Ceramic product conveying device
By designing a ceramic transport device with an outer shell, top cover, buffer layer, and inflatable buffer components, the problem of insufficient protection in traditional ceramic transport methods has been solved, achieving efficient protection and safe transport of ceramic products.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-03
- Publication Date
- 2026-03-24
AI Technical Summary
Traditional methods of transporting ceramics are insufficient in terms of protection during long-distance transport and complex road conditions, making ceramic products easily damaged and increasing production costs and after-sales risks.
A ceramic transport device was designed, comprising a shell, a top cover, a buffer layer, an inflatable buffer assembly, and snap-fit connections. The buffer layer absorbs impact energy, the inflatable buffer assembly securely holds the ceramic product, the air nozzle adjusts the tightness, the rubber rod enhances the buffering, and the snap-fit connections ensure stability.
It effectively reduces the risk of damage to ceramic products during transportation, improves the safety and convenience of transportation, and enhances the structural stability and functional integrity of the equipment.
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Figure CN224029729U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to transportation technical field, concretely relates to a ceramic product transportation device. BACKGROUND
[0002] In the production, sale and use process of ceramic products, the transportation link is very important. Because of the fragile and easy-to-break characteristics of ceramic products, there are higher requirements for the transportation conditions. The traditional ceramic transportation mode adopts simple paper box or wooden box packaging, and only a small amount of buffer materials such as paper scraps and foam blocks are filled inside. This packaging mode is seriously insufficient in protection ability when facing long-distance transportation, complex road conditions and frequent loading and unloading. The bumps and vibrations in the transportation process and accidental collisions can easily cause cracks, gaps and even breakage of ceramic products, greatly affecting the product quality and increasing the production cost and after-sales risk of enterprises. With the large-scale development of the ceramic industry, the demand for efficient and reliable ceramic transportation devices is increasingly urgent, and new transportation technology solutions need to be developed to ensure the integrity and safety of ceramic products during transportation. SUMMARY
[0003] The utility model provides a ceramic product transportation device for the purpose of solving the problems in the background art, which can effectively improve the service life of the ceramic product transportation device.
[0004] The specific technical solutions are as follows:
[0005] A ceramic product transportation device includes an outer shell, a top cover mounted on the upper end of the outer shell, and a buffer layer arranged inside the outer shell and the top cover;
[0006] The inner shell, the middle shell and the outer shell are sealingly connected, and the space between the inner shell and the middle shell is a clamping space.
[0007] The inner shell, the middle shell and the outer shell are sealingly connected, and the space between the inner shell and the middle shell is a clamping space.
[0008] The inner shell, the middle shell and the outer shell are sealingly connected, and the space between the inner shell and the middle shell is a clamping space.
[0009] As a preferred scheme of the utility model, a hole is formed in the top cover and the buffer layer for the air nozzle to pass through.
[0010] As a preferred scheme of the utility model, a hole is formed in the top cover and the buffer layer for the air nozzle to pass through.
[0011] As a preferred scheme of the utility model, the left and right sides of the top of the inner bag are integrally formed with at least two supporting rods, and the supporting rods abut against the inner wall of the outer bag.
[0012] As a preferred scheme of the utility model, the left and right sides of the top cover are provided with buckle bodies through bolts, and the top of the shell is provided with a buckle head matched with the buckle bodies.
[0013] As a preferred scheme of the utility model, the left and right sides of the bottom of the top cover are integrally formed with inserting rods, and the top of the shell is provided with inserting grooves for the inserting rods.
[0014] As a preferred scheme of the utility model, the bottom of the inserting rod is provided with an annular cutout.
[0015] As a preferred scheme of the utility model, the buffer layer is a rubber layer or a foam layer.
[0016] The utility model has the following beneficial effects:
[0017] The shell and the top cover buffer: the buffer layer in the shell and the top cover can effectively absorb the impact energy of external collision and jolt, and reduce the risk of damage of the ceramic product.
