New energy automobile accessory transportation device

By adopting suspended conveying pipelines and water flow conveying methods in the transportation device of new energy vehicle accessories, combined with the design of rotating blades and control components, the problem of silicone oil residue in the polypropylene buffer gasket during the transportation process is solved, and efficient gasket conveying and cleaning effects are achieved.

CN120057594AInactive Publication Date: 2025-05-30GUANGDE TONGDE ELECTRIC EQUIP CO LTD
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Patent Information

Application Number
CN202510420265.5
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-03
Publication Date
2025-05-30
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

In the prior art, silicone oil remains on the surface of the buffer gasket made of polypropylene after demolding, causing the silicone oil to adhere to the conveying channel and the inner wall of the equipment during the conveying process, resulting in the problem of degradation of conveying efficiency.

Method used

A new energy vehicle accessories transportation device is designed, a suspended conveying pipeline is used and water is injected into the pipeline, and the gasket is transported by water flow. At the same time, by setting rotating blades and regulating components in the conveying pipeline, air bubbles are suppressed and residues on the surface of the gasket are cleaned.

Benefits of technology

Effective protection and cleaning of gaskets is achieved, conveying efficiency is improved, and workshop space is saved.

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Abstract

The invention relates to the technical field of suspension conveying equipment, in particular to a new energy automobile part transporting device which comprises a conveying pipe and a suspension rod, the conveying pipe is fixed to the position above a workshop through the suspension rod, and the conveying pipe is filled with water; and an inner pipe is fixed to the position close to the upstream position of the conveying pipe through two mounting bases, one end of the inner pipe extends to the outer side of the conveying pipe, an outer pipe is rotationally arranged on the outer side of the inner pipe, and the adjusting and controlling assemblies correspond to the rotating blades in a one-to-one mode. According to the device, firstly, a suspension type conveying pipeline is adopted, the space of a workshop is effectively saved, secondly, water is injected into the obliquely-arranged pipeline, gaskets floating in the pipeline are conveyed through circulating flowing of the water in the pipeline, the gaskets are conveyed by using the water as a carrier, the effect of protecting the gaskets is achieved, meanwhile, in the conveying process, the conveying efficiency is improved, and the service life of the gaskets is prolonged. And the residual release agent on the gasket can be well treated.
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Description

Technical Field

[0001] The present invention relates to the technical field of suspension conveying equipment, and particularly relates to a transportation device for new energy vehicle parts. Background Art

[0002] Among new energy vehicle parts, there are buffer gaskets made of polypropylene material. The density of this material is less than that of water and it floats on the water surface.

[0003] There is a prior art with a publication number of CN118458255A and a name of "A Gasket Conveying System and Conveying Method", which includes a substrate for placing circular gaskets and a workbench for supporting the substrate. The middle part of the circular gasket includes an integrally formed central hole. The substrate is provided with a feeding structure for stacking circular gaskets in layers. The feeding structure includes a sliding groove opened on the substrate for accommodating circular gaskets. Above the substrate, there is a feeding component for providing circular gaskets into the sliding groove. Below the substrate, there is a bottom support seat fixedly connected. On the upper surface of the bottom support seat, there is a guide post detachably connected. Above the transverse movement component, there is a component for adsorbing and fixing the circular gasket above the guide post and sleeving and moving the component on the guide post, realizing the automatic conveying process of the circular gasket, improving the conveying stability and efficiency. At the same time, a reaction force can be applied to the circular gasket, effectively preventing the situation where the gasket is stuck on the guide post due to deflection or inclination, thus ensuring that the gasket can fall smoothly and continue to be conveyed.

[0004] Although the prior art can stably convey the gaskets, for the buffer gaskets made of polypropylene, after demolding with a release agent, silicone oil will remain on their surfaces. In the process of conveying, these silicone oils will adhere to the conveying channels and the inner walls of the equipment, resulting in the problem of reduced conveying efficiency. Summary of the Invention

[0005] The purpose of the present invention is to solve the disadvantages existing in the prior art, and to propose a transportation device for new energy vehicle parts.

