Double-sided oil coating conveying device and processing equipment

CN224641490UActive Publication Date: 2026-08-18ZHUHAI HONGLITAI TECH CO LTD
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Patent Information

Application Number
CN202521997404.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-17
Publication Date
2026-08-18
Estimated Expiration
2035-09-17

AI Technical Summary

Technical Problem

[0002]钣金件冲压后常需要在表面上防锈油以达到防锈处理,现有生产技术中,通常直接使用油嘴喷油,导致工件只有单面能够覆盖上防锈油,而且使用油嘴喷油不易控制,容易污染周侧环境,导致卫生问题与操作员安全问题

Benefits of technology

[0015] The present invention has at least the following beneficial effects: by setting up an upper oiling structure and a lower oiling structure aligned vertically, it can work in conjunction with the oil dripping module to achieve uniform double-sided coating of anti-rust oil on sheet metal parts conveyed from the feeding component. The adjusting component can drive the upper oiling structure to move up and down to adapt to workpieces of different thicknesses and precisely control the oiling gap and pressure, ensuring that the anti-rust oil is coated evenly and fully. In addition, a groove is provided to recover the oil, avoiding oil splashing and significantly reducing pollution to the surrounding environment, while improving operational safety and on-site hygiene conditions.

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Abstract

This utility model discloses a double-sided oiling conveying device and processing equipment, relating to the field of surface treatment technology for metal stamping parts. The double-sided oiling conveying device includes a base frame, a feeding module, an upper oiling mechanism, and an oil dripping module. A first groove is provided at the bottom of the base frame. The feeding module includes a driving component and a feeding assembly, which passes through the base frame. The output end of the driving component is connected to a transmission component, and the feeding assembly is connected to the first transmission end of the transmission component. A lower oiling structure passes through the base frame and is located at the end of the feeding assembly. At least a portion of the first groove is located below the corresponding part of the lower oiling structure. The lower oiling structure is connected to the second transmission end of the transmission component. The upper oiling mechanism includes an adjusting component, and the movable end of the adjusting component is provided with the upper oiling structure. The upper and lower oiling structures are vertically aligned. The oil outlet of the oil dripping module is located above the corresponding part of the upper oiling structure. This double-sided oiling conveying device and processing equipment can achieve double-sided oiling of workpieces.
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Description

Technical Field

[0001] This utility model relates to the field of surface treatment technology for metal stamping parts, and in particular to a double-sided oiling conveying device and processing equipment. Background Technology

[0002] After sheet metal parts are stamped, they often need to be coated with anti-rust oil to achieve rust prevention. In the current production technology, oil is usually sprayed directly using an oil nozzle, which results in only one side of the workpiece being covered with anti-rust oil. Moreover, it is not easy to control the use of an oil nozzle, and it is easy to pollute the surrounding environment, leading to hygiene problems and operator safety issues. Utility Model Content

[0003] The present invention aims to solve at least one of the technical problems existing in the prior art. To this end, the present invention proposes a double-sided oiling conveying device, which can realize double-sided oiling of workpieces.

[0004] This utility model also proposes a processing equipment having the above-mentioned double-sided oiling conveying device.

[0005] The double-sided oiling conveying device according to a first aspect of the present invention includes: A base frame, wherein a first groove is provided at the bottom of the base frame; The material conveying module includes a driving component and a feeding assembly. The feeding assembly is mounted on the base frame. The output end of the driving component is connected to a transmission assembly. The feeding assembly is connected to the first transmission end of the transmission assembly. A lower oiling structure is provided, which passes through the base frame and is located at the end of the feeding assembly. At least a portion of the first groove is located below the corresponding part of the lower oiling structure. The lower oiling structure is connected to the second transmission end of the transmission assembly. An upper oiling mechanism, the upper oiling mechanism including an adjustment component, the movable end of the adjustment component is provided with an upper oiling structure, the upper oiling structure is vertically aligned with the lower oiling structure; The oil-drip module has its oil outlet located above the corresponding part of the upper oiling structure.

[0006] According to some embodiments of the present invention, the lower oiling structure includes a connecting shaft, which passes through the base frame and is located at the end of the feeding assembly. The connecting shaft has a through groove in the left-right direction, and a plurality of oil outlet holes are formed on the surface of the connecting shaft. The plurality of oil outlet holes communicate with the through groove. An oiling component is provided on the surface of the connecting shaft, and the oiling component covers the plurality of oil outlet holes.

