A kind of air blast drying oven for new energy automobile component production
By designing a forced-air drying oven with a driven device and a clamping device, the problem of slow top drying speed in the drying process of new energy vehicle components was solved, and uniform heating of all surfaces was achieved, thus improving drying efficiency.
Patent Information
- Application Number
- CN202521211507.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-13
- Publication Date
- 2026-06-23
- Estimated Expiration
- 2035-06-13
AI Technical Summary
In existing technologies, during the drying process of new energy vehicle components, hot air can only blow on the bottom, resulting in slow drying speed at the top and affecting drying efficiency.
A blower drying box including a driven device and a clamping device was designed. The impeller rotates by airflow, which drives the driven gear to rotate gradually. The angle of the clamping device is adjusted to ensure that all surfaces of the new energy vehicle parts are exposed to hot air during the drying process.
This method ensures that all surfaces of new energy vehicle components are heated evenly during the drying process, improving drying efficiency and avoiding the inefficiency caused by prolonged single-sided blowing.
Smart Images

Figure CN224398214U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of forced-air drying oven technology, specifically a forced-air drying oven for the production of new energy vehicle components. Background Technology
[0002] Drying ovens are divided into two main categories based on the type of material being dried: electric heating forced-air drying ovens and vacuum drying ovens. They are now widely used in industries such as chemical, electronic communications, plastics, cables, electroplating, hardware, automotive, optoelectronics, rubber products, molds, spraying, printing, medical, aerospace, and higher education. Among them, electric heating forced-air drying ovens are widely used in the production process of new energy vehicle components.
[0003] For example, the announcement number "CN217876807U" discloses a blower drying oven for the production of new energy vehicle components. This device dries the new energy vehicle components by placing them on a shelf and using a motor-driven fan blade in conjunction with a heating tube to blow hot air.
[0004] However, in actual use, new energy vehicle components have a certain volume. During the drying process, the hot air can only blow on the bottom of the component being dried, resulting in the top not being able to be blown by the hot air. This causes the bottom to dry faster and the top to dry slower, affecting the drying efficiency. To address this, we propose a blower drying oven for the production of new energy vehicle components. Utility Model Content
[0005] The purpose of this invention is to provide a blower drying oven for the production of new energy vehicle components, so as to solve the problems mentioned in the background art.
[0006] To achieve the above objectives, the present invention provides the following technical solution: a blower drying oven for the production of new energy vehicle components, comprising a box body and an air outlet disposed on the top of the box body, wherein a clamping device for fixing the new energy vehicle components is disposed inside the box body, and a driven device for controlling the rotation of the clamping device is disposed inside the box body.
[0007] The driven device includes:
[0008] The rotating rod is used to support the clamping device;
[0009] A spiral spring is used to control the rotation of a rotating rod when it is not restricted.
[0010] The limiting part is used to limit the rotation lever;
[0011] The control unit is used to control the limiting unit.
[0012] Preferably, the rotating rod passes through the back of the box and is rotatably connected to the box. A fixing ring is fixed to the back of the box, and a spiral spring is fixed to the inner side of the fixing ring. The end of the spiral spring away from the fixing ring is fixed to the rotating rod. The limiting part is located inside the box, and the control part is located inside the box and on the back.
[0013] Preferably, the limiting part includes a fixing rod, one end of which is fixed to the outer surface of the rotating rod, and the other end of which is hinged to an abutment rod. A fixing block is fixed to one side of the fixing rod, and a spring is fixed to the other side of the fixing rod. The end of the spring away from the fixing rod is fixed to the abutment rod. An L-shaped rod is fixed inside the housing, passing through a stop block and slidably connected to it. A return spring is fixed to the side of the stop block near the L-shaped rod, and the end of the return spring away from the stop block is fixed to the L-shaped rod. The clamping device is used to... After the new energy vehicle parts that need to be dried are fixed, the clamping device is manually rotated counterclockwise. The clamping device drives the rotating rod to rotate together. When the abutment rod touches the stop block, the abutment rod is stopped by the stop block, causing the abutment rod to swing away from the fixed block at the position hinged with the fixed rod. When the operator releases the clamping device, under the action of the spiral spring, the rotating rod drives the fixed rod and the abutment rod to rotate clockwise. When the abutment rod touches the stop block, the fixed block restricts the abutment rod, preventing it from swinging, thereby restricting the rotating rod.