[0006] In order to achieve the above purpose, the present invention adopts the following technical solutions: Design a transportation device for new energy vehicle parts, including a conveying pipe and a suspension rod. The conveying pipe is fixed above the workshop through the suspension rod. The inside of the conveying pipe is filled with water, and the conveying pipe is inclined: Near the upstream position of the conveying pipe, an inner pipe is fixed through two mounting seats, and one end of the inner pipe extends to the outside of the conveying pipe. An outer pipe is rotatably arranged on the outside of the inner pipe. A plurality of rotating blades are evenly installed in the circumferential position of the outer pipe. When the conveying pipe is filled with water, the liquid level height of the water is flush with the position height of the outer pipe; A plurality of groups of brackets are arranged on the outer pipe, and a regulating component is arranged on each bracket for suppressing the number of bubbles, and each group of regulating components corresponds to a rotating blade one by one.

[0007] Preferably, the outside of the conveying pipe is connected to the outer frame through a connecting block, the outer frame wraps the conveying pipe, and the suspension rod passes through the outer frame.

[0008] Preferably, a plurality of first liquid outlet holes are evenly arranged on the inner pipe, a plurality of second liquid outlet holes are evenly arranged on the outer pipe, the first liquid outlet holes correspond to the second liquid outlet holes one by one, and the second liquid outlet holes are located between adjacent rotating blades.

[0009] Preferably, the regulating component includes a straight rod, a sleeve and blades; The straight rod is connected between the brackets on both sides, the sleeve is rotatably arranged on the outside of the straight rod, and the blades are distributed in a circumferential array on the circumferential position of the sleeve.

[0010] Preferably, when the blades rotate, there is a gap between the blades and the rotating blades.

[0011] Preferably, tooth grooves are arranged on the outer surface of the blades.

[0012] Preferably, a water tank is fixedly installed at the downstream position of the conveying pipe through a connecting frame, a water conveying pipe is connected to the water tank, one end of the water conveying pipe is connected to a water supply device, a plurality of spray frames are symmetrically arranged on both sides of the water tank, and nozzles are arranged at the lower ends of the spray frames.

[0013] Preferably, the position height of the nozzles is higher than the position height of the outer pipe.

[0014] Preferably, one end of the inner pipe is connected to a liquid supply device to supplement cleaning agents and surfactants into the inner pipe.

[0015] Preferably, the vertical cross-section of the conveying pipe is semi-circular, and both ends of the conveying pipe are closed.

[0016] A new energy vehicle parts transportation device proposed by the present invention has the beneficial effects that: for this new energy vehicle parts transportation device, first, a suspended conveying pipeline is adopted, effectively saving the space of the workshop. Secondly, water is injected into the inclined pipeline, and through the circulating flow of water in the pipeline, the gaskets floating in the pipeline are conveyed. Using water as a carrier to convey the gaskets achieves the effect of protecting the gaskets. At the same time, during the conveying process, the release agents remaining on the gaskets can also be well treated. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1 is a schematic structural diagram of a new energy vehicle parts transportation device proposed by the present invention.

[0018] Figure 2 This is a schematic structural diagram of the conveying pipe of a transportation device for new energy vehicle parts proposed by the present invention.

[0019] Figure 3 This is a schematic structural diagram of the water tank of a transportation device for new energy vehicle parts proposed by the present invention.

[0020] Figure 4 This is a schematic structural diagram of the inner pipe and the outer pipe of a transportation device for new energy vehicle parts proposed by the present invention.

[0021] Figure 5 This is a schematic structural diagram of the rotating blade and the outer pipe of a transportation device for new energy vehicle parts proposed by the present invention.

[0022] Figure 6 It is Figure 5 a schematic structural diagram of part A of a transportation device for new energy vehicle parts proposed.

[0023] Figure 7 This is a schematic structural diagram of the regulation component of a transportation device for new energy vehicle parts proposed by the present invention.

[0024] In the figure: outer frame 1, suspension rod 2, connection block 3, conveying pipe 4, water tank 5, spraying frame 6, nozzle 7, mounting seat 8, inner pipe 9, bracket 10, regulation component 11, straight rod 111, sleeve 112, blade 113, outer pipe 12, rotating blade 13, water delivery pipe 14, connection frame 15, first liquid outlet hole 16, second liquid outlet hole 17, tooth groove 18. Specific embodiments

[0025] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments.