[0018] The inflating buffer assembly: the inner bag, the middle bag, the outer bag and the inflating cavity of the inflating buffer assembly can absorb the shock impact, tightly clamp the space, stably clamp the ceramic wall, reduce the displacement, and the communication design can adjust the tightness to adapt to different ceramics.
[0019] The air nozzle function: the air nozzle serves as a valve core, facilitates the inflation and deflation of the inner bag, adjusts the clamping force, and facilitates the loading and unloading of the ceramic and the storage device.
[0020] The hole function: the holes on the top cover and the buffer layer provide a passage for the air nozzle to pass out, ensure the integrity of the device structure and the realization of the function.
[0021] The rubber rod buffer: the rubber rod on the outer wall of the outer bag can absorb the external collision impact force through elastic deformation, and enhance the buffer capacity of the outer bag.
[0022] The supporting rod supports: the supporting rod on the top of the inner bag supports the inner bag to maintain the shape, ensures the stability of the clamping space, and enhances the structural stability of the assembly.
[0023] The buckle connection: the buckle body of the top cover cooperates with the buckle head of the shell, facilitates the tight connection and opening of the top cover and the shell, ensures the transportation safety and the loading and unloading convenience.
[0024] The inserting rod and the inserting groove are matched, which enhances the horizontal stability of the connection between the top cover and the shell. BRIEF DESCRIPTION OF DRAWINGS
[0025] Figure 1 A front view of the ceramic product transportation device according to the embodiment of the present application is shown in the figure.
[0026] Figure 2 A structure diagram of the inner capsule according to the embodiment of the present application is shown in the figure.
[0027] Figure 3 An enlarged view of part A of the front view of the ceramic product transportation device according to the embodiment of the present application is shown in the figure.
[0028] In the figure:
[0029] 100, housing; 110, top cover; 120, buffer layer; 130, hole; 140, buckle body; 141, buckle head; 150, insertion rod; 151, annular cutout; 160, insertion slot; 200, inner capsule; 201, air nozzle; 202, support rod; 210, middle capsule; 211, clamping space; 220, outer capsule; 221, inflation cavity; 230, rubber rod 。 DETAILED DESCRIPTION
[0030] The technical solutions of the present application will be further described below in combination with the drawings and through specific embodiments.
[0031] It should be understood that the drawings are only used for illustrative description, and the representation is only a schematic diagram, not a physical diagram, and cannot be understood as a limitation on the present patent; in order to better illustrate the embodiments of the present application, some components in the drawings may be omitted, enlarged or reduced, and do not represent the size of the actual product; for those skilled in the art, it is understandable that some well-known structures and their descriptions in the drawings may be omitted.
[0032] The same or similar reference numerals in the drawings of the embodiments of the present application correspond to the same or similar components; in the description of the present application, it should be understood that if the terms "upper", "lower", "left", "right", "inner", "outer" and the like indicate the orientation or positional relationship shown in the drawings, they are only for the convenience of describing the present application and simplifying the description, and do not indicate or imply that the devices or elements referred to must have a specific orientation, be constructed and operated in a specific orientation, therefore the terms describing the positional relationship in the drawings are only used for illustrative description, and cannot be understood as a limitation on the present patent, for those skilled in the art, the specific meaning of the above terms can be understood according to the specific circumstances.
[0033] In the description of the utility model, unless another explicit provision and limitation, if the connection between the components appears the term "connection" and the like indicates the connection relationship, the term should be understood broadly, for example, it can be fixed connection, can be detachable connection, or integrated; it can be mechanical connection, or electrical connection; it can be directly connected, or indirectly connected through intermediate medium, it can be the communication inside two components or the interaction relationship of two components. For ordinary skilled in the art, the specific meaning of the above-mentioned term in the utility model can be understood according to specific circumstances.