[0007] According to some embodiments of the present invention, the adjusting assembly includes a first connecting member disposed on the base frame, an adjusting bolt movably passing through the first connecting member, a second connecting member fixedly connected to the adjusting bolt, a guide member connected to the second connecting member, a guide sleeve passing through the guide member, the guide sleeve movably disposed within the first connecting member, a third connecting member disposed at the bottom of the guide member, the upper oiling structure being rotatably connected to the third connecting member via a first rotating member, and an elastic body connecting the upper end face of the third connecting member and the lower end face of the guide sleeve.

[0008] According to some embodiments of the present invention, the oil dripping module includes a multi-port adapter and an oil dripping component. The oil dripping component passes through the base frame and is located above the corresponding oil coating structure. The oil dripping component includes at least one component, and the oil dripping component can be connected to a container holding oil through the multi-port adapter.

[0009] According to some embodiments of the present invention, the feeding assembly includes a drive shaft, a conveyor belt and at least one driven shaft. The drive shaft passes through the base frame and is connected to the transmission assembly. The drive shaft is connected to the driven shaft through the conveyor belt. The driven shaft passes through the base frame. The drive shaft and the driven shaft are adapted to rotate relative to the base frame.

[0010] According to some embodiments of the present invention, the feeding assembly further includes a support frame, one driven shaft is provided, the support frame is mounted on the base frame, the support frame is located between the driven shaft and the drive shaft, and the upper end surface of the support frame is close to the upper bottom surface of the conveyor belt.

[0011] According to some embodiments of the present invention, the transmission assembly includes a first gear, a second gear, a third gear, and a fourth gear that mesh sequentially. The output end of the drive member is connected to the first gear, the feeding assembly is connected to the second gear, the third gear is connected to the base frame through a fourth connector, the third gear is adapted to rotate on the fourth connector, and the lower oiling structure is rolled and fixedly connected to the fourth gear.

[0012] According to some embodiments of the present invention, the feeding module further includes an infeed plate and an outlet plate, the infeed plate and the outlet plate are disposed on the base frame, the infeed plate is located at the input port of the feeding assembly, the infeed plate is set at an obtuse angle to the upper end face of the feeding assembly, the outlet plate is located below the lower oiling structure, the outlet plate is located at the output port of the lower oiling structure, and the outlet plate is set at an obtuse angle to the upper end face of the feeding assembly.

[0013] According to some embodiments of this utility model, the base frame includes a base and a cover plate. The first groove is formed on the base. A first side plate is provided on the left side of the base, and a second side plate is provided on the right side of the base. The transmission assembly is provided on the first side plate. The feeding assembly and the lower oiling structure are provided on the first side plate and the second side plate. The lower oiling structure is located above the base. The cover plate spans across the first side plate and the second side plate. The adjustment assembly is provided on the cover plate. The transmission end of the adjustment assembly passes through the cover plate. The upper oiling structure is located below the cover plate. The oil dripping module passes through the cover plate.

[0014] The processing equipment according to a second aspect of the present invention includes a double-sided oiling conveying device according to the first aspect of the present invention described above.

[0015] The present invention has at least the following beneficial effects: by setting up an upper oiling structure and a lower oiling structure aligned vertically, it can work in conjunction with the oil dripping module to achieve uniform double-sided coating of anti-rust oil on sheet metal parts conveyed from the feeding component. The adjusting component can drive the upper oiling structure to move up and down to adapt to workpieces of different thicknesses and precisely control the oiling gap and pressure, ensuring that the anti-rust oil is coated evenly and fully. In addition, a groove is provided to recover the oil, avoiding oil splashing and significantly reducing pollution to the surrounding environment, while improving operational safety and on-site hygiene conditions.

[0016] Additional aspects and advantages of this invention will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention. Attached Figure Description

[0017] The above and / or additional aspects and advantages of this utility model will become apparent and readily understood from the description of the embodiments taken in conjunction with the following drawings, in which: Figure 1 This is a schematic diagram of the assembly structure of the double-sided oiling conveying device according to an embodiment of the present invention; Figure 2 This is a top view of the double-sided oiling conveying device of this utility model, with the cover plate hidden, the upper oiling mechanism and the oil dripping module removed. Figure 3 This is a schematic diagram of the assembly structure of the material conveying module and the lower oiling structure of the double-sided oiling conveying device according to an embodiment of this utility model; Figure 4 This is an exploded view of the lower oiling structure of the double-sided oiling conveying device according to an embodiment of the present invention. Figure 5 This is a schematic diagram of the assembly structure of part of the upper oiling mechanism of the double-sided oiling conveying device according to an embodiment of the present utility model; Figure 6This is a schematic diagram of the assembly structure of the cover plate, part of the upper oiling mechanism and the oil dripping module of the double-sided oiling conveying device according to an embodiment of the present utility model. Figure 7 This is a partial exploded view of the feeding assembly of the double-sided oiling conveying device according to an embodiment of the present invention; Figure 8 This is a schematic diagram of the assembly structure of the transmission component of the double-sided oiling conveying device according to an embodiment of this utility model; Figure 9 This is a schematic diagram of the base frame structure of the double-sided oiling conveying device according to an embodiment of the present invention.