[0026] Embodiment 1, referring to Figures 1-5 , a transportation device for new energy vehicle parts, including a conveying pipe 4 and a suspension rod 2. The conveying pipe 4 is fixed above the workshop through the suspension rod 2. The inside of the conveying pipe 4 is filled with water, and the conveying pipe 4 is inclined. The outside of the conveying pipe 4 is connected to the outer frame 1 through the connection block 3. The outer frame 1 wraps the conveying pipe 4, and the suspension rod 2 passes through the outer frame 1. The vertical cross-section of the conveying pipe 4 is semi-circular, and both ends of the conveying pipe 4 are closed.

[0027] An inner pipe 9 is fixed at an upstream position close to the conveying pipe 4 through two mounting seats 8, and one end of the inner pipe 9 extends to the outside of the conveying pipe 4. An outer pipe 12 is rotatably arranged on the outside of the inner pipe 9. A plurality of rotating blades 13 are evenly installed at the circumferential position of the outer pipe 12. When the conveying pipe 4 is filled with water, the liquid level height of the water is flush with the position height of the outer pipe 12.

[0028] A plurality of groups of brackets 10 are arranged on the outer pipe 12. A number of first liquid outlet holes 16 are evenly formed in the inner pipe 9. A number of second liquid outlet holes 17 are evenly formed in the outer pipe 12. The first liquid outlet holes 16 and the second liquid outlet holes 17 correspond to each other one by one, and the second liquid outlet holes 17 are located between adjacent two rotating blades 13. One end of the inner pipe 9 is connected to a liquid supply device to supplement cleaning agent and surfactant into the inner pipe 9.

[0029] The conveying pipe 4 and the outer frame 1 are fixed through a connecting block 3. At the same time, the conveying pipe 4 and the outer frame 1 are installed on a mounting rack above the workshop through a plurality of suspension rods 2. The conveying pipe 4 is inclined, and the slope is 3 - 5°.

[0030] Secondly, the buffer gaskets demolded from the mold are poured at the upstream of the conveying pipe 4. Since the buffer gaskets made of polypropylene are used in switch cabinets and the density of the buffer gaskets is smaller than that of water, after entering the inside of the conveying pipe 4, these buffer gaskets will float on the water surface inside the conveying pipe 4 and be conveyed along with the flowing water.

[0031] When the buffer gaskets are demolded, they need the help of a demolding agent, so silicone oil or even debris will adhere to the outer surface of the gaskets. At this time, an appropriate amount of cleaning agent needs to be added to the inside of the conveying pipe 4. Since the water inside the conveying pipe 4 is always in a circulating flow state, the cleaning agent is not suitable to be added directly in a one-time manner, because as the water flows, the cleaning agent will be discharged from the conveying pipe 4 one after another. Therefore, a fixed inner pipe 9 and a rotatable outer pipe 12 are arranged at a place close to the upstream of the conveying pipe 4. When the flowing water impacts the rotating blades 13 outside the outer pipe 12, the rotating blades 13 obtain kinetic energy and transfer the kinetic energy to the outer pipe 12, enabling the outer pipe 12 to rotate. When the outer pipe 12 rotates on the outside of the inner pipe 9, the second liquid outlet holes 17 on the outer pipe 12 will intermittently coincide with the first liquid outlet holes 16 on the inner pipe 9. At this time, the cleaning agent inside the inner pipe 9 will overflow through the second liquid outlet holes 17 and the first liquid outlet holes 16 and come into contact with the water inside the conveying pipe 4. In this way, with the help of the cleaning agent, it is beneficial to clean the debris and silicone oil adhering to the outer surface of the gaskets.

[0032] Since the density of the gasket is less than the density of water, the gasket floats on the surface of the water. In this case, the local area above the gasket cannot be cleaned during transportation. Therefore, another function of arranging the vanes 13 on the outer surface of the outer tube 12 is to press the passing gasket down below the liquid level so that the liquid level submerges the gasket, so that the gasket is in full contact with the cleaning agent in the water. The vanes 13 rotate clockwise, which will cause the passing gaskets to pass through the bottom of the outer tube 12. During the passing process, the gaskets will contact the vanes 13, which can remove debris from the gaskets and sink them to the bottom of the conveying pipe 4.