[0014] Preferably, the control unit includes an impeller that passes through the back of the housing and is rotatably connected to the housing. The impeller also passes through a sector gear and is fixedly connected to the sector gear. A driven gear is rotatably mounted inside the housing. An arc-shaped block is fixed to the side of the driven gear away from the housing. A damping block is provided between the driven gear and the fixed ring. When airflow blows on the new energy vehicle components for drying, it can cause the impeller to rotate, which in turn drives the sector gear to rotate. When the sector gear rotates to mesh with the driven gear, it can drive the driven gear to rotate. The damping block between the driven gear and the fixed ring ensures that the driven gear can only rotate when subjected to a certain degree of external force. Each time the sector gear meshes with the driven gear, it can only drive the driven gear. As the driven gear rotates at a certain angle, it carries the arc-shaped block along with it. When the arc-shaped block abuts against the stop block, it pushes the stop block to move closer to the L-shaped rod, preventing the stop block from contacting the abutting rod and releasing the restriction on the rotating rod. The rotating rod can then rotate clockwise under the action of the spiral spring. When the abutting rod abuts against the next set of stop blocks, the rotating rod stops rotating. As the driven gear continues to rotate, the arc-shaped block abuts against the next set of stop blocks, releasing the restriction on the rotating rod. The rotating rod can then rotate clockwise again at a certain angle under the action of the spiral spring. This allows for angle adjustment of the new energy vehicle components clamped by the clamping device, enabling better drying and preventing one side from being blown on for a long time, which would affect drying efficiency.
[0015] Preferably, the clamping device includes a disc, which is fixed to the front of the rotating rod. Two sets of clamping plates are slidably mounted on the front of the disc. A screw is provided on the disc, which passes through the disc and is rotatably connected to it. The screw has two opposite threads, which pass through the two sets of clamping plates and are threadedly connected to them. A knob is fixed to the end of the screw, and the screw can be rotated by rotating the knob to control the rotation of the screw, thereby controlling the two sets of clamping plates to move towards or away from each other, and clamping or releasing the new energy vehicle components.
[0016] Preferably, a motor is fixed inside the housing, the output shaft of the motor is fixed to the fan blades, and a heating tube is installed inside the housing. The heating tubes heat the components, and the motor drives the fan blades to rotate, thereby blowing hot airflow to better dry the new energy vehicle components.
[0017] Compared with the prior art, this utility model provides a blower drying oven for the production of new energy vehicle components, which has the following beneficial effects:
[0018] 1. This blower drying oven for the production of new energy vehicle components, by setting up a driven device and a clamping device, uses airflow to dry the components while driving the impeller to rotate. Each time the sector gear meshes with the driven gear, it drives the driven gear to rotate at a certain angle. As the driven gear continues to rotate, when the arc-shaped block abuts against the stop block, it pushes the stop block to move closer to the L-shaped rod, so that the stop block can no longer abut against the abutting rod, thus releasing the restriction on the rotating rod. The rotating rod can then rotate clockwise under the action of the spiral spring. When the abutting rod abuts against the next set of stop blocks, the rotating rod stops rotating. This achieves the control of adjusting the angle of the new energy vehicle component clamped by the clamping device for better drying and avoids one side being blown on for a long time, which affects the drying efficiency.
[0019] 2. This blower drying oven for the production of new energy vehicle components can fix the new energy vehicle components to be dried through a clamping device, and can rotate along with the components during the drying process to achieve better drying. Attached Figure Description
[0020] Figure 1 This is a schematic diagram of the overall front view of the present invention;
[0021] Figure 2 This is a front view structural diagram of the box body in the open state of this utility model;
[0022] Figure 3 This is a schematic diagram of the rear view of the box structure of this utility model;
[0023] Figure 4 This is a front view schematic diagram of the connection between the clamping device and the driven device of this utility model;
[0024] Figure 5 This is a rear view schematic diagram of the connection structure between the clamping device and the driven device of this utility model;
[0025] Figure 6 This utility model Figure 5 Schematic diagram of the enlarged structure of A in the middle;
[0026] Figure 7 This utility model Figure 5 Schematic diagram of the enlarged structure of B.