[0018] Figure label: Base frame 100, base 110, first groove 111, oil drain hole 1111, cover plate 120, first side plate 130, second rotating component 131, third rotating component 132, second side plate 140, support structure 150. Material conveying module 200, drive component 210, feeding assembly 220, drive shaft 221, conveyor belt 222, driven shaft 223, housing 2231, fixed shaft 2232, fourth rotating component 2233, support frame 224, transmission assembly 230, first gear 231, second gear 232, third gear 233, fourth gear 234, fourth connecting component 235, feed plate 240, discharge plate 250. Lower oiling structure 300, connecting shaft 310, through groove 311, oil outlet 312, oiling component 320, L-shaped connecting pipe 330. Oiling mechanism 400, adjusting assembly 410, first connecting member 411, adjusting bolt 412, second connecting member 413, guide member 414, guide sleeve 415, third connecting member 416, first rotating member 417, elastic body 418, oiling structure 420. Oil dripping module 500, multi-port adapter 510, oil dripping component 520. Detailed Implementation

[0019] The embodiments of this utility model are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain this utility model, and should not be construed as limiting this utility model.

[0020] In the description of this utility model, it should be understood that the terms "upper," "lower," "left," "right," "vertical," "horizontal," "bottom," and "inner," etc., indicating the orientation or positional relationship, are based on the orientation or positional relationship shown in the accompanying drawings and are only for the convenience of describing this utility model 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, and therefore should not be construed as a limitation of this utility model. Furthermore, features defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this utility model, unless otherwise stated, "several" means two or more.

[0021] In the description of this utility model, unless otherwise explicitly defined, the terms "setting", "installation", "connection", etc. should be interpreted broadly, and those skilled in the art can reasonably determine the specific meaning of the above terms in this utility model in combination with the specific content of the technical solution.

[0022] The following is as follows Figures 1 to 9 This invention describes a double-sided oiling conveying device according to an embodiment of the present invention.

[0023] like Figure 1 , Figure 2 and Figure 3 As shown, a double-sided oiling conveying device according to an embodiment of the present invention includes a base frame 100, a material conveying module 200, an upper oiling mechanism 400, and an oil dripping module 500. The base frame 100 has a first groove 111 at its bottom. The material conveying module 200 includes a driving member 210 and a feeding assembly 220. The feeding assembly 220 passes through the base frame 100. The output end of the driving member 210 is connected to a transmission assembly 230. The feeding assembly 220 is connected to the first transmission end of the transmission assembly 230. The lower oiling structure... The oiling module 300 is mounted on the base frame 100 and located at the end of the feeding assembly 220. At least a portion of the first groove 111 is located below the corresponding part of the lower oiling structure 300. The lower oiling structure 300 is connected to the second transmission end of the transmission assembly 230. The upper oiling mechanism 400 includes an adjustment assembly 410. The movable end of the adjustment assembly 410 is provided with the upper oiling structure 420. The upper oiling structure 420 is vertically aligned with the lower oiling structure 300. The oil outlet of the dripping module 500 is located above the corresponding part of the upper oiling structure 420.

[0024] When the device is running, the drive component 210 drives the lower oiling structure 300 to start rotating through the transmission component 230, and causes the feeding component 220 to move in the direction of the lower oiling structure 300. The upper oiling structure 420 receives the oil dripping from the oil outlet of the dripping module 500. After the upper oiling structure 420 is fully wetted, the oil drips from the upper oiling structure 420 onto the lower oiling structure 300 located below the upper oiling structure 420. After the lower oiling structure 300 is fully wetted, the excess oil droplets drip from the lower oiling structure 300 into the first groove 111 for recycling, preventing oil leakage and allowing for recycling.

[0025] After both the upper oiling structure 420 and the lower oiling structure 300 are fully soaked in oil, the workpiece to be processed is placed on the feeding assembly 220 of the conveying module 200. The workpiece moves through the feeding assembly 220 between the lower oiling structure 300 and the upper oiling structure 420. As the workpiece passes between the lower oiling structure 300 and the upper oiling structure 420, the lower end face of the workpiece contacts the lower oiling structure 300, and the upper end face of the workpiece contacts the upper oiling structure 420, thereby coating both the upper and lower end faces of the workpiece with oil.