[0034] Embodiment one
[0035] As Figures 1-3 The utility model discloses a ceramic product transport device, including shell 100, the upper end of shell 100 is installed with top 110, the inside of shell 100 and top 110 is equipped with buffer layer 120, and buffer layer 120 is rubber layer or foam layer, shell 100 and top 110 constitute the protective housing of transport device. Whether rubber layer or foam layer, buffer layer 120 has good buffering performance, can effectively absorb impact energy when the device is subjected to external collision or jolt in the transportation process, reduces the impact force to the internal ceramic product, reduces the risk of damage of ceramic product due to collision.
[0036] The inside of shell 100 is further equipped with inflatable buffer assembly, and the inflatable buffer assembly includes inner capsule 200, middle capsule 210 and outer capsule 220, the middle capsule 210 and the outer capsule 220 are sealingly connected, the space between them is inflatable cavity 221, the top right side of the inner capsule 200 is in communication with the inside of the inflatable cavity 221, the top right side of the inner capsule 200 is sealingly connected with the top right side of the middle capsule 210, the top left side of the inner capsule 200 is lapped on the top left side of the middle capsule 210, the space between the inner capsule 200 and the middle capsule 210 is clamping space 211, and the inflatable buffer assembly further enhances the buffering effect. The inflatable cavity 221 has certain elasticity after inflation, can absorb the vibration and impact in transportation. The clamping space 211 formed by the inner capsule 200 and the middle capsule 210 can stably clamp the ceramic wall, so that the ceramic is kept relatively stable during transportation, reduces displacement, and reduces the possibility of damage caused by shaking and collision. Meanwhile, the communication design of the inner capsule 200 and the inflatable cavity 221 can adjust the tightness between the inner capsule 200 and the middle capsule 210 according to actual transportation demand, better adapt to ceramic products of different sizes and weights.
[0037] The inner cavity 200 is communicated with an air nozzle 201, which is a valve core. The air nozzle 201 is used for inflating and deflating the inner cavity 200. Before transportation, the inner cavity 200 can be inflated through the air nozzle 201 to adjust the air pressure of the inner cavity 200, so as to change the clamping force between the inner cavity 200 and the middle cavity 210, and adapt to different ceramic products. After transportation, the air nozzle 201 can also be used for deflation, so as to facilitate taking out the ceramic products and storing the transportation device.
[0038] A hole 130 is formed in the top cover 110 and the buffer layer 120, and the air nozzle 201 passes through the hole 130. The hole 130 provides a passage for the air nozzle 201 to pass out, so that the air nozzle 201 can be conveniently inflated and deflated without affecting the close cooperation between the top cover 110 and the shell 100 and the buffering function of the buffer layer 120, thereby ensuring the integrity and functionality of the transportation device structure.
[0039] The outer wall of the outer cavity 220 is integrally formed with a plurality of rubber rods 230. The rubber rods 230 have elasticity. When the transportation device is subjected to external impact, the rubber rods 230 first contact external objects and absorb part of the impact force through their elastic deformation, thereby further enhancing the buffering capacity of the outer cavity 220 and providing more comprehensive protection for the ceramic products inside, reducing the risk of damage caused by external impact during transportation.
[0040] At least two support rods 202 are integrally formed on the left and right sides of the top of the inner cavity 200. The support rods 202 abut against the inner wall of the outer cavity 220. The support rods 202 support the inner cavity 200, so that the inner cavity 200 maintains a stable shape after being inflated, and ensures that the clamping space 211 can stably clamp the ceramic wall. At the same time, the support rods 202 abut against the inner wall of the outer cavity 220, thereby enhancing the stability of the structure between the inner cavity 200, the middle cavity 210 and the outer cavity 220. During transportation, the relative displacement between the inner cavity 200, the middle cavity 210 and the outer cavity 220 caused by vibration or impact is prevented, and the ceramic products are better protected.