[0027] In the diagram: 1. Box body; 2. Clamping device; 21. Disc; 22. Clamping plate; 23. Screw; 24. Knob; 3. Driven device; 31. Rotating rod; 32. Scroll spring; 33. Limiting part; 34. Control part; 35. Fixing ring; 331. Fixing rod; 332. Abutting rod; 333. Fixing block; 334. Spring; 335. L-shaped rod; 336. Stop block; 337. Return spring; 341. Impeller; 342. Sector gear; 343. Driven gear; 344. Arc block; 4. Motor; 5. Air outlet; 6. Fan blade; 7. Heating tube. Detailed Implementation
[0028] like Figures 1-7 As shown, this utility model provides a technical solution: a blower drying oven for the production of new energy vehicle components, including a box body 1 and an air outlet 5 disposed on the top of the box body 1. The box body 1 is provided with a clamping device 2 for fixing the new energy vehicle components. The box body 1 is also provided with a driven device 3 for controlling the rotation of the clamping device 2. The driven device 3 includes: a rotating rod 31, a spiral spring 32, a limiting part 33, a control part 34, and a fixing ring 35.
[0029] The rotating rod 31 passes through the back of the box 1 and is rotatably connected to the box 1. A fixing ring 35 is fixed to the back of the box 1. A spiral spring 32 is fixed to the inside of the fixing ring 35. The end of the spiral spring 32 away from the fixing ring 35 is fixed to the rotating rod 31. The limiting part 33 is located inside the box 1. The control part 34 is located inside the box 1 and on the back.
[0030] The limiting part 33 includes a fixing rod 331, one end of which is fixed to the outer surface of the rotating rod 31, and the other end of which is hinged to an abutment rod 332. A fixing block 333 is fixed to one side of the fixing rod 331, and a spring piece 334 is fixed to the other side of the fixing rod 331. The end of the spring piece 334 away from the fixing rod 331 is fixed to the abutment rod 332. An L-shaped rod 335 is fixed inside the housing 1. The L-shaped rod 335 passes through a stop block 336 and is slidably connected to the stop block 336. A return spring 337 is fixed to the side of the stop block 336 near the L-shaped rod 335. The end of the return spring 337 away from the stop block 336 is fixed to the L-shaped rod 335. When using the clamping device 2, the part to be dried is... After the new energy vehicle components are fixed, the clamping device 2 is manually rotated counterclockwise. The clamping device 2 drives the rotating rod 31 to rotate together. When the abutting rod 332 abuts against the stop block 336, the abutting rod 332 is abutted by the stop block 336, causing the abutting rod 332 to swing away from the fixed block 333 at the hinge position with the fixed rod 331. When the operator releases the clamping device 2, under the action of the spiral spring 32, the rotating rod 31 drives the fixed rod 331 and the abutting rod 332 to rotate clockwise. When the abutting rod 332 abuts against the stop block 336, the fixed block 333 restricts the abutting rod 332, preventing the abutting rod 332 from swinging, thereby restricting the rotating rod 31.