[0026] Understandably, the lower oiling structure 300 and the upper oiling structure 420 can adopt a roller structure with a large cross-section in the middle and small cross-sections at both ends. This facilitates installation and oiling of the workpiece. When the workpiece passes between the lower oiling structure 300 and the upper oiling structure 420, the lower oiling structure 300 can rotate to ensure more even oil distribution on the workpiece. The upper oiling structure 420 will rotate accordingly due to the horizontal movement of the workpiece, thus ensuring more even oil distribution. Understandably, when the upper oiling structure 420 has sufficient oil, it can perform the oiling operation on the workpiece without rotation. When the oil is insufficient, friction will be generated, causing the upper oiling structure 420 to rotate to a position with sufficient oil for oiling the workpiece.

[0027] It is understandable that the upper oiling structure 420 and the lower oiling structure 300 can adopt the same structural configuration to improve the interchangeability of the device, thereby facilitating processing and maintenance. It is also understandable that the surfaces of the upper oiling structure 420 and the lower oiling structure 300 can be provided with structures such as wool felt to assist in oiling.

[0028] Understandably, the adjusting component 410 can adjust the vertical distance between the upper oiling structure 420 and the lower oiling structure 300, thereby meeting the processing requirements of workpieces of different thicknesses. Furthermore, when the oil dripping module 500 uses oil to wet the upper oiling structure 420 and the lower oiling structure 300, the adjusting component 410 can lower the upper oiling structure 420 so that the surface of the upper oiling structure 420 comes into contact with the surface of the lower oiling structure 300, thereby quickly achieving oil wettability of the lower oiling structure 300.

[0029] It is understandable that the adjustment component 410 can be provided in two sets, located at both ends of the upper oiling structure 420, so as to better drive the upper oiling structure 420 to move up and down.

[0030] Understandably, the oil-drip module 500 performs oil-drip operations intermittently to ensure that the upper oil-coating structure 420 has enough oil to apply to the workpiece to be processed. Furthermore, when the oiling of one workpiece is completed and the next workpiece has not yet reached the area between the lower oil-coating structure 300 and the upper oil-coating structure 420, the upper oil-coating structure 420 can drip oil onto the lower oil-coating structure 300 to replenish the oil on the surface of the lower oil-coating structure 300, thereby ensuring the oil coverage of the lower end face of the workpiece.

[0031] In some specific embodiments of this utility model, the lower oiling structure 300 includes a connecting shaft 310, which passes through the base frame 100 and is located at the end of the feeding assembly 220. The connecting shaft 310 has a through groove 311 in the left and right direction. The surface of the connecting shaft 310 has a plurality of oil outlet holes 312, which communicate with the through groove 311. The surface of the connecting shaft 310 is provided with an oiling component 320, which covers the plurality of oil outlet holes 312.

[0032] like Figure 4 As shown, in this embodiment, a plurality of oil outlet holes 312 are evenly arranged on the surface of the connecting shaft 310. Before the device is operated, one end of the through groove 311 is sealed, and oil is poured into the other end of the through groove 311 and then sealed, so that the connecting shaft 310 can carry its own oil. During rotation, the oil permeates through the plurality of oil outlet holes 312 to the outer oiling component 320, thereby oiling the workpiece to be processed. It is understood that L-shaped connecting pipes 330 can also be provided at both ends of the through groove 311 to facilitate the pouring of oil into the through groove 311. It is understood that the oiling component 320 can be made of materials such as wool felt, cotton blocks, or sponge.

[0033] In some specific embodiments of this utility model, the adjustment component 410 includes a first connector 411, which is disposed on the base frame 100. An adjustment bolt 412 is movably passed through the first connector 411. A second connector 413 is fixedly connected to the adjustment bolt 412. A guide 414 is connected to the second connector 413. A guide sleeve 415 is passed through the guide 414. The guide sleeve 415 is movably disposed inside the first connector 411. A third connector 416 is disposed at the bottom of the guide 414. The upper oiling structure 420 is rotatably connected to the third connector 416 through a first rotating member 417. An elastic body 418 is disposed on the upper end face of the third connector 416 and the lower end face of the guide sleeve 415.