[0041] The buckle body 140 is installed on the left and right sides of the top cover 110 through bolts, and the buckle head 141 is installed on the top of the shell 100 and cooperates with the buckle body 140. The cooperation of the buckle body 140 and the buckle head 141 facilitates the close connection of the top cover 110 and the shell 100. During transportation, the sealing and integrity of the device are ensured, and the internal ceramic products are prevented from being damaged due to loosening of the top cover 110. At the same time, when the device needs to be opened, the buckle can be easily disengaged, and the loading and unloading operation of the ceramic products can be performed.
[0042] The left and right sides of the bottom of the top cover 110 are integrally formed with insertion rods 150, and the top of the shell 100 is provided with insertion grooves 160 for the insertion of the insertion rods 150. The bottom of the insertion rod 150 is provided with an annular cutout 151. The cooperation of the insertion rod 150 and the insertion groove 160 further enhances the stability of the connection between the top cover 110 and the shell 100. During transportation, the horizontal displacement of the top cover 110 is prevented, ensuring the stability of the entire transportation device structure and providing reliable protection for the internal ceramic products. The annular cutout 151 allows the insertion rod 150 to be easily inserted into the interior of the insertion groove 160.
[0043] Therefore, the ceramic product transportation device has the following advantages:
[0044] Shell and top cover buffer: The buffer layer 120 in the shell 100 and the top cover 110 can effectively absorb the impact energy of external collisions and bumps, reducing the risk of damage to the ceramic products.
[0045] Inflatable buffer assembly: The inner capsule 200, middle capsule 210, outer capsule 220, and inflatable cavity 221 of the inflatable buffer assembly work together to absorb shock and impact, tightly hold the ceramic wall, reduce displacement, and the communication design can adjust the tightness to adapt to different ceramics.
[0046] Air nozzle function: The air nozzle 201 acts as a valve core, facilitating inflation and deflation of the inner capsule 200, adjusting the clamping force, and facilitating the loading and unloading of ceramics and the storage device.
[0047] Hole function: The holes 130 on the top cover 110 and the buffer layer 120 provide a passage for the air nozzle 201 to exit, ensuring the integrity of the device structure and the realization of its functions.
[0048] Rubber rod buffer: The rubber rod 230 on the outer wall of the outer capsule 220 absorbs external collision impact force through elastic deformation, enhancing the buffer capacity of the outer capsule.
[0049] Supporting rod support: The supporting rod 202 at the top of the inner capsule 200 supports the inner capsule to maintain its shape, ensuring the stability of the clamping space and enhancing the structural stability of the assembly.
[0050] Buckle connection: The buckle body 140 of the top cover 110 cooperates with the buckle head 141 of the shell 100, facilitating the tight connection and opening of the top cover and the shell, ensuring transportation safety and convenient loading and unloading.
[0051] Insertion rod insertion groove stability: The insertion rod 150 at the bottom of the top cover 110 cooperates with the insertion groove 160 at the top of the shell 100, enhancing the horizontal stability of the connection between the top cover and the shell.
[0052] Work flow:
[0053] Preparation before transportation
[0054] The ceramic product is placed in the clamping space 211 of the inflatable cushioning assembly, ensuring that the ceramic wall is firmly clamped.
[0055] By inflating the inner capsule 200 through the air nozzle 201, the gas flows to the Figure 1 As shown, according to the size and weight of the ceramic product, the air pressure of the inner capsule 200 is adjusted to change the clamping force between it and the middle capsule 210, so that the ceramic product remains relatively stable during transportation.
[0056] Device assembly
[0057] Align the insertion rod 150 at the bottom of the top cover 110 with the insertion slot 160 at the top of the shell 100, and ensure that the insertion rod 150 is fully inserted into the insertion slot 160. The annular cutout 151 makes it easier to insert the insertion rod 150.
[0058] The buckle body 140 on both sides of the top cover 110 is buckled with the buckle head 141 at the top of the shell 100, ensuring that the top cover 110 is tightly connected with the shell 100, ensuring the sealing and integrity of the device.
[0059] Transportation process:
[0060] During transportation, when the device is subjected to external impact or jolt, the buffer layer 120 in the shell 100 and the top cover 110 first absorbs the impact energy, reducing the impact force on the internal ceramic product.