[0031] The control unit 34 includes an impeller 341, which penetrates the back of the housing 1 and is rotatably connected to it. The impeller 341 also penetrates a sector gear 342 and is fixedly connected to it. A driven gear 343 is rotatably mounted inside the housing 1. An arc-shaped block 344 is fixed to the side of the driven gear 343 away from the housing 1. A damping block is provided between the driven gear 343 and the fixed ring 35. When airflow dries the new energy vehicle components, it can cause the impeller 341 to rotate, which in turn drives the sector gear 342. When the sector gear 342 meshes with the driven gear 343, it can drive the driven gear 343 to rotate. The damping block between the driven gear 343 and the fixed ring 35 ensures that the driven gear 343 only rotates when subjected to a certain degree of external force. Each time the sector gear 342 meshes with the driven gear 343, it can only drive the driven gear 343. As the driven gear 343 rotates continuously, it rotates along with the arc-shaped block 344. When the arc-shaped block 344 abuts against the stop block 336, it pushes the stop block 336 to move closer to the L-shaped rod 335, preventing the stop block 336 from contacting the abutting rod 332. This releases the restriction on the rotating rod 31, allowing it to rotate clockwise under the action of the spiral spring 32. When the abutting rod 332 abuts against the next set of stop blocks 336, the rotating rod 31 stops rotating. As the driven gear 343 continues to rotate, the arc-shaped block 344 abuts against the next set of stop blocks 336, releasing the restriction on the rotating rod 31. The rotating rod 31 can then rotate clockwise again under the action of the spiral spring 32, thus controlling the angle adjustment of the new energy vehicle component clamped by the clamping device 2 for better drying and preventing prolonged blowing on one side, which would affect drying efficiency.
[0032] The clamping device 2 includes a disc 21, which is fixed to the front of the rotating rod 31. Two sets of clamping plates 22 are slidably mounted on the front of the disc 21. A screw 23 is provided on the disc 21. The screw 23 passes through the disc 21 and is rotatably connected to the disc 21. Two opposite threads are provided on the screw 23. The screw 23 passes through the two sets of clamping plates 22 and is threadedly connected to the two sets of clamping plates 22. A knob 24 is fixed to the end of the screw 23. By rotating the knob 24, the screw 23 can be rotated, thereby controlling the two sets of clamping plates 22 to move towards or away from each other, and clamping or releasing the new energy vehicle components.
[0033] A motor 4 is fixed inside the housing 1. The output shaft of the motor 4 is fixed to the fan blade 6. A heating tube 7 is installed inside the housing 1. The motor 4 drives the fan blade 6 to rotate by heating through the heating tube 7, thereby blowing hot air and drying the new energy vehicle components better.
[0034] In this utility model, when in use, the box 1 is opened, and the staff places the new energy vehicle parts that need to be dried between the two sets of clamping plates 22, and turns the knob 24 to control the screw 23 to rotate, which drives the two sets of clamping plates 22 to clamp the parts.
[0035] The operator manually rotates the disc 21, which causes the fixed new energy vehicle component to rotate counterclockwise. The disc 21 also causes the rotating rod 31 to rotate. When the abutment rod 332 abuts against the stop block 336, the abutment rod 332 is abutted by the stop block 336, causing the abutment rod 332 to swing away from the fixed block 333 at the hinged position with the fixed rod 331. When the operator releases the clamping device 2, under the action of the spiral spring 32, the rotating rod 31 causes the fixed rod 331 and the abutment rod 332 to rotate clockwise. When the abutment rod 332 abuts against the stop block 336, the fixed block 333 restricts the abutment rod 332, preventing it from swinging, thereby restricting the rotating rod 31.
[0036] Close the door of chamber 1, turn on motor 4 and heating tube 7. Heating is achieved through heating tube 7, and motor 4 drives fan blade 6 to rotate, thus blowing hot airflow to better dry the new energy vehicle components.
[0037] When airflow dries the components of a new energy vehicle, it can drive the impeller 341 to rotate. The impeller 341 drives the sector gear 342 to rotate. When the sector gear 342 rotates to mesh with the driven gear 343, it can drive the driven gear 343 to rotate. Through the damping block set between the driven gear 343 and the fixed ring 35, the driven gear 343 can only rotate when it is affected by a certain degree of external force. Each time the sector gear 342 meshes with the driven gear 343, it can only drive the driven gear 343 to rotate a certain angle. As the driven gear 343 continues to rotate, the driven gear 343 drives the arc block 344 to rotate together. When the arc block 344 abuts against the stop block 336, it can push... The stop block 336 moves closer to the L-shaped rod 335, preventing it from contacting the abutment rod 332 and thus releasing the restriction on the rotating rod 31. The rotating rod 31 can then rotate clockwise under the action of the spiral spring 32. When the abutment rod 332 contacts the next set of stop blocks 336, the rotating rod 31 stops rotating. As the driven gear 343 continues to rotate, the arc-shaped block 344 contacts the next set of stop blocks 336, releasing the restriction on the rotating rod 31. The rotating rod 31 can then rotate clockwise again by a certain angle under the action of the spiral spring 32. This allows for angle adjustment of the new energy vehicle component clamped by the clamping device 2, enabling better drying and preventing prolonged blowing on one side, which would affect drying efficiency.