[0034] like Figure 1 , Figure 5 and Figure 6 As shown, in this embodiment, the first connecting member 411 is disposed on the base frame 100, and the adjusting bolt 412 is movably connected to the first connecting member 411, which can be adjusted and moved up and down relative to each other, and drives the guide member 414, which is fixedly connected by the second connecting member 413, to move up and down. The guide member 414 can pass through the guide sleeve 415 to move up and down. The guide sleeve 415 contacts the first connecting member 411 through the elastic body 418 and can remain relatively stable. The guide member 414 is fixedly connected to the first rotating member 417 through the third connecting member 416. The first rotating member 417 can be rotatably connected to the upper oiling structure 420, thereby realizing that by adjusting the up and down displacement of the adjusting bolt 412, the second connecting member 413, the guide member 414, the third connecting member 416, the first rotating member 417 and the upper oiling structure 420 can be moved up and down in sequence.

[0035] It is understandable that the first rotating component 417 is designed to allow the oiled structure 420 to rotate while maintaining a fixed connection with the third connecting component 416. The first rotating component 417 is typically a bearing-type part and has radial load capacity.

[0036] Understandably, the guide sleeve 415 is designed to assist the guide member 414 in moving up and down, thereby making the oil-coated structure 420 move up and down more smoothly.

[0037] Understandably, the elastic body 418 can be a spring, with one end in contact with the upper end face of the third connector 416 and the other end in contact with the lower end face of the guide sleeve 415. This allows the guide sleeve 415 to be stably fitted into the first connector 411 and provides a certain preload, making the oil-coated structure 420 move more smoothly up and down.

[0038] In some specific embodiments of this utility model, the oil dripping module 500 includes a multi-port adapter 510 and an oil dripping component 520. The oil dripping component 520 passes through the base frame 100 and is located above the corresponding oil coating structure 420. At least one oil dripping component 520 is included. The oil dripping component 520 can be connected to the container holding oil through the multi-port adapter 510.

[0039] like Figure 1 and Figure 6 As shown, in this embodiment, six oil-drip elements 520 are provided, arranged side by side at intervals above the corresponding oiling structure 420. Two multi-port adapters 510 are provided, one end of which is connected to the container holding the oil (not shown in the figure), and the other end can be connected to three oil-drip elements 520 respectively. The oil can be output from the container holding the oil to the two multi-port adapters 510, and then diverted through the multi-port adapters 510 into the three oil-drip elements 520, and then dripped from the oil outlet of the oil-drip element 520 onto the oiling structure 420.

[0040] Understandably, having multiple small oil-drip nozzles 520 enables uniform oil dripping from the upper oiling structure 420, allowing the upper oiling structure 420 to apply oil to the workpiece more evenly. Understandably, a single large oil-drip nozzle 520 with multiple drip outlets can also be used to achieve uniform oil dripping from the upper oiling structure 420. Understandably, the multi-port adapter 510 reduces the number of pipe connections, making it easier to connect the oil container to the oil-drip nozzle 520.

[0041] In some specific embodiments of this utility model, the feeding assembly 220 includes a drive shaft 221, a conveyor belt 222 and at least one driven shaft 223. The drive shaft 221 passes through the base frame 100 and is connected to the transmission assembly 230. The drive shaft 221 is connected to the driven shaft 223 through the conveyor belt 222. The driven shaft 223 passes through the base frame 100. The drive shaft 221 and the driven shaft 223 are adapted to rotate relative to the base frame 100.

[0042] like Figure 1 , Figure 3 and Figure 7 As shown, in this embodiment, a driven shaft 223 is provided. The driven shaft 223 is mounted horizontally on the base frame 100 and arranged parallel to the drive shaft 221. It is connected to the drive shaft 221 by a conveyor belt 222. The axis of the driven shaft 223 is parallel to the axis of the drive shaft 221. One end of the drive shaft 221 passes through the base frame 100 and is connected to the transmission assembly 230. The drive shaft 221 is mounted horizontally on the base frame 100, and one end is fixedly connected to the transmission assembly 230.

[0043] When the device is running, the drive component 210 can drive the drive shaft 221 to rotate through the transmission assembly 230. The drive shaft 221 can drive the driven shaft 223 to rotate through the conveyor belt 222, and the conveyor belt 222 can carry the workpiece to be processed and transport it in the direction of the downward oiling structure 300.

[0044] It is understandable that the driven shaft 223 and the driving shaft 221 can be at the same horizontal height, or the driving shaft 221, which is closer to the lower oiling structure 300, can be at a lower height, but it is necessary to ensure that the workpiece to be processed can be transferred stably.

[0045] It is understandable that the driven shaft 223 or the driving shaft 221 near the lower oiling structure 300 can be used, but it is necessary to ensure the stability of the transmission and to allow the workpiece to be processed to pass between the lower oiling structure 300 and the upper oiling structure 420 to achieve oiling.

[0046] Understandably, the driven shaft 223 can also be configured with two, three, or four shafts to ensure the stability of the transmission.

[0047] It is understood that the driven shaft 223 includes a housing 2231, a fixed shaft 2232, and a fourth rotating member 2233. The fixed shaft 2232 can be fixedly connected to the base 100. The fixed shaft 2232 passes horizontally through the housing 2231 in the left-right direction and is rotatably connected to the housing 2231 through the fourth rotating member 2233. The surface of the housing 2231 is connected to the conveyor belt 222. The driving shaft 221 can drive the housing 2231 to rotate relative to the fixed shaft 2232 through the conveyor belt 222. The fourth rotating member 2233 often uses bearing-type parts to connect the fixed shaft 2232 and the housing 2231.

[0048] In some specific embodiments of this utility model, the feeding assembly 220 further includes a support frame 224, a driven shaft 223 is provided, the support frame 224 is mounted on the base frame 100, the support frame 224 is located between the driven shaft 223 and the drive shaft 221, and the upper end surface of the support frame 224 is close to the upper bottom surface of the conveyor belt 222.

[0049] like Figure 3 and Figure 7 As shown, in this embodiment, the support frame 224 can prevent the conveying surface of the conveyor belt 222 from being excessively concave due to the workpiece being too heavy, thereby affecting the stability of the transmission.

[0050] Understandably, the upper surface of the support frame 224 that is suitable for contacting the conveyor belt 222 is a smooth surface, which can reduce unnecessary dynamic damage. The support frame 224 can also be set in multiple segments to ensure the stability of the transmission.

[0051] In some specific embodiments of this utility model, the transmission assembly 230 includes a first gear 231, a second gear 232, a third gear 233 and a fourth gear 234 that mesh in sequence. The output end of the drive member 210 is connected to the first gear 231. The feeding assembly 220 is connected to the second gear 232. The third gear 233 is connected to the base frame 100 through a fourth connector 235. The third gear 233 is adapted to rotate on the fourth connector 235. The lower oiling structure 300 is fixedly connected to the fourth gear 234 by rolling.

[0052] like Figure 1 , Figure 3 and Figure 8 As shown, in this embodiment, the sequential meshing of the first gear 231, the second gear 232, the third gear 233, and the fourth gear 234 can efficiently transmit the driving force of the drive component 210 to the feeding assembly 220 and the lower oiling structure 300, enabling the feeding assembly 220 and the lower oiling structure 300 to rotate.

[0053] It is understandable that the third gear 233 is designed to facilitate the extension of the gear transmission distance, thereby making it easier to install the feeding assembly 220 and the lower oiling structure 300. Furthermore, it allows the feeding assembly 220 and the lower oiling structure 300 to rotate in the same direction, thus enabling better transfer of the workpiece from the feeding assembly 220 to the lower oiling structure 300. It is also understood that the second gear 232 is the first transmission end of the transmission assembly 230, and the fourth gear 234 is the second transmission end of the transmission assembly 230.

[0054] It is understandable that the first gear 231, the second gear 232, the third gear 233 and the fourth gear 234 can be gears with the same structure and size, thereby improving the interchangeability of the device.

[0055] It is understandable that a protective cover (not shown in the figure) can also be provided on the transmission component 230 to prevent external dust and other objects from adhering to the surface of the transmission component 230, thereby affecting the meshing transmission between the first gear 231, the second gear 232, the third gear 233 and the fourth gear 234.

[0056] In some specific embodiments of this utility model, the material conveying module 200 further includes an infeed plate 240 and an outlet plate 250. The infeed plate 240 and the outlet plate 250 are disposed on the base frame 100. The infeed plate 240 is located at the input port of the feeding assembly 220, and the upper end face of the infeed plate 240 and the feeding assembly 220 are set at an obtuse angle. The outlet plate 250 is located below the lower oiling structure 300, and the outlet plate 250 is located at the output port of the lower oiling structure 300, and the upper end face of the outlet plate 250 and the feeding assembly 220 are set at an obtuse angle.

[0057] like Figure 1 , Figure 2 and Figure 3 As shown, in this embodiment, the feed plate 240 is inclined, which makes it easier and more stable for the workpiece to enter the feeding assembly 220. The discharge plate 250 is inclined, which makes it easier to receive the workpiece that has been coated between the lower oiling structure 300 and the upper oiling structure 420.