[0061] The inflatable cavity 221 of the inflatable cushioning assembly has elasticity after inflation, further absorbing the vibration and impact during transportation, and the clamping space 211 formed by the inner capsule 200 and the middle capsule 210 firmly clamps the ceramic wall, reducing the displacement of the ceramic product.
[0062] The rubber rod 230 on the outer wall of the outer capsule 220 deforms elastically to absorb part of the impact force when subjected to external impact, enhancing the cushioning ability of the outer capsule 220.
[0063] The support rod 202 at the top of the inner capsule 200 supports the inner capsule 200, keeping it in a stable shape after inflation, ensuring that the clamping space 211 can stably clamp the ceramic wall, while enhancing the stability of the structure between the inner capsule 200, the middle capsule 210 and the outer capsule 220, preventing relative displacement between them due to vibration or impact.
[0064] Transportation ends
[0065] After arriving at the destination, open the buckle body 140 on both sides of the top cover 110, and separate it from the buckle head 141 at the top of the shell 100.
[0066] Lift the top cover 110 upwards and pull out the insertion rod 150 from the insertion slot 160.
[0067] The inner bag 200 is deflated through the air nozzle 201 to reduce the clamping force between the inner bag 200 and the middle bag 210, thereby facilitating the ceramic product to be taken out.
[0068] After the ceramic product is taken out, the transport device can be stored for next use.
[0069] The above is only the preferred embodiment of the present application, and does not limit the implementation and protection scope of the present application. For those skilled in the art, it should be realized that any equivalent replacement and obvious changes made according to the content of the present application and drawings should be included in the protection scope of the present application.
Claims
1. A ceramic article transport apparatus, characterized by, The application relates to a shock-absorbing shell, which comprises a shell (100) and a top cover (110) mounted on the upper end of the shell (100), the inside of the shell (100) and the top cover (110) are both provided with a buffer layer (120); The inside of the shell (100) is further provided with an air-filled buffer assembly; The air-filled buffer assembly comprises an inner capsule (200), a middle capsule (210) and an outer capsule (220), the middle capsule (210) and the outer capsule (220) are sealingly connected, the space between the middle capsule (210) and the outer capsule (220) is an air-filled cavity (221), the top right side of the inner capsule (200) is in communication with the inside of the air-filled cavity (221), the top right side of the inner capsule (200) is sealingly connected with the top right side of the middle capsule (210), the top left side of the inner capsule (200) is arranged on the top left side of the middle capsule (210), and the space between the inner capsule (200) and the middle capsule (210) is a clamping space (211); The inside of the inner capsule (200) is in communication with an air nozzle (201).
2. The ceramic article shipping device of claim 1, wherein, The top cover (110) and the buffer layer (120) are provided with a hole (130) for the air nozzle (201) to pass through.
3. The ceramic article shipping device of claim 1, wherein, The outer wall of the outer capsule (220) is integrally formed with a plurality of rubber rods (230).
4. The ceramic article shipping device of claim 1, wherein, The top of the inner capsule (200) is integrally formed with at least two supporting rods (202) on the left side and the right side, respectively, and the supporting rods (202) abut against the inner wall of the outer capsule (220).
5. The ceramic article shipping device of claim 1, wherein, The left and right sides of the top cover (110) are both provided with a buckle body (140) through bolts, and the top of the shell (100) is provided with a buckle head (141) which is buckled with the buckle body (140).
6. The ceramic article shipping device of claim 1, wherein, The bottom of the top cover (110) is integrally formed with an insertion rod (150) on the left side and the right side, respectively, and the top of the shell (100) is provided with an insertion slot (160) for the insertion rod (150) to insert.
7. The ceramic article shipping device of claim 6, wherein, The bottom of the insertion rod (150) is provided with an annular cutout (151).
8. The ceramic article shipping device of claim 1, wherein, The buffer layer (120) is a rubber layer or a foam layer.