[0038] After drying is complete, the new energy vehicle component can be removed by controlling the clamping device 2 to release the fixation.
[0039] The present invention has been described in detail above. However, modifications or improvements can be made to it, which will be obvious to those skilled in the art. Therefore, any modifications or improvements that do not depart from the spirit of the present invention are within the protection scope of the present invention.
Claims
1. A blast drying oven for new energy automobile component production, comprising an oven body (1) and an air outlet (5) arranged at the top of the oven body (1), characterized in that: The box (1) is provided with a clamping device (2) for fixing new energy vehicle components, and the box (1) is provided with a driven device (3) for controlling the rotation of the clamping device (2). The driven device (3) includes: Rotating rod (31) is used to support the clamping device (2); The spiral spring (32) is used to control the rotation when the rotating rod (31) is not restricted; The limiting part (33) is used to limit the rotating rod (31); Control unit (34), which is used to control the limiting unit (33).
2. The air-blast drying oven for new energy automobile component production according to claim 1, characterized in that: The rotating rod (31) passes through the back of the box (1) and is rotatably connected to the box (1). A fixing ring (35) is fixed to the back of the box (1). A spiral spring (32) is fixed to the inside of the fixing ring (35). The end of the spiral spring (32) away from the fixing ring (35) is fixed to the rotating rod (31). The limiting part (33) is located inside the box (1). The control part (34) is located inside and on the back of the box (1).
3. The forced air drying oven for new energy automobile component production of claim 1, wherein: The limiting part (33) includes a fixing rod (331), one end of which is fixed to the outer surface of the rotating rod (31), and the other end of which is hinged to an abutment rod (332). A fixing block (333) is fixed to one side of the fixing rod (331), and a spring piece (334) is fixed to the other side of the fixing rod (331). The end of the spring piece (334) away from the fixing rod (331) is fixed to the abutment rod (332). An L-shaped rod (335) is fixed inside the housing (1). The L-shaped rod (335) passes through the stop block (336) and is slidably connected to the stop block (336). A return spring (337) is fixed to the side of the stop block (336) near the L-shaped rod (335). The end of the return spring (337) away from the stop block (336) is fixed to the L-shaped rod (335).
4. The forced air drying oven for new energy automobile component production of claim 2, wherein: The control unit (34) includes an impeller (341), which passes through the back of the housing (1) and is rotatably connected to the housing (1). The impeller (341) passes through a sector gear (342) and is fixedly connected to the sector gear (342). A driven gear (343) is rotatably installed inside the housing (1). An arc-shaped block (344) is fixed on the side of the driven gear (343) away from the housing (1). A damping block is provided between the driven gear (343) and the fixed ring (35).
5. The forced air drying oven for new energy automobile component production of claim 1, wherein: The clamping device (2) includes a disc (21), which is fixed on the front of the rotating rod (31). Two sets of clamping plates (22) are slidably installed on the front of the disc (21). A screw (23) is provided on the disc (21). The screw (23) passes through the disc (21) and is rotatably connected to the disc (21). Two opposite threads are provided on the screw (23). The screw (23) passes through the two sets of clamping plates (22) and is threadedly connected to the two sets of clamping plates (22). A knob (24) is fixed at the end of the screw (23).
6. The forced air drying oven for new energy automobile component production of claim 1, wherein: The inside of the box (1) is fixed with a motor (4), the output shaft of the motor (4) is fixed with a fan blade (6), the inside of the box (1) is provided with a heating pipe (7).
Citation Information
Patent Citations
Air blast drying box for new energy automobile part production
CN217876807U