[0058] In some specific embodiments of this utility model, the base frame 100 includes a base 110 and a cover plate 120. A first groove 111 is formed on the base 110. A first side plate 130 is provided on the left side of the base 110, and a second side plate 140 is provided on the right side of the base 110. A transmission assembly 230 is provided on the first side plate 130. A feeding assembly 220 and a lower oiling structure 300 are provided on the first side plate 130 and the second side plate 140. The lower oiling structure 300 is located above the base 110. The cover plate 120 spans across the first side plate 130 and the second side plate 140. An adjustment assembly 410 is provided on the cover plate 120. The transmission end of the adjustment assembly 410 passes through the cover plate 120. An upper oiling structure 420 is located below the cover plate 120. An oil dripping module 500 passes through the cover plate 120.

[0059] like Figure 1 , Figure 2 and Figure 9 As shown, in this embodiment, the feeding assembly 220, the lower oiling structure 300 and the transmission assembly 230 can be stably installed through the first side plate 130 and the second side plate 140, and the adjustment assembly 410 and the oil dripping module 500 can be stably installed through the cover plate 120 provided on the first side plate 130 and the second side plate 140.

[0060] It is understandable that an oil drain hole 1111 can also be provided in the first groove 111 to facilitate the collection of oil from the oil drain hole 1111. It is also understandable that when the oil drain hole 1111 is located on the bottom surface of the base 110, support structures 150 are respectively provided on the left side of the first side plate 130 and the right side of the second side plate 140, which can raise the device to facilitate the connection between the oil drain hole 1111 and the outside. In addition, the support structure 150 on the left side of the first side plate 130 can also accommodate the drive component 210.

[0061] It is understandable that, such as Figure 1 and Figure 9As shown, the first side plate 130 can also be provided with a second rotating member 131 rotatably connected to the feeding assembly 220, and the first side plate 130 can also be provided with a third rotating member 132 rotatably connected to the lower oiling structure 300. The second rotating member 131 and the third rotating member 132 can be bearing components, which can ensure that the feeding assembly 220 and the lower oiling structure 300 can rotate stably while being stably connected to the first side plate 130. It can be understood that the second side plate 140 can also be provided with corresponding second rotating members 131 and third rotating members 132 rotatably connected to the feeding assembly 220 and the lower oiling structure 300.

[0062] This utility model embodiment also discloses a processing equipment, including the above-mentioned double-sided oiling conveyor device.

[0063] When the device is in use, the drive unit 210 drives the drive shaft 221 of the lower oiling structure 300 and the feeding assembly 220 to rotate through the continuous meshing of the first gear 231, the second gear 232, the third gear 233 and the fourth gear 234. The drive shaft 221, through its cooperation with the conveyor belt 222, the driven shaft 223 and the support frame 224, can drive the workpiece to be processed from the feed plate 240 onto the conveyor belt 222 to move between the lower oiling structure 300 and the upper oiling structure 420. The upper oiling structure 420 is located below the oil-drip component 520 and can receive the oil dripping from the oil outlet of the oil-drip component 520. After the upper oiling structure 420 is fully wetted, the oil drips from the upper oiling structure 420 onto the lower oiling structure 300 located below the upper oiling structure 420. After the lower oiling structure 300 is fully wetted, excess oil droplets drip from the lower oiling structure 300 into the first groove 111 for recycling. The workpiece to be processed enters from the conveyor belt 222 between the upper oiling structure 420 and the lower oiling structure 300. The upper end face of the workpiece to be processed is in contact with the surface of the upper oiling structure 420, and the lower end face of the workpiece to be processed is in contact with the surface of the lower oiling structure 300, thereby achieving double-sided oiling. After the oiling is completed, it falls onto the discharge plate 250 to complete the processing.

[0064] The embodiments of the present utility model have been described in detail above with reference to the accompanying drawings. However, the present utility model is not limited to the above embodiments. Within the scope of knowledge possessed by those skilled in the art, various changes can be made without departing from the spirit of the present utility model.

Claims

1. A double-sided oiling conveying device, characterized in that, include: The base frame (100) has a first groove (111) at its bottom. The material conveying module (200) includes a driving component (210) and a feeding assembly (220). The feeding assembly (220) is mounted on the base frame (100). The output end of the driving component (210) is connected to a transmission assembly (230). The feeding assembly (220) is connected to the first transmission end of the transmission assembly (230). A lower oiling structure (300) is provided on the base frame (100) and located at the end of the feeding assembly (220). At least a portion of the first groove (111) is located below the corresponding part of the lower oiling structure (300). The lower oiling structure (300) is connected to the second transmission end of the transmission assembly (230). The upper oiling mechanism (400) includes an adjustment component (410), and the movable end of the adjustment component (410) is provided with an upper oiling structure (420), which is vertically aligned with the lower oiling structure (300). The oil-drip module (500) has its oil outlet located above the corresponding part of the upper oiling structure (420).

2. The double-sided oiling conveying device according to claim 1, characterized in that, The lower oiling structure (300) includes a connecting shaft (310), which passes through the base frame (100) and is located at the end of the feeding assembly (220). The connecting shaft (310) has a through groove (311) in the left-right direction. The surface of the connecting shaft (310) has a plurality of oil outlet holes (312), which communicate with the through groove (311). The surface of the connecting shaft (310) is provided with an oiling component (320), which covers the plurality of oil outlet holes (312).

3. The double-sided oiling conveying device according to claim 1, characterized in that, The adjustment assembly (410) includes a first connector (411), which is disposed on the base frame (100). An adjustment bolt (412) is movably passed through the first connector (411). A second connector (413) is fixedly connected to the adjustment bolt (412). A guide (414) is connected to the second connector (413). A guide sleeve (415) is passed through the guide (414). The guide sleeve (415) is movably disposed inside the first connector (411). A third connector (416) is disposed at the bottom of the guide (414). The upper oiling structure (420) is rotatably connected to the third connector (416) through a first rotating member (417). An elastic body (418) is disposed on the upper end face of the third connector (416) and the lower end face of the guide sleeve (415).

4. The double-sided oiling conveying device according to claim 1, characterized in that, The oil-drip module (500) includes a multi-port adapter (510) and an oil-drip component (520). The oil-drip component (520) passes through the base frame (100) and is located above the corresponding oil-coating structure (420). At least one oil-drip component (520) is included. The oil-drip component (520) can be connected to a container holding oil through the multi-port adapter (510).

5. A double-sided oiling conveying device according to claim 1, characterized in that, The feeding assembly (220) includes a drive shaft (221), a conveyor belt (222) and at least one driven shaft (223). The drive shaft (221) passes through the base frame (100) and is connected to the transmission assembly (230). The drive shaft (221) is connected to the driven shaft (223) through the conveyor belt (222). The driven shaft (223) passes through the base frame (100). The drive shaft (221) and the driven shaft (223) are adapted to rotate relative to the base frame (100).

6. A double-sided oiling conveying device according to claim 5, characterized in that, The feeding assembly (220) also includes a support frame (224), one driven shaft (223) is provided, the support frame (224) is mounted on the base frame (100), the support frame (224) is located between the driven shaft (223) and the drive shaft (221), and the upper end face of the support frame (224) is close to the upper bottom surface of the conveyor belt (222).

7. The double-sided oiling conveying device according to claim 1, characterized in that, The transmission assembly (230) includes a first gear (231), a second gear (232), a third gear (233), and a fourth gear (234) that mesh in sequence. The output end of the drive unit (210) is connected to the first gear (231). The feeding assembly (220) is connected to the second gear (232). The third gear (233) is connected to the base frame (100) through a fourth connector (235). The third gear (233) is adapted to rotate on the fourth connector (235). The lower oiling structure (300) is fixedly connected to the fourth gear (234) by rolling.

8. The double-sided oiling conveying device according to claim 1, characterized in that, The feeding module (200) further includes an infeed plate (240) and an outlet plate (250). The infeed plate (240) and the outlet plate (250) are disposed on the base frame (100). The infeed plate (240) is located at the input port of the feeding assembly (220). The upper end face of the infeed plate (240) and the feeding assembly (220) are set at an obtuse angle. The outlet plate (250) is located below the lower oiling structure (300). The outlet plate (250) is located at the output port of the lower oiling structure (300). The upper end face of the outlet plate (250) and the feeding assembly (220) are set at an obtuse angle.

9. A double-sided oiling conveying device according to claim 1, characterized in that, The base frame (100) includes a base (110) and a cover plate (120). The first groove (111) is formed on the base (110). A first side plate (130) is provided on the left side of the base (110), and a second side plate (140) is provided on the right side of the base (110). The transmission assembly (230) is provided on the first side plate (130), and the feeding assembly (220) and the lower oiling structure (300) are provided on the first side plate (130) and the second side plate (140). On the side plate (140), the lower oiling structure (300) is located above the base (110), the cover plate (120) spans the first side plate (130) and the second side plate (140), the adjustment component (410) is disposed on the cover plate (120), the transmission end of the adjustment component (410) passes through the cover plate (120), the upper oiling structure (420) is located below the cover plate (120), and the oil dripping module (500) passes through the cover plate (120).

10. A processing device, characterized in that, Includes the double-sided oiling conveying device as described in any one of claims 1 to 9.