[0033] Polypropylene material has the characteristic of being hydrophobic, and the surface substances adhere more firmly, which will cause the cleaning agent to not be able to smoothly combine with the surface of the gasket. When the surfactant is added to the inner tube 9 and mixed in the water, the surface tension of the liquid will be significantly reduced, and the molecular arrangement of the liquid surface will be changed, so that the liquid can be spread and wetted more easily on the surface of the gasket. With the turning of the rotor 13 in the water, the liquid surface flow is more active, which significantly improves the combination between the surfactant and the gasket.

[0034] Example 2, reference Figures 5-7 The difference between this embodiment and embodiment 1 is that a regulating component 11 is provided on the bracket 10 for suppressing the number of bubbles, and each group of regulating components 11 corresponds to the rotating blades 13 one by one, and the regulating component 11 includes a straight rod 111, a sleeve 112 and a blade 113.

[0035] The straight rod 111 is connected between the brackets 10 on both sides, the sleeve 112 is rotatably arranged on the outside of the straight rod 111, and the blades 113 are distributed in the circumferential position of the sleeve 112 in an annular array.

[0036] When the blade 113 rotates, there is a gap between the blade 113 and the rotor 13 , and a tooth groove 18 is formed on the outer surface of the blade 113 .

[0037] When the surfactant is added, a large amount of foam will be generated, which will reduce the cleaning effect and also cause a large amount of foam to overflow the outside of the delivery pipe 4. To this end, a bracket 10 is arranged outside the outer tube 12, and a straight rod 111 is fixed by the bracket 10. A plurality of sleeves 112 are rotatably arranged outside the straight rod 111, and corresponding blades 113 are arranged outside the sleeves 112. During the rotation of the blades 13, the blades 113 are actually also subjected to the impact force of water, so that the blades 113 and the sleeves 112 can achieve independent rotation. When the sharp tooth grooves 18 on the outer surface of the blades 113 come into contact with the foam, the foam will be broken under the action of shear force, thereby effectively achieving the defoaming effect.

[0038] Example 3, referenceFigure 3 , the difference between this embodiment and Embodiment 1 and Embodiment 2 is that a water tank 5 is fixedly installed at the downstream position of the conveying pipe 4 through a connecting frame 15. A water delivery pipe 14 is connected to the water tank 5, and one end of the water delivery pipe 14 is connected to a water supply device. A plurality of spray racks 6 are symmetrically arranged on both sides of the water tank 5. Spray nozzles 7 are arranged at the lower ends of the spray racks 6, and the position height of the spray nozzles 7 is higher than the position height of the outer pipe 12.

[0039] Since the water in the conveying pipe 4 is always in a flowing state, the generated foam will leave the rotating blade 13 and transfer downstream after a period of time.

[0040] Therefore, at the rear end position of the conveying pipe 4, a water tank 5 is fixed through a connecting frame 15. The water tank 5 is connected to a plurality of spray racks 6. With the pressure of the pump body, water is sprayed out from the spray nozzles 7, and the water sprayed out from the spray nozzles 7 is in the form of water mist. In this way, when the water mist contacts the foam, the foam will be broken. At the same time, the position height of the spray nozzles 7 is inside the conveying pipe 4, preventing the water mist from directly spraying outside the conveying pipe 4. Two pump bodies are respectively arranged at both ends of the conveying pipe 4 to respectively realize water injection and pumping into the conveying pipe 4, and the sum of the water injection rate and the spraying rate of the spray nozzles 7 is consistent with the pumping rate, ensuring that the liquid level height inside the conveying pipe 4 always remains in a stable state.

[0041] The working principle of this device is as follows: The conveying pipe 4 is fixed to the outer frame 1 through a connecting block 3. At the same time, the conveying pipe 4 and the outer frame 1 are installed on the mounting rack above the workshop through multiple suspension rods 2. The conveying pipe 4 is inclined, and the slope is 3 - 5°.

[0042] Secondly, the buffer gaskets demolded from the mold are poured upstream of the conveying pipe 4. Since the buffer gaskets made of polypropylene are used in switch cabinets and the density of the buffer gaskets is smaller than that of water, after entering the inside of the conveying pipe 4, these buffer gaskets will float on the water surface inside the conveying pipe 4 and be conveyed along with the flowing water.

[0043] When the buffer gasket is demoulded, it needs the help of a demoulding agent, so silicone oil or even debris will adhere to one side of the outer surface of the gasket. At this time, it is necessary to add an appropriate cleaning agent to the inside of the delivery pipe 4. Since the water inside the delivery pipe 4 is always in a circulating state, the cleaning agent is not suitable for direct one-time addition, because as the water flows, the cleaning agent will be discharged from the delivery pipe 4 one after another. Therefore, a fixed inner pipe 9 and a rotatable outer pipe 12 are set near the upstream of the delivery pipe 4. When the flowing water hits the outside of the outer pipe 12, the cleaning agent is added to the delivery pipe 4. When the blades 13 rotate, the blades 13 obtain kinetic energy and transfer the kinetic energy to the outer tube 12, so that the outer tube 12 rotates. When the outer tube 12 rotates on the outside of the inner tube 9, the second liquid outlet hole 17 on the outer tube 12 will intermittently overlap with the first liquid outlet hole 16 on the inner tube 9. At this time, the cleaning agent inside the inner tube 9 will overflow through the second liquid outlet hole 17 and the first liquid outlet hole 16 and contact with the water inside the delivery pipe 4. In this way, with the help of the cleaning agent, it is helpful to clean up the debris and silicone oil adhering to the outer surface of the gasket.

[0044] Since the density of the gasket is less than the density of water, the gasket floats on the surface of the water. In this case, the local area above the gasket cannot be cleaned during transportation. Therefore, another function of arranging the vanes 13 on the outer surface of the outer tube 12 is to press the passing gasket down below the liquid level so that the liquid level submerges the gasket, so that the gasket is in full contact with the cleaning agent in the water. The vanes 13 rotate clockwise, which will cause the passing gaskets to pass through the bottom of the outer tube 12. During the passing process, the gaskets will contact the vanes 13, which can remove debris from the gaskets and sink them to the bottom of the conveying pipe 4.

[0045] Polypropylene material has the characteristic of being hydrophobic, and the surface substances adhere more firmly, which will cause the cleaning agent to not be able to smoothly combine with the surface of the gasket. When the surfactant is added to the inner tube 9 and mixed in the water, the surface tension of the liquid will be significantly reduced, and the molecular arrangement of the liquid surface will be changed, so that the liquid can be spread and wetted more easily on the surface of the gasket. With the turning of the rotor 13 in the water, the liquid surface flow is more active, which significantly improves the combination between the surfactant and the gasket.

[0046] When the surfactant is added, a large amount of foam will be generated, which will reduce the cleaning effect and also cause a large amount of foam to overflow the outside of the delivery pipe 4. Therefore, a bracket 10 is provided outside the outer pipe 12. The straight rod 111 is fixed by the bracket 10. A number of sleeves 112 are rotatably arranged outside the straight rod 111. At the same time, corresponding blades 113 are arranged outside the sleeves 112. During the rotation of the rotating blade 13, in fact, the blades 113 will also be subjected to the impact force of water. This enables the blades 113 and the sleeves 112 to rotate independently. When the sharp tooth grooves 18 on the outer surface of the blades 113 contact the foam, the foam will break under the action of shear force, thus effectively achieving the defoaming effect.

[0047] Since the water in the conveying pipe 4 is always in a flowing state, the generated foam will leave the rotating blade 13 and transfer downstream after a period of time.

[0048] Therefore, at the rear end of the conveying pipe 4, a water tank 5 is fixed by a connecting frame 15. The water tank 5 is connected to a plurality of spray brackets 6. With the pressure of the pump body, water is sprayed out from the nozzles 7, and the water sprayed out from the nozzles 7 is in the form of water mist. In this way, the water mist contacting the foam will cause the foam to break. At the same time, the position height of the nozzles 7 is inside the conveying pipe 4 to prevent the water mist from directly spraying outside the conveying pipe 4. Two pump bodies are respectively arranged at both ends of the conveying pipe 4 to respectively realize water injection into and pumping out of the conveying pipe 4, and the sum of the water injection rate and the spraying rate of the nozzles 7 is consistent with the pumping rate, ensuring that the liquid level height inside the conveying pipe 4 always remains in a stable state.

[0049] The above is only a preferred specific embodiment of the present invention, but the protection scope of the present invention is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present invention, according to the technical solution and inventive concept of the present invention, makes equivalent substitutions or changes, and should be covered by the protection scope of the present invention.

Claims

1. A new energy automobile parts transportation device, comprising a delivery pipe (4) and a suspension rod (2), wherein the delivery pipe (4) is fixed to a position above a workshop by the suspension rod (2), the delivery pipe (4) is filled with water, and the delivery pipe (4) is arranged at an angle, characterized in that : An inner tube (9) is fixed via two mounting seats (8) at an upstream position close to the delivery tube (4), and one end of the inner tube (9) extends to the outside of the delivery tube (4). An outer tube (12) is rotatably arranged on the outside of the inner tube (9), and a plurality of rotating blades (13) are evenly mounted at circumferential positions of the outer tube (12). When the delivery tube (4) is filled with water, the height of the water liquid level is flush with the height of the position of the outer tube (12); A plurality of groups of brackets (10) are arranged on the outer tube (12), and each of the brackets (10) is provided with a regulating component (11) for suppressing the number of bubbles, and each group of regulating components (11) corresponds to a rotating blade (13) one by one.

2. The new energy automobile parts transportation device according to claim 1, characterized in that: The outside of the delivery pipe (4) is connected to the outer frame (1) via a connecting block (3); the outer frame (1) wraps the delivery pipe (4), and the hanging rod (2) passes through the outer frame (1).

3. The new energy automobile parts transportation device according to claim 2, characterized in that: The inner tube (9) is evenly provided with a plurality of first liquid outlet holes (16), and the outer tube (12) is evenly provided with a plurality of second liquid outlet holes (17), the first liquid outlet holes (16) correspond to the second liquid outlet holes (17) one by one, and the second liquid outlet holes (17) are located between two adjacent rotating blades (13).

4. The new energy automobile parts transportation device according to claim 3, characterized in that: The regulating component (11) comprises a straight rod (111), a sleeve (112) and a blade (113); The straight rod (111) is connected between the brackets (10) on both sides, the sleeve (112) is rotatably arranged outside the straight rod (111), and the blades (113) are distributed in a circular array at circumferential positions of the sleeve (112).

5. The new energy automobile parts transportation device according to claim 4, characterized in that: When the blade (113) rotates, a gap exists between the blade (113) and the rotating blade (13).

6. The new energy automobile parts transportation device according to claim 5, characterized in that: Tooth grooves (18) are provided on the outer surface of the blade (113).

7. The new energy automobile parts transportation device according to claim 6, characterized in that: A water tank (5) is fixedly mounted at a downstream position of the delivery pipe (4) via a connecting frame (15); a water delivery pipe (14) is connected to the water tank (5); one end of the water delivery pipe (14) is connected to a water supply device; a plurality of spray frames (6) are symmetrically arranged on both sides of the water tank (5); and a spray head (7) is arranged at the lower end of the spray frame (6).

8. The new energy automobile parts transportation device according to claim 7, characterized in that: The height of the nozzle (7) is higher than the height of the outer tube (12).

9. The new energy automobile parts transportation device according to claim 8, characterized in that: One end of the inner tube (9) is connected to a liquid supply device to replenish the cleaning agent and the surfactant into the inner tube (9).

10. The new energy automobile parts transportation device according to claim 1, characterized in that: The vertical cross-section of the delivery pipe (4) is semicircular, and both ends of the delivery pipe (4) are closed.

Citation Information

Patent Citations

  • Gasket conveying system and method

    CN118458255A