An electrical component transfer and storage device
By designing the drawer storage board body and clamping lifting part, combined with the vacuum storage structure, the problem of easy damage and oxidation of electrical components during storage is solved, and stable electrical components are achieved and extended life is achieved.
Patent Information
- Application Number
- CN202310766934.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-06-27
- Publication Date
- 2025-08-01
- Estimated Expiration
- 2043-06-27
AI Technical Summary
The existing electrical component storage devices lack a stable structure, which leads to easy damage during vibration or bumps, and most of them do not have vacuum storage conditions, resulting in oxidative damage.
An electrical component transfer storage device is designed, using a drawer storage plate body, combined with a clamping part, a lifting part and a vacuum storage structure, and automatic storage and clamping is achieved through the reset part and a sealing system to ensure that the electrical components are not damaged during vibration and are stored in a vacuum environment.
Effectively slow down the aging speed of electrical components, improve storage stability and convenience, extend service life, and avoid damage and oxidation caused by vibration.
Smart Images

Figure CN116767661B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of storage technology, and in particular to an electrical component transport storage device. Background Art
[0002] Electrical components refer to various components used in electrical equipment. They can complete various functions in the circuit. Since electrical components are high-precision, fragile, and susceptible to oxidation, they need to be stored and transported in highly protective storage devices to ensure the quality and stability of the electrical components.
[0003] Most existing electrical component storage and transportation devices directly place electrical components inside containers and do not have a good stable structure. Since electrical components themselves are high-precision and fragile, when the storage device collides or bumps to generate vibration force, the electrical components are easily shaken or even moved and popped out of the placement slot, causing damage to the electrical components. At the same time, the oxidation of the internal materials of the electrical components will cause the performance of the electrical components to degrade and fail. Most existing storage devices do not have the conditions for vacuum storage, and there is a possibility of oxidation damage for the long-term storage of electrical components.
[0004] Prior art patent number: 202211326507.7, discloses an electrical sealing device for protecting electrical components. After multiple sets of sealing boxes are spliced together, when electrical components of different quantities, models, sizes or shapes are sealed and stored, the upper sealing plate can support the electrical components. At the same time, the wire grooves on the support plate can summarize and fix the connection lines between the electrical components, further making the electrical components installed neatly, while ensuring the separation of the electrical components and the lines. Even if vibration or bumps occur during transportation, the connection lines of the electrical components will not be disordered.
[0005] Prior art patent number: CN218859073U discloses an electrical component transport box, which is provided with a fixing device, which is convenient for extracting and collecting the protective box, making it easy to take out the electrical components, and can fix the position of the protective box to prevent it from sliding randomly during transportation, so as to maintain the stability of the transport box. However, this solution has certain shortcomings. When placing the components, it is necessary to bend the splint and the pressure plate outward to achieve sufficient placement space for placement, and then place them, and then clamp them by the elastic force of the spring. This operation is cumbersome and laborious. The placement and fixation of each component need to be operated separately. At the same time, the conditions for vacuum storage are not met, which is not conducive to the long-term storage of electrical components.
[0006] Therefore, in view of this, the applicant has studied and improved the shortcomings of the existing structure and proposed an electrical component transport and storage device to solve the problem. Summary of the Invention
[0007] The purpose of the present invention is to provide an electrical component transport and storage device to solve the problem proposed in the above background technology that most of the existing storage devices directly place electrical components inside the container and do not have a good stable structure. Since the electrical components themselves have the characteristics of high precision and fragility, when the storage device collides or bumps to generate vibration force, it is easy to cause the electrical components to shake, thereby causing damage to the electrical components. At the same time, the oxidation of the internal materials of the electrical components will cause the performance of the electrical components to degrade and fail. Moreover, most of the existing storage devices do not have the conditions for vacuum storage, and there is a possible problem of oxidation damage for the long-term storage of electrical components.
[0008] In order to solve the above technical problems, the present invention provides an electrical component transport and storage device, comprising: a storage cabinet, a storage slot is provided inside the storage cabinet, and a gas collecting chamber is provided above the storage slot, a reset portion is installed inside the gas collecting chamber, the storage slot and the gas collecting chamber are connected by an air duct, the inner wall of the storage slot is rotatably connected to a roller, a pull belt is wound on the roller, the end of the pull belt is fixed to the reset portion, a push plate is fixed on the inner wall of the storage slot, and a sealing cover plate is installed in the gas collecting chamber, and the bottom part of the sealing cover plate can be inserted into the A storage plate body is provided in the storage slot, and the storage plate body is slidably installed in the storage slot, a sealing plate is fixed at one end of the storage plate body, a first tooth plate is fixed at the bottom end of the storage plate body, and the first tooth plate is engaged with the recovery gear fixed on the roller, a component slot is provided at the top end of the storage plate body, and the push plate slides in the opening on one side of the storage plate body, a clamping part, the clamping part is installed on the inner side wall of the component slot, the clamping part is used to clamp the electrical component, and a lifting part, the lifting part is installed at the bottom end of the component slot, and the lifting part is used to lift the electrical component when the clamping part is released.
[0009] The reset portion includes two horizontal rods fixed on the inner wall of the gas collecting chamber, and a reset plate is slidably connected to the horizontal rods, and a reset spring is fixed to the reset plate and the inner wall of the gas collecting chamber.
[0010] The air duct is provided with a rotating guide roller at the corners of the upper and lower ends, and the rotating guide roller is used to support and guide the pull belt. A rubber sealing plug is fixed on the pull belt, and the rubber sealing plug seals the opening of the air duct leading to the air collecting chamber when the storage plate is completed. The width of the air duct is greater than the width of the rubber sealing plug.
[0011] The sealing cover plate is in the shape of an inverted bulge, and a pulling spring is connected between the top surface of the sealing cover plate and the gas collecting cavity. The four sides of the sealing cover plate are sealed and slidably connected to the inner wall of the gas collecting cavity through a sealing gasket, and the protruding part of the bottom end of the sealing cover plate is inserted into the interior of the storage groove and fits with the top surface of the storage plate body, and a sponge pad is fixed to the bottom end of the sealing cover plate.
[0012] A gasket is fixed to the inner wall of the sealing plate. When the storage plate body is received, the other side wall of the sealing plate fits against the inner wall of the storage cabinet, and a gasket is also fixed to this fitting surface.
[0013] A docking block is fixed to the top end of the sealing plate, and the docking block passes through a threaded rod fixed on the storage cabinet. A fixing sleeve is threadedly connected to the threaded rod.
[0014] The clamping part includes a first clamping plate and a second clamping plate. The first clamping plates are symmetrically distributed on both sides of the component slot, and the second clamping plate is located on the adjacent side of the two first clamping plates. The first clamping plate is connected to a driving block through a first sliding rod, and the first sliding rod slides in the opening of the component slot. A first spring is fixed between the driving block and the inner wall of the storage plate body, and the driving block is located in the inner opening of the storage plate body where the pushing plate is inserted into the slideway. An inclined surface parallel to the side end of the pushing plate is provided at the outer end of the driving block. An inclined surface parallel to the pushing block is provided on the second clamping plate. A second sliding rod is fixed to one side of the second clamping plate, and the second sliding rod passes through the opening of the component slot and forms a sliding connection. A second spring is connected between the rod head of the second sliding rod and the component slot. The bottom end of the driving block is connected to a second toothed plate through a strip plate, and the second toothed plate is used to drive the lifting part to perform a lifting operation. A pushing block is provided on one side of the first clamping plate, and an inclined surface parallel to the second clamping plate is provided on the pushing block.
[0015] Rubber pads are bonded to one side inner wall of the first clamping plate, the second clamping plate, and the component slot, and the rubber pad of the component slot is bonded to the inner wall on the opposite side of the second clamping plate.
[0016] The lifting part includes a driving gear rotatably connected to the inner cavity below the component slot. The two ends of the driving gear are respectively engaged with the two second toothed plates. A lead screw is fixed to the top end of the driving gear. A sleeve rod is threadedly connected to the outside of the lead screw. The sleeve rod passes through the bottom opening of the component slot, and a lifting placement plate is fixed to the top end of the sleeve rod. Two limiting rods passing through the bottom opening of the component slot are fixed to the opposite side of the bottom end of the lifting placement plate.
[0017] A notch corresponding to the lifting placement plate is provided at the bottom end inside the component slot. When the lifting placement plate descends to the lowest end, it enters the notch, and at this time, the top surface of the lifting placement plate is aligned with the top surface of the notch.
[0018] The beneficial effects of the present invention are:
[0019] 1. An electrical component transfer and storage device of the present invention releases the storage plate body after placing the electrical component box in the component slot. The reset spring pulls the reset plate and the pull belt to reset, thereby driving the reel to unwind and rotate. The recovery gear drives the storage plate body to slide into the storage slot through meshing with the first toothed plate, thus realizing automatic storage. And while the storage plate body is moving, since the storage plate body is of a drawer type design and its outer wall fits the inner wall of the opening of the storage slot, and the pushing plate fits and slides in the opening on one side of the storage plate body, the air is compressed again into the ventilation channel and enters the air collection cavity. After the storage is completed, the sealing plate at one end of the storage plate body seals the opening, and the rubber sealing plug seals the port of the ventilation channel leading to the air collection cavity, so that the inside of the storage slot is in a near-vacuum environment, which can effectively slow down its aging speed and extend its service life;
[0020] 2. An electrical component transfer and storage device of the present invention, through the lifting part, can lift the electrical component box when the storage plate body is pulled out for easy taking, and lower the electrical component box into the component slot when the storage plate body is pushed into the storage, thus facilitating storage and improving the convenience of storage and taking;
[0021] 3. An electrical component transfer and storage device of the present invention, through the clamping part, can clamp and fix the four sides of the electrical component box while carrying out storage, effectively improving the stability of the electrical component box in the component slot, avoiding vibration and preventing it from shaking or colliding and being damaged. And the second spring and the first spring can drive the clamping plate to automatically reset when pulled out, improving the practicability. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] The present invention will be further described below in conjunction with the drawings and embodiments.
[0023] Figure 1 It is an overall three-dimensional view of an electrical component transfer and storage device of the present invention and the storage plate body is in a storage state;
[0024] Figure 2 It is an overall three-dimensional view of an electrical component transfer and storage device of the present invention and the storage plate body is in a pulled-out state;
[0025] Figure 3 It is a three-dimensional view of the storage plate body of an electrical component transfer and storage device of the present invention;
[0026] Figure 4 It is a front sectional view of an electrical component transfer and storage device of the present invention;
[0027] Figure 5 It is a top sectional view of an electrical component transfer and storage device of the present invention;
[0028] Figure 6Side view sectional view of the storage plate body of a transfer and storage device for electrical components according to the present invention;
[0029] Figure 7 Top view of the recovery gear and roller of a transfer and storage device for electrical components according to the present invention;
[0030] Figure 8 Stereogram of the recovery gear and roller of a transfer and storage device for electrical components according to the present invention;
[0031] Figure 9 Stereogram of the lifting part of a transfer and storage device for electrical components according to the present invention;
[0032] Figure 10 Stereogram of the cover plate of a transfer and storage device for electrical components according to the present invention;
[0033] Figure 11 For a transfer and storage device for electrical components according to the present invention Figure 6 Enlarged view at position A in;
[0034] Figure 12 For a transfer and storage device for electrical components according to the present invention Figure 5 Enlarged view at position B in.
[0035] In the figure:
[0036] 1. Storage cabinet; 11. Storage groove; 12. Air collection chamber; 13. Ventilation duct; 14. Roller; 15. Pulling belt; 16. Recovery gear; 17. Sealing cover plate; 18. Pushing plate; 19. Rubber sealing plug; 110. Lifting spring; 111. Threaded rod;
[0037] 2. Storage plate body; 21. First toothed plate; 22. Component groove; 23. Sealing plate; 24. Docking block;
[0038] 3. Reset part; 31. Horizontal rod; 32. Reset plate; 33. Reset spring;
[0039] 4. Clamping part; 41. First clamping plate; 42. Second clamping plate; 43. Driving block; 431. Second toothed plate; 44. First sliding rod; 45. First spring; 46. Pushing block; 47. Second sliding rod; 48. Second spring;
[0040] 5. Lifting part; 51. Driving gear; 52. Lead screw; 53. Sleeve rod; 54. Lifting placement plate; 55. Limiting rod. Detailed implementation manners
[0041] Now, the present invention will be further described in detail with reference to the accompanying drawings. These drawings are all simplified schematic diagrams, only illustrating the basic structure of the present invention in a schematic manner, so they only show the components related to the present invention.
[0042] As shown Figures 1 - 12 in the figure, a transfer and storage device for electrical components according to the present invention includes a storage cabinet 1. An accommodation groove 11 is provided inside the storage cabinet 1, and an air collecting cavity 12 is provided above the accommodation groove 11. A reset part 3 is installed inside the air collecting cavity 12. The accommodation groove 11 and the air collecting cavity 12 are connected by a ventilation passage 13. A winding roller 14 is rotatably connected to the inner wall of the accommodation groove 11, and a pulling belt 15 is wound around the winding roller 14. The end of the pulling belt 15 is fixed to the reset part 3. A pushing plate 18 fixed to the inner wall of the accommodation groove 11, a sealing cover plate 17, and the sealing cover plate 17 is installed in the air collecting cavity 12. A bottom part of the sealing cover plate 17 can be inserted into the accommodation groove 11. A storage plate body 2 is slidably installed in the accommodation groove 11. A sealing plate 23 is fixed to one end of the storage plate body 2. A first toothed plate 21 is fixed to the bottom end of the storage plate body 2, and the first toothed plate 21 meshes with a recovery gear 16 fixed on the winding roller 14. An element groove 22 is provided at the top end of the storage plate body 2. The pushing plate 18 slides in an opening on one side of the storage plate body 2. A clamping part 4 is installed on the inner side wall of the element groove 22, and the clamping part 4 is used for clamping electrical components. A lifting part 5 is installed at the inner bottom end of the element groove 22, and the lifting part 5 is used for lifting the electrical components when the clamping part 4 is released. The reset part 3 includes two horizontal rods 31 fixed to the inner wall of the air collecting cavity 12, and a reset plate 32 is slidably connected to the horizontal rods 31. And a reset spring 33 is fixed between the reset plate 32 and the inner wall of the air collecting cavity 12. It should be noted that in the design of the present invention, the outer wall of the storage plate body 2 slides along the inner wall of the opening of the accommodation groove 11.
[0043] With the above structure, the accommodation groove 11 is in a vacuum state in the initial state. When placing, the storage plate body 2 is pulled out, and the first toothed plate 21 drives the recovery gear 16 to rotate, and at the same time drives the winding roller 14 to rotate for winding. As a result, the pulling belt 15 moves inside the ventilation passage 13 to open the rubber sealing plug 19, and the gas overflows from the air collecting cavity 12, and the reset plate 32 inside the air collecting cavity 12 is pulled to slide on the horizontal rod 31, and at the same time the reset spring 33 is stretched. After placing the electrical component box in the element groove 22, the storage plate body 2 is released. The reset spring 33 pulls the reset plate 32 and the pulling belt 15 to reset, so as to drive the winding roller 14 to unwind and rotate. The recovery gear 16 drives the storage plate body 2 to slide into the accommodation groove 11 through the engagement of the first toothed plate 21, thereby realizing automatic storage. And when the storage plate body 2 moves, since the outer wall of the storage plate body 2 fits the inner wall of the accommodation groove 11, and the pushing plate 18 fits and slides in the opening on one side of the storage plate body 2, the air is compressed back into the ventilation passage 13 and enters the air collecting cavity 12 again. After the storage is completed, the sealing plate 23 at one end of the storage plate body 2 seals the opening, and the rubber sealing plug 19 blocks the port of the ventilation passage 13 leading to the air collecting cavity 12, so that the inside of the accommodation groove 11 is in a nearly vacuum environment, which can effectively slow down the aging speed of electrical components and extend their service life.
[0044] At the corners of the upper and lower ends of the ventilation duct 13, there is a rotating guide roller respectively, and the rotating guide roller is used to support and guide the pulling belt 15. A rubber sealing plug 19 is fixed on the pulling belt 15, and the rubber sealing plug 19 blocks the opening of the ventilation duct 13 leading to the gas collecting cavity 12 when the storage plate body 2 is completely received. The width of the ventilation duct 13 is greater than the width of the rubber sealing plug 19.
[0045] Through the above structure, the rotating guide roller facilitates the guiding of the rubber sealing plug 19, making its movement more stable without shaking, and the rotating resistance of the rotating guide roller is relatively low, which does not affect the rubber sealing plug 19 passing through the rotating guide roller. And the width of the ventilation duct 13 being greater than the width of the rubber sealing plug 19 does not affect the gas transportation through the ventilation duct 13, while the rubber sealing plug 19 is convenient for sealing the gas inside the gas collecting cavity 12, avoiding air leakage that may cause the sealing cover plate 17 to move upward and affect the storage of electrical components.
[0046] The sealing cover plate 17 is in the shape of an inverted convex block, and a lifting spring 110 is connected between the top surface of the sealing cover plate 17 and the gas collecting cavity 12. The four sides of the sealing cover plate 17 are in sealed sliding connection with the inner wall of the gas collecting cavity 12 through sealing gaskets. The protruding part at the bottom end of the sealing cover plate 17 is inserted into the inside of the receiving groove 11 and fits with the top surface of the storage plate body 2, and a sponge pad is fixed at the bottom end of the sealing cover plate 17.
[0047] Through the above structure, in the initial state, the sealing cover plate 17 passes through the opening of the gas collecting cavity 12 and fits with the top surface of the storage plate body 2. When the storage plate body 2 is pulled out, the rubber sealing plug 19 also moves downward to open the opening between the gas collecting cavity 12 and the ventilation duct 13. The air flows out through the ventilation duct 13, causing the sealing cover plate 17 to slowly move upward through the lifting spring 110. When storing, the air is compressed into the ventilation duct 13 and enters the gas collecting cavity 12, and finally under the action of air pressure, the sealing cover plate 17 slowly moves downward to cover the top surface of the storage plate body 2, thus avoiding the electrical component box in the component slot 22 popping out due to vibration during transportation. At the same time, when the sealing cover plate 17 moves downward, the sponge pad first touches the surface of the storage plate body 2. When the storage plate body 2 moves the last short distance to complete the storage, the sponge pad enhances the sealing performance due to extrusion, playing a role in isolating moisture and oxygen from the component slot 22.
[0048] One end of the storage plate body 2 is fixed with a sealing plate 23, and a sealing gasket is fixed on the inner wall of the sealing plate 23. The other end side wall of the storage plate body 2 in the sealing plate 23 fits with the inner wall of the storage cabinet 1 when the storage is completed, and the fitting surface is also fixed with a sealing gasket. A docking block 24 is fixed at the top end of the sealing plate 23, and the docking block 24 passes through the threaded rod 111 fixed on the storage cabinet 1, and a fixing sleeve is threadedly connected to the threaded rod 111.
[0049] With the above structure, after the storage plate body 2 is received, the docking block 24 will pass through the threaded rod 111 on the storage cabinet 1, and then a positioning sleeve is sleeved on the threaded rod 111 and tightened. Since the other end of the storage plate body 2 is hermetically attached to the inner wall of the storage cabinet 1, the storage plate body 2 and the storage cabinet 1 are in a very stable connection state and will not shake. Finally, the gasket of the sealing plate 23 is used to strengthen the sealing of the opening, effectively preventing gas from entering from the outside and preventing gas from entering the component slot 22 through the gap between the push plate 18 and the storage plate body 2. Cooperating with the sealing cover plate 17, it further isolates the influence of oxygen or moisture on the electrical components, achieving the effect of sealing the component slot 22.
[0050] The clamping portion 4 includes a first clamping plate 41 and a second clamping plate 42. The first clamping plates 41 are symmetrically distributed on both sides of the component slot 22, and the second clamping plate 42 is located on the adjacent side of the two first clamping plates 41. The first clamping plate 41 is connected to a driving block 43 through a first sliding rod 44, and the first sliding rod 44 slides in the opening of the component slot 22. A first spring 45 is fixed between the driving block 43 and the inner wall of the storage plate body 2, and the driving block 43 is located in the inner opening of the storage plate body 2 where the push plate 18 is inserted into the slideway. The outer end of the driving block 43 is provided with an inclined surface parallel to the side end of the push plate 18. The second clamping plate 42 is provided with an inclined surface parallel to the push block 46. One side of the second clamping plate 42 is fixed with a second sliding rod 47, and the second sliding rod 47 passes through the opening of the component slot 22 and forms a sliding connection. A second spring 48 is connected between the rod head of the second sliding rod 47 and the component slot 22. The bottom end of the driving block 43 is connected to a second toothed plate 431 through a strip plate, and the second toothed plate 431 is used to drive the lifting portion 5 to perform a lifting operation. A push block 46 is provided on one side of the first clamping plate 41, and the push block 46 is provided with an inclined surface parallel to the second clamping plate 42. Rubber pads are bonded to one side inner wall of the first clamping plate 41, the second clamping plate 42, and the component slot 22, and the rubber pad of the component slot 22 is bonded to the inner wall on the opposite side of the second clamping plate 42.
[0051] Through the clamping part 4, when placing, first place the electrical component into a dedicated component box. When the storage plate body 2 moves into the interior of the storage cabinet 1 after the electrical component box is placed and ready for storage, the pushing plate 18 will also slide towards the inside of the opening. And through the cooperation between the inclined surfaces, the driving block 43 is compressed. The movement of the driving block 43 causes the first sliding rod 44 to slide, and makes the two first clamping plates 41 approach each other to complete the clamping of both sides of the electrical component box. At the same time, through the cooperation between the pushing block 46 and the inclined surface of the second clamping plate 42, the second sliding rod 47 slides to drive the second clamping plate 42 to move synchronously with the first clamping plate 41, and finally clamp one side of the electrical component box. At this time, the four sides of the electrical component box are respectively in contact with the two first clamping plates 41, one second clamping plate 42 and the inner wall of the component slot 22, thus realizing the effect of automatic clamping, effectively improving the stability of the electrical component box inside the component slot 22, and avoiding damage caused by vibration, shaking or collision. And the second spring 48 and the first spring 45 can drive the clamping plate to automatically reset and release the clamping when pulled out, which is very practical.
[0052] The lifting part 5 includes a driving gear 51 rotatably connected to the inner cavity below the component slot 22. The two ends of the driving gear 51 are respectively engaged with two second toothed plates 431. And a lead screw 52 is fixed to the top of the driving gear 51. A sleeve rod 53 is threadedly connected to the outside of the lead screw 52. The sleeve rod 53 passes through the bottom opening of the component slot 22. And the top of the sleeve rod 53 is fixed with a lifting placement plate 54. Two limiting rods 55 passing through the bottom opening of the component slot 22 are fixed to the opposite side of the bottom end of the lifting placement plate 54. There is a notch corresponding to the lifting placement plate 54 at the bottom end inside the component slot 22. And when the lifting placement plate 54 descends to the lowest end, it enters the notch inside, and at this time the top surface of the lifting placement plate 54 is aligned with the top surface of the notch.
[0053] Through the lifting part 5, when the driving block 43 moves during the clamping operation, it will also drive the two second toothed plates 431 to approach each other, and then rotate the driving gear 51. The driving gear 51 drives the lead screw 52 to rotate. The sleeve rod 53 cannot rotate under the limitation of the limiting rod 55, and then moves downward, causing the lifting placement plate 54 to descend, lowering the electrical component box into the component slot 22. At the same time, the three clamping plates complete the clamping operation. After the storage plate body 2 is pulled out, the lifting placement plate 54 will rise again, lifting the electrical component box out of the component slot 22, thus facilitating the placement and taking operations, further improving the convenience of using the device. Finally, when the lifting placement plate 54 descends to the lowest end, the bottom surface of the electrical component box can be in a stable state, thereby improving the stability of placement. It should be noted that the electrical component box is a product of the prior art, and corresponding notches for the shape of the electrical component are provided inside and on the box cover, which will not be elaborated here.
[0054] Taking the above-described ideal embodiments of the present invention as an inspiration, through the above description, relevant staff can completely make various changes and modifications without departing from the technical idea of this invention. The technical scope of this invention is not limited to the content in the specification, and its technical scope must be determined according to the scope of the claims.
Claims
1. An electrical component transfer and storage device, characterized in that, Comprising: A storage cabinet (1), an accommodation groove (11) is provided inside the storage cabinet (1), and a gas collecting cavity (12) is provided above the accommodation groove (11). A reset part (3) is installed inside the gas collecting cavity (12). The accommodation groove (11) and the gas collecting cavity (12) are communicated by a ventilation duct (13). A winding roller (14) is rotatably connected to the inner wall of the accommodation groove (11). A pulling belt (15) is wound around the winding roller (14). The end of the pulling belt (15) is fixed to the reset part (3). A pushing plate (18) is fixed to the inner wall of the accommodation groove (11); A sealing cover plate (17), the sealing cover plate (17) is installed inside the gas collecting cavity (12), and a bottom part of the sealing cover plate (17) can be inserted into the accommodation groove (11); A storage plate body (2), the storage plate body (2) is slidably installed inside the accommodation groove (11). A sealing plate (23) is fixed to one end of the storage plate body (2). A first toothed plate (21) is fixed to the bottom end of the storage plate body (2), and the first toothed plate (21) meshes with a recovery gear (16) fixed on the winding roller (14). An element groove (22) is provided at the top end of the storage plate body (2). The pushing plate (18) slides in an opening on one side of the storage plate body (2); A clamping part (4), the clamping part (4) is installed on the inner side wall of the element groove (22), and the clamping part (4) is used for clamping electrical components; A lifting part (5), the lifting part (5) is installed at the inner bottom end of the element groove (22), and the lifting part (5) is used for lifting the electrical component when the clamping part (4) releases it.
2. The electrical component transfer and storage device according to claim 1, wherein The reset part (3) includes two horizontal rods (31) fixed to the inner wall of the gas collecting cavity (12), and a reset plate (32) is slidably connected to the horizontal rods (31), and a reset spring (33) is fixed between the reset plate (32) and the inner wall of the gas collecting cavity (12).
3. The electrical component transfer and storage device according to claim 2, wherein A rotating guide roller is provided at each of the upper and lower corners of the ventilation duct (13), and the rotating guide roller is used for supporting and guiding the pulling belt (15). A rubber sealing plug (19) is fixed on the pulling belt (15), and the rubber sealing plug (19) blocks the opening of the ventilation duct (13) leading to the gas collecting cavity (12) when the storage plate body (2) is stored; The width of the ventilation duct (13) is greater than the width of the rubber sealing plug (19).
4. The electrical component transfer and storage device according to claim 3, wherein The sealing cover plate (17) is in the shape of an inverted convex block, and a lifting spring (110) is connected between the top surface of the sealing cover plate (17) and the gas collecting cavity (12). The four sides of the sealing cover plate (17) are hermetically slidably connected to the inner wall of the gas collecting cavity (12) through gaskets. The protruding part at the bottom end of the sealing cover plate (B) is inserted into the inside of the accommodation groove (11) and fits with the top surface of the storage plate body (2), and a sponge pad is fixed to the bottom end of the sealing cover plate (17).
5. An electrical component transfer and storage device according to claim 4, characterized in that a sealing gasket is fixed to the inner wall of the sealing plate (23), and the other side wall of the storage plate body (2) is in sealing fit with the inner wall of the storage cabinet (1) when the storage is completed, and a sealing gasket is also fixed to the fitting surface.
6. An electrical component transfer and storage device according to claim 5, characterized in that a docking block (24) is fixed to the top end of the sealing plate (23), and the docking block (24) passes through a threaded rod (111) fixed on the storage cabinet (1), and a fixing sleeve is threadedly connected to the threaded rod (111).
7. An electrical component transfer and storage device according to claim 6, characterized in that the clamping part (4) includes a first clamping plate (41) and a second clamping plate (42). The first clamping plates (41) are symmetrically distributed on both sides of the component slot (22), and the second clamping plate (42) is located on the adjacent side of the two first clamping plates (41). The first clamping plate (41) is connected to a driving block (43) through a first sliding rod (44), and the first sliding rod (44) slides in the opening of the component slot (22). A first spring (45) is fixed between the driving block (43) and the inner wall of the storage plate body (2), and the driving block (43) is located in the inner opening of the storage plate body (2) where the pushing plate (18) is inserted into the slideway, and an inclined surface parallel to the side end of the pushing plate (18) is provided at the outer end of the driving block (43). An inclined surface parallel to the pushing block (46) is provided on the second clamping plate (42). A second sliding rod (47) is fixed to one side of the second clamping plate (42), and the second sliding rod (47) passes through the opening of the component slot (22) and forms a sliding connection. A second spring (48) is connected between the rod head of the second sliding rod (47) and the component slot (22); the bottom end of the driving block (43) is connected to a second toothed plate (431) through a strip plate, and the second toothed plate (431) is used to drive the lifting part (5) to perform a lifting operation; a pushing block (46) is provided on one side of the first clamping plate (41), and an inclined surface parallel to the second clamping plate (42) is provided on the pushing block (46).
8. An electrical component transfer and storage device according to claim 7, characterized in that rubber gaskets are bonded to one side inner walls of the first clamping plate (41), the second clamping plate (42) and the component slot (22), and the rubber gasket of the component slot (22) is bonded to the inner wall on the opposite side of the second clamping plate (42).
9. An electrical component transfer and storage device according to claim 8, characterized in that The lifting part (5) includes a driving gear (51) rotatably connected to the inner cavity below the component slot (22), and both ends of the driving gear (51) are respectively engaged with two second toothed plates (431), and a lead screw (52) is fixed to the top end of the driving gear (51). A sleeve rod (53) is threadedly connected to the outside of the lead screw (52). The sleeve rod (53) passes through the bottom opening of the component slot (22), and a lifting placement plate (54) is fixed to the top end of the sleeve rod (53). Two limiting rods (55) passing through the bottom opening of the component slot (22) are fixed to the opposite side of the bottom end of the lifting placement plate (54).
10. An electrical component transfer and storage device as described in claim 9, characterized in that, A notch corresponding to the lifting placement plate (54) is provided at the bottom end inside the component slot (22). When the lifting placement plate (54) descends to the lowest end, it enters the notch, and at this time, the top surface of the lifting placement plate (54) is aligned with the top surface of the notch.
Citation Information
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Electrical sealing device for protecting electrical element
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