Buffer device of large ceramic bottle conveying mechanism

By introducing vertical and horizontal buffer components into the transportation device, the problem of back-and-forth swaying and collision caused by inertia during the transportation of large ceramic bottles is solved, realizing two-way buffer protection for ceramic bottles and improving transportation safety and integrity rate.

CN223836224UActive Publication Date: 2026-01-27CHONGQING JIAHE CERAMICS CO LTD
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Patent Information

Application Number
CN202520449005.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-14
Publication Date
2026-01-27
Estimated Expiration
2035-03-14

AI Technical Summary

Technical Problem

In the current technology, when the vehicle starts, brakes or accelerates during transportation, large ceramic bottles will sway back and forth due to inertia, causing collisions. Moreover, existing devices are difficult to provide effective cushioning in the horizontal direction.

Method used

A device comprising a transport frame, connectors, and a buffer assembly is designed. The buffer assembly includes a base plate, a placement frame, and vertical and horizontal buffer components. The vertical and horizontal buffer components provide buffering in the vertical and horizontal directions, respectively. The buffer system, consisting of vertical and horizontal telescopic rods, dampers, and springs, dissipates vibration energy and prevents the ceramic bottle from shaking.

Benefits of technology

It effectively reduces the vibration and collision of ceramic bottles during transportation, improves transportation safety and integrity, and ensures bidirectional buffer protection for ceramic bottles in both horizontal and vertical directions.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the field of ceramic product transportation, in particular to a buffering device of a large ceramic bottle transportation mechanism, which comprises a transportation frame, a connecting piece and a buffering assembly, the connecting piece is arranged on one side of the transportation frame, and the buffering assembly comprises a bottom plate, a first connecting component, a placing frame, a vertical buffering component, a side plate, a second connecting component and a horizontal buffering component. The bottom plate is connected with the transportation frame through the first connecting component, the first connecting component supports the bottom plate, the placing frame is connected with the bottom plate through the vertical buffering component, the vertical buffering component supports the placing frame, the side plate is connected with the transportation frame through the second connecting component, the second connecting component supports the side plate, and the horizontal buffering component is connected with the placing frame and the side plate. The problems that in the prior art, when a vehicle is started, braked or accelerated in the transportation process, the ceramic bottle device shakes front and back due to inertia, so that collision occurs, most of the ceramic bottle devices in the prior art can only conduct vertical buffering, and the buffering effect on the horizontal direction is difficult to achieve are solved.
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Description

Technical Field

[0001] This utility model relates to the field of ceramic product transportation, and in particular to a buffer device for a large ceramic bottle transportation mechanism. Background Technology

[0002] Large ceramic bottles are fragile and easily damaged during transportation due to vibration, collisions, and other external forces. Traditional transportation cushioning devices have many shortcomings. Common cushioning materials such as foam and sponge have limited cushioning effect and cannot effectively protect ceramic bottles when subjected to large impacts.

[0003] Existing technology CN218143107U discloses a shock-absorbing transport frame for ceramic transportation, including a base frame. Universal wheels are provided at the four corners of the base frame's bottom. Slide grooves and sliding buttons are provided on the outer surfaces of the base frame. This invention, by setting up a first fixing plate, a second fixing plate, a guide rod, and a collar, allows for the following process when placing ceramics: First, the sliding buttons around the base frame slide downwards along the slide grooves, causing the limiting rod to move downwards and release the limiting on the side plate. Then, the side plate rotates along the pivot on one side of the mounting block, flipping it outwards. The ceramic to be transported is then placed in the placement groove of the base frame. After placement, the first and second fixing plates are sequentially lowered along the guide rod, so that the through grooves on the first and second fixing plates fit over the middle and top of the ceramic, simultaneously fixing all the ceramics on the base frame, greatly improving the efficiency of ceramic placement.

[0004] Regarding the aforementioned shock-absorbing transport racks for ceramic transportation, during the transportation process, when the vehicle starts, brakes, or accelerates, the ceramic bottles will sway back and forth due to inertia, leading to collisions. Existing technologies can mostly only provide vertical buffering and are difficult to provide horizontal buffering. Utility Model Content

[0005] The purpose of this utility model is to provide a buffer device for a large ceramic bottle transport mechanism, which solves the problem that in the prior art, when the vehicle starts, brakes or accelerates during transportation, the ceramic bottles will sway back and forth due to inertia, causing collisions. The prior art can mostly only provide vertical buffering and is difficult to provide horizontal buffering.

[0006] To achieve the above objectives, this utility model provides a buffer device for a large ceramic bottle transport mechanism, including a transport frame, a connecting member, and a buffer assembly. The connecting member is fixedly installed on one side of the transport frame. The buffer assembly includes a base plate, a first connecting member, a placement frame, a vertical buffer member, a side plate, a second connecting member, and a horizontal buffer member. The base plate is connected to the transport frame through the first connecting member, which is installed inside the transport frame and supports the base plate. The placement frame is connected to the base plate through the vertical buffer member, which is installed on the base plate and supports the placement frame. The side plate is connected to the transport frame through the second connecting member, which is installed inside the transport frame and supports the side plate. The horizontal buffer member connects the placement frame and the side plate.

[0007] The first connecting component includes a transverse guide rail and a transverse sliding sleeve. The transverse guide rail is fixedly connected to the transport frame and is located on the side of the transport frame closer to the base plate. The transverse sliding sleeve is slidably connected to the transverse guide rail and fixedly connected to the base plate.

[0008] The second connecting member includes a vertical guide rail and a vertical sliding sleeve. The vertical guide rail is fixedly connected to the transport frame and is located on the side of the transport frame near the side plate. The vertical sliding sleeve is slidably connected to the vertical guide rail and fixedly connected to the side plate.

[0009] The vertical buffer component includes a vertical telescopic rod, a vertical damper, and a vertical spring. The two ends of the vertical telescopic rod are fixedly connected to the base plate and the placement frame, respectively. The two ends of the vertical damper are fixedly connected to the base plate and the placement frame, respectively. The vertical spring is sleeved on the outside of the vertical damper and is located between the base plate and the placement frame.

[0010] The horizontal buffer component includes a horizontal telescopic rod, a horizontal damper, and a horizontal spring. The two ends of the horizontal telescopic rod are fixedly connected to the side plate and the placement frame, respectively. The two ends of the horizontal damper are fixedly connected to the side plate and the placement frame, respectively. The horizontal spring is sleeved on the outside of the horizontal damper and is located between the side plate and the placement frame.

[0011] This utility model discloses a buffer device for a large ceramic bottle transport mechanism, comprising a transport frame, connecting parts, and a buffer assembly. The connecting parts are fixedly installed on one side of the transport frame. The buffer assembly includes a base plate, a first connecting member, a placement frame, a vertical buffer member, a side plate, a second connecting member, and a horizontal buffer member. The base plate is connected to the transport frame via the first connecting member, which is installed inside the transport frame and supports the base plate. The placement frame is connected to the base plate via the vertical buffer member, which is installed on the base plate and supports the placement frame. The side plate is connected to the transport frame via the second connecting member, which is installed inside the transport frame and supports the side plate. The horizontal buffer member connects the placement frame and the side plate. This invention solves the problem in existing technologies where, during transport, ceramic bottles sway back and forth due to inertia when the vehicle starts, brakes, or accelerates, leading to collisions. Existing technologies mostly only provide vertical buffering and are insufficient for horizontal buffering. Attached Figure Description

[0012] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the accompanying drawings used in the description of the embodiments or the prior art will be briefly introduced below.

[0013] Figure 1 This is a schematic diagram of the overall structure of the buffer device of the large ceramic bottle transport mechanism of this utility model.

[0014] Figure 2 This is a structural schematic diagram of the vertical buffer component of this utility model.

[0015] Figure 3 This is a schematic diagram of the structure of the horizontal buffer component of this utility model.

[0016] In the diagram: 101-Transport frame, 102-Connector, 103-Base plate, 104-Horizontal guide rail, 105-Horizontal sliding sleeve, 106-Placement frame, 107-Vertical telescopic rod, 108-Vertical damper, 109-Vertical spring, 110-Side plate, 111-Vertical guide rail, 112-Vertical sliding sleeve, 113-Horizontal telescopic rod, 114-Horizontal damper, 115-Horizontal spring. Detailed Implementation

[0017] The embodiments of the present invention are described in detail below. Examples of the embodiments are shown in the accompanying drawings. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain the present invention, but should not be construed as limiting the present invention.

[0018] The embodiment of this application is as follows:

[0019] Please see Figures 1-3 , Figure 1 This is a schematic diagram of the overall structure of the buffer device of the large ceramic bottle transport mechanism of this utility model. Figure 2 This is a structural schematic diagram of the vertical buffer component of this utility model. Figure 3 This is a schematic diagram of the structure of the horizontal buffer component of this utility model.

[0020] This utility model discloses a buffer device for a large ceramic bottle transport mechanism, comprising a transport frame 101, a connecting piece 102, a base plate 103, a transverse guide rail 104, a transverse sliding sleeve 105, a placement rack 106, a vertical telescopic rod 107, a vertical damper 108, a vertical spring 109, a side plate 110, a vertical guide rail 111, a vertical sliding sleeve 112, a horizontal telescopic rod 113, a horizontal damper 114, and a horizontal spring 115. This device solves the problem in existing technologies where, during transport, ceramic bottles sway back and forth due to inertia when the vehicle starts, brakes, or accelerates, leading to collisions. Existing technologies mostly only provide vertical buffering and are insufficient for horizontal buffering. It is understood that the aforementioned solution can also be used to improve transport safety and quality.

[0021] In this embodiment, the transport frame 101 is a rectangular box with a door (not shown in the attached drawings) and wheels at the bottom for easy movement. The transport frame 101 is used to carry the entire buffer device and the transported ceramic bottles. The connector 102 is fixedly installed on one side of the transport frame 101 by welding or bolting, which facilitates separation and connection with the trailer. Through the buffer assembly, the problem of collision caused by the ceramic bottles swaying back and forth due to inertia when the vehicle starts, brakes or accelerates during transportation is solved. Existing technologies can mostly only provide vertical buffering and are difficult to provide horizontal buffering.

[0022] The base plate 103 is connected to the transport frame 101 via the first connecting member, which is installed inside the transport frame 101 and supports the base plate 103. The placement frame 106 is connected to the base plate 103 via the vertical buffer member, which is installed on the base plate 103 and supports the placement frame 106. The side plate 110 is connected to the transport frame 101 via the second connecting member, which is installed inside the transport frame 101 and supports the side plate 110. The horizontal buffer member connects the placement rack 106 and the side plate 110. The bottom plate 103 is a rectangular plate and is installed on the inner bottom of the transport rack 101 via the first connecting member. The first connecting member serves as a connection, allowing the bottom plate 103 to move within the transport rack 101. The placement rack 106 is U-shaped and is installed on top of the bottom plate 103 via the vertical buffer member. The inner bottom of the placement rack 106 is provided with a limiting groove, and the bottom of the ceramic bottle can be installed in the limiting groove to allow for the placement of the ceramic bottle. The bottle holder acts as a limiting element. After the ceramic bottle is installed on the placement rack 106, the gap between the ceramic bottle and the placement rack 106 is filled with special foam blocks or rubber blocks to fix the ceramic bottle. The vertical buffer component is installed between the placement rack 106 and the base plate 103 to provide vertical buffering for the placement rack 106. The side plates 110 consist of two pieces, which are respectively installed on the front and rear sides of the placement rack 106 through two sets of the second connecting components. The second connecting components can guide the movement of the side plates 110. The horizontal buffer component is set between the side plates 110 and the placement rack 106 to provide horizontal buffering for the placement rack 106. Through the buffer components, the placement rack 106 can obtain buffering in both vertical and horizontal directions, solving the problem that in the prior art, when the vehicle starts, brakes, or accelerates during transportation, the ceramic bottle will sway back and forth due to inertia, causing a collision. Most existing technologies can only provide vertical buffering and are difficult to provide horizontal buffering.

[0023] Secondly, the transverse guide rail 104 is fixedly connected to the transport frame 101 and is located on the side of the transport frame 101 near the base plate 103; the transverse sliding sleeve 105 is slidably connected to the transverse guide rail 104 and fixedly connected to the base plate 103. The transverse guide rail 104 is horizontally arranged at the bottom inner side of the transport frame 101, and the transverse sliding sleeve 105 serves as a connection. Through the transverse guide rail 104 and the transverse sliding sleeve 105, the base plate 103 can move within the transport frame 101.

[0024] Meanwhile, the vertical guide rail 111 is fixedly connected to the transport frame 101 and located on the side of the transport frame 101 near the side plate 110; the vertical sliding sleeve 112 is slidably connected to the vertical guide rail 111 and fixedly connected to the side plate 110. The vertical guide rail 111 is vertically installed on the inner wall of the transport frame 101, and the vertical sliding sleeve 112 serves as a connection. Through the vertical guide rail 111 and the vertical sliding sleeve 112, the side plate 110 can move vertically.

[0025] In addition, both ends of the vertical telescopic rod 107 are fixedly connected to the base plate 103 and the placement frame 106, respectively; both ends of the vertical damper 108 are fixedly connected to the base plate 103 and the placement frame 106, respectively; the vertical spring 109 is sleeved on the outside of the vertical damper 108 and located between the base plate 103 and the placement frame 106. The vertical telescopic rod 107, the vertical damper 108, and the vertical spring 109 work together to form a vertical buffer system. The ends are firmly fixedly connected to the base plate 103 and the placement rack 106 respectively, and it can extend and retract within a certain range. The two ends of the vertical damper 108 are also fixedly connected to the base plate 103 and the placement rack 106 respectively. Its main function is to consume the energy generated by vertical vibration and suppress the amplitude of vertical swaying. The vertical spring 109 can assist the vertical damper 108 in resetting. Through the vertical buffer component, the impact of vibration on the ceramic bottle on the placement rack 106 in the vertical direction is minimized.

[0026] Finally, the two ends of the horizontal telescopic rod 113 are fixedly connected to the side plate 110 and the placement frame 106, respectively; the two ends of the horizontal damper 114 are fixedly connected to the side plate 110 and the placement frame 106, respectively; the horizontal spring 115 is sleeved on the outside of the horizontal damper 114 and located between the side plate 110 and the placement frame 106. The horizontal telescopic rod 113, the horizontal damper 114, and the horizontal spring 115 together form a horizontal buffer component. The two ends of the horizontal telescopic rod 113 are fixedly connected to the side plate 110 and the placement frame 106, respectively. The frame 106 is fixedly connected and can extend and retract in the horizontal direction, limiting the horizontal displacement range of the placement frame 106. The horizontal damper 114 is connected at both ends to the side plate 110 and the placement frame 106, mainly used to consume horizontal vibration energy and reduce the horizontal swaying of the placement frame 106. The horizontal spring 115 is sleeved on the outside of the horizontal damper 114 to assist the horizontal damper 114 in resetting. Through the horizontal buffer member, the swaying and impact force of the ceramic bottle in the horizontal direction are effectively buffered, preventing it from colliding with surrounding objects.

[0027] In this embodiment, a large ceramic bottle is placed on the placement rack 106, with its bottom positioned within the limiting groove. The gap between the large ceramic bottle and the placement rack 106 is filled with foam or rubber to secure it. When the vehicle starts, brakes, or accelerates, the horizontal swaying of the ceramic bottle due to inertia causes the placement rack 106 to shift and buffer towards the side plate 110 via the horizontal telescopic rod 113, the horizontal damper 114, and the horizontal spring 115, thus absorbing the horizontal impact force. During vehicle movement, when encountering... When road bumps cause vertical vibrations, the vertical telescopic rod 107, the vertical damper 108, and the vertical spring 109 provide vertical buffering for the placement rack 106 and the ceramic bottles, effectively reducing the vibrations and collisions experienced by the ceramic bottles during transportation. This greatly improves transportation safety and the integrity rate of the ceramic bottles, solving the problem that in existing technologies, ceramic bottles sway back and forth due to inertia during vehicle start-up, braking, or acceleration, leading to collisions. Existing technologies mostly only provide vertical buffering and are difficult to provide horizontal buffering.

[0028] The above-disclosed embodiments are merely one or more preferred embodiments of this application and should not be construed as limiting the scope of this application. Those skilled in the art can understand that all or part of the processes for implementing the above embodiments and equivalent changes made in accordance with the claims of this application still fall within the scope of this application.

Claims

1. A buffer device for a large ceramic bottle transport mechanism, comprising a transport frame and a connector, wherein the connector is fixedly installed on one side of the transport frame, characterized in that, It also includes buffer components; The buffer assembly includes a base plate, a first connecting member, a placement frame, a vertical buffer member, a side plate, a second connecting member, and a horizontal buffer member. The base plate is connected to the transport frame via the first connecting member, which is installed inside the transport frame and supports the base plate. The placement frame is connected to the base plate via the vertical buffer member, which is installed on the base plate and supports the placement frame. The side plate is connected to the transport frame via the second connecting member, which is installed inside the transport frame and supports the side plate. The horizontal buffer member connects the placement frame and the side plate.

2. The buffer device of the large ceramic bottle transport mechanism as described in claim 1, characterized in that, The first connecting member includes a transverse guide rail and a transverse sliding sleeve. The transverse guide rail is fixedly connected to the transport frame and is located on the side of the transport frame closer to the base plate. The transverse sliding sleeve is slidably connected to the transverse guide rail and fixedly connected to the base plate.

3. The buffer device of the large ceramic bottle transport mechanism as described in claim 1, characterized in that, The second connecting member includes a vertical guide rail and a vertical sliding sleeve. The vertical guide rail is fixedly connected to the transport frame and is located on the side of the transport frame near the side plate. The vertical sliding sleeve is slidably connected to the vertical guide rail and fixedly connected to the side plate.

4. The buffer device of the large ceramic bottle transport mechanism as described in claim 1, characterized in that, The vