groove 21B.

[0046] When the movable part 22 and the fixed part 21 are rotated and engaged by the rotating shaft 23, the first limiting part 241, the second limiting part 242, the third limiting part and the fourth limiting part can be reasonably configured in the above form, which will not be elaborated on here.

[0047] In other embodiments, the limiting component 24 may have other forms of mating connection. In this application embodiment, the specific form of the limiting component 24 is not limited.

[0048] Please refer to Figure 2 and Figure 3In one embodiment, the fixing member 21 includes a first protrusion 211 and a second protrusion 212. The first protrusion 211 protrudes from the top surface 11A and is arranged around the oil inlet 11C to form an oil collecting ring groove 211A. The periphery of the first protrusion 211 has an opening communicating with the oil collecting ring groove 211A. The second protrusion 212 protrudes from the top surface 11A and is connected to the first protrusion 211. The second protrusion 212 has an extension channel 212A, which communicates with the oil collecting ring groove 211A through the opening to form a first channel 21A. The bottom surface height of the extension channel 212A is not higher than the bottom surface height of the oil collecting ring groove 211A. The movable member 22 is movably connected to the second protrusion 212.

[0049] The first protrusion 211 is arranged around the oil inlet 11C to form an oil collecting ring groove 211A, which can surround the oil inlet 11C 360°. No matter which direction the oil overflows from the oil inlet 11C (such as side overflow caused by the user tilting the oil or the oil surface shaking), it can be collected by the oil collecting ring groove 211A, preventing the overflowing oil from flowing directly to the top surface 11A of the housing 11 and spreading to the peripheral side 11B. This reduces the probability of oil adhering to the peripheral side 11B, making it easier for the user to clean the peripheral side 11B of the housing 11. Furthermore, by reducing the probability of oil adhering to the peripheral side 11B, the probability of safety hazards is also reduced, thereby improving the overall safety performance of the oil generator 1 and providing reliable protection for the safety of the user when using the oil generator 1.

[0050] Furthermore, the opening of the first protrusion 211 connects the oil collecting ring groove 211A with the extended channel 212A of the second protrusion 212, forming a continuous first channel 21A; and the bottom height of the extended channel 212A is not higher than the bottom height of the oil collecting ring groove 211A. The flow path is constructed by utilizing the gravity difference, so that the oil in the oil collecting ring groove 211A can flow naturally to the extended channel 212A, reducing oil retention and thus reducing the probability of oil overflowing from the top of the oil collecting ring groove 211A.

[0051] It is understood that the oil collecting ring groove 211A can be at least one of a rectangular ring groove, a circular ring groove, and a triangular ring groove. In this embodiment, the oil collecting ring groove 211A can be a circular ring groove, which can eliminate dead corner areas within the oil collecting ring groove 211A, making it easier for users to clean the oil collecting ring groove 211A. It can also reduce the residue of oil within the oil collecting ring groove 211A, thereby reducing the probability of residual oil splashing outside the oil collecting ring groove 211A and improving the overall safety performance of the oil generator 1.

[0052] Please refer to Figure 1-3In one embodiment, the oil generator 1 further includes a seal that can be connected to the end of the second protrusion 212 away from the first protrusion 211 and abut against the channel wall of the extended channel 212A. This prevents oil from overflowing from the extended channel 212A when the oil guiding structure 2 is in the retracted state, and avoids the oil in the extended channel 212A from leaking to the peripheral side 11B due to shaking or tilting of the oil generator 1 (such as during transportation). This further reduces the probability of oil adhering to the peripheral side 11B, making it easier for the user to clean the peripheral side 11B of the housing 11. Furthermore, by reducing the probability of oil adhering to the peripheral side 11B, the probability of safety hazards can also be reduced, thereby improving the overall safety performance of the oil generator 1.

[0053] Furthermore, the seal can also prevent external dust and moisture from entering the oil collecting ring groove 211A through the extended channel 212A, avoiding the accumulation of impurities that affect the smoothness of the oil guiding channel 2A, and improving the adaptability of the oil guiding structure 2 to complex environments.

[0054] For example, the seal can be a flexible seal or a rigid seal. Specifically, the flexible seal can be made of silicone or rubber. After the flexible seal undergoes elastic deformation, it can fit tightly against the channel wall of the extended channel 212A, ensuring that the sealing effect is maintained under operating conditions such as vibration of the oil engine 1 and temperature difference changes, thereby reducing the probability of seal failure between the seal and the channel wall of the extended channel 212A.

[0055] Please refer to Figure 1-3 In one embodiment, when the oil guiding structure 2 is in the oil guiding state, the angle between the oil guiding channel 2A and the horizontal plane where the top surface 11A is located is greater than or equal to 0 and less than or equal to 5°. This allows the oil guiding channel 2A to guide the overflowing oil, enabling the oil to flow along the oil guiding channel 2A under the action of gravity and inertia, reducing the amount of oil residue in the oil guiding channel 2A, and ensuring that the overflowing oil can drip from the oil outlet 2B onto the placement surface. Furthermore, since the angle between the oil guiding channel 2A and the top surface 11A is gentle, the oil flow rate is slow during the process of the oil moving along the oil guiding channel 2A, reducing the probability of oil splashing due to excessive flow rate, and also reducing turbulence in the oil guiding channel 2A. This allows the overflowing oil to flow in a predetermined direction, reducing the risk of local oil accumulation or leakage due to flow turbulence, and improving the overall safety performance of the oil generator 1.

[0056] If the angle between the oil guide channel 2A and the horizontal plane where the top surface 11A is located is greater than 5°, resulting in a large angle between the oil guide channel 2A and the horizontal plane where the top surface 11A is located, the oil flow rate will be faster when the oil moves along the oil guide channel 2A, resulting in a higher probability of oil splashing. It is also easy to form turbulence in the oil guide channel 2A, which will lead to flow disturbance and a greater risk of local oil accumulation or leakage, resulting in poor overall safety performance of the oil generator 1.

[0057] Please refer to Figure 1-3 In one embodiment, a UV curable coating layer is provided on the peripheral side 11B. Since the UV curable coating layer has the characteristics of dense surface and low surface energy after curing, it can form a physical barrier on the peripheral side 11B. Even if a small amount of oil comes into contact with the peripheral side 11B, the low adsorption of the UV curable coating layer can reduce the adhesion of the oil, making it easier for the oil to slide off due to gravity or be wiped away, further reducing the probability of oil adhering to the peripheral side 11B.

[0058] It is understandable that a light-curing coating layer can also be applied to the top surface 11A and the bottom surface of the housing 11 to reduce the probability of oil adhering to the outer surface of the housing 11. This makes it easier for users to clean the outer surface of the housing 11 and can also eliminate the safety hazards caused by oil adhering to the outer surface of the housing 11 to a greater extent, providing a reliable guarantee for the safety of users using the oiler 1.

[0059] Please refer to Figure 1-3 It is understandable that, in order to facilitate users in switching the state of the oil guiding structure 2, a handle 25 can be provided on the movable part 22. Users can switch the state of the oil guiding structure 2 by using the handle 25, which is convenient and quick. It can also prevent users' hands from directly contacting the oil guiding structure 2, reducing the probability of users' hands coming into contact with the oil. Therefore, users do not need to clean their hands after moving the movable part 22, which improves the ease of use of the oiler 1.

[0060] In the description of this application, it should be understood that if terms such as "upper," "lower," "left," and "right" indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, they are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, the terms used to describe positional relationships in the accompanying drawings are only for illustrative purposes and should not be construed as limiting this application. For those skilled in the art, the specific meaning of the above terms can be understood according to the specific circumstances.

[0061] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as implying or suggesting relative importance or implicitly indicating the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this application, "multiple" means at least two, such as two, three, etc., unless otherwise explicitly specified.

[0062] In the description of this application, unless otherwise expressly specified and limited, the terms "installation," "connection," "linking," "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components, unless otherwise expressly limited. Those skilled in the art can understand the specific meaning of the above terms in this application according to the specific circumstances.

[0063] It should be noted that when an element is referred to as being "fixed to" or "set on" another element, it can be directly on the other element or there may be an intervening element. When an element is considered to be "connected to" another element, it can be directly connected to the other element or there may be an intervening element. The terms "vertical," "horizontal," "upper," "lower," "left," "right," and similar expressions used herein are for illustrative purposes only and do not represent the only possible implementation.

[0064] The above description is merely a specific embodiment of this application, but the scope of protection of this application is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the scope of the technology disclosed in this application should be included within the scope of protection of this application. Therefore, the scope of protection of this application should be determined by the scope of the claims.

Claims

1. An oiling machine, characterized in that, include: The housing has an oil inlet on its top surface that communicates with the interior of the housing; A power generation component, located inside the container, is used to generate electricity using the oil stored inside the container; as well as An oil guiding structure is movably connected to the top surface of the housing, and the oil guiding structure has an oil guiding channel and an oil outlet communicating with the oil guiding channel; The oil guiding structure has at least an oil guiding state; when the oil guiding structure is in the oil guiding state, the oil outlet is connected to the oil inlet through the oil guiding channel, and the end of the oil outlet away from the oil inlet extends outward relative to the housing, so as to guide the oil flowing through the oil guiding channel to flow out to the outside of the housing.

2. The oil generator as described in claim 1, characterized in that, The oil guiding structure includes: A fixing member, disposed on the top surface, and having a first channel communicating with the oil inlet; and A movable component is movably connected to the fixed component. The movable component has a second channel, and the oil outlet is located at the end of the movable component and communicates with the second channel. When the oil guiding structure is in the oil guiding state, the first channel and the second channel are connected to form the oil guiding channel, and the bottom height of the second channel is not higher than the bottom height of the first channel.

3. The oil generator as described in claim 2, characterized in that, The oil guiding structure also has a retractable state; the oil guiding structure further includes: A pivot is rotatably connected to at least one of the movable member and the fixed member, such that the movable member can rotate relative to the fixed member via the pivot. The movable component can rotate around the pivot in a direction closer to the oil inlet until it is stacked on the upper surface of the fixed component, so that the oil guiding structure switches from the oil guiding state to the storage state; the movable component can rotate around the pivot in a direction away from the oil inlet until it and the fixed component are arranged side by side along the extension direction of the first channel, so that the oil guiding structure switches from the storage state to the oil guiding state.

4. The oil generator as described in claim 2, characterized in that, The oil guiding structure also has a retractable state; the fixing member has a groove, and the movable member is at least partially disposed in the groove and slides in cooperation with the groove; The movable component can move along the slide groove toward the oil inlet to switch the oil guiding structure from the oil guiding state to the storage state; the movable component can also move along the slide groove away from the oil inlet to switch the oil guiding structure from the storage state to the oil guiding state.

5. The oil generator as described in claim 4, characterized in that, The oil guiding structure also includes: A first limiting protrusion is disposed on the side of the groove wall away from the oil inlet; and The second limiting protrusion is located on the side of the movable part near the oil inlet; When the oil guiding structure is in the oil guiding state, the surface of the first limiting protrusion facing the oil inlet can abut against the surface of the second limiting protrusion away from the oil inlet, thereby restricting the movement of the movable member relative to the fixed member in a direction away from the oil inlet.

6. The oil generator as described in claim 4, characterized in that, The groove wall of the slide is provided with a groove on one of the sides away from the oil inlet and on the side of the movable member near the oil inlet; the oil guiding structure further includes: An elastic protrusion is provided on one of the sides of the groove wall away from the oil inlet and the other side of the movable member near the oil inlet; When the oil guiding structure is in the oil guiding state, the elastic protrusion engages with the groove wall of the groove to restrict the movement of the movable part relative to the fixed part in the direction away from and / or towards the oil inlet.

7. The oil generator as described in claim 4, characterized in that, The oil guiding structure also includes two magnetic suction components. One magnetic suction component is disposed on the side of the groove wall away from the oil inlet; the other magnetic suction component is disposed on the side of the movable component close to the oil inlet. When the oil guiding structure is in the oil guiding state, the two magnetic suction members are magnetically connected to restrict the movement of the movable member relative to the fixed member in the direction away from and / or towards the oil inlet.

8. The oil generator as described in claim 2, characterized in that, The fastener includes: A first protrusion protrudes from the top surface and surrounds the oil inlet to form an oil collecting annular groove. The periphery of the first protrusion has an opening communicating with the oil collecting annular groove. The second protrusion protrudes from the top surface and is connected to the first protrusion. The second protrusion has an extended channel, which communicates with the oil collecting ring groove through the opening to form the first channel. The bottom surface height of the extended channel is not higher than the bottom surface height of the oil collecting ring groove. The movable component is movably connected to the second protrusion.

9. The oil generator as described in claim 8, characterized in that, The oil guiding structure also has a retractable state; the oil guiding structure further includes: A seal is connected to the end of the second protrusion away from the first protrusion and abuts against the channel wall of the extended channel to prevent oil from overflowing from the extended channel when the oil guiding structure is in the retracted state.

10. The oil machine as described in any one of claims 1 to 9, characterized in that, When the oil guiding structure is in the oil guiding state, the angle between the oil guiding channel and the horizontal plane containing the top surface is greater than or equal to 0 and less than or equal to 5°; and / or, The enclosure also has a bottom surface and a peripheral surface, the bottom surface being disposed opposite to the top surface, the peripheral surface being disposed between the top surface and the bottom surface, and at least the peripheral surface being provided with a light-curing coating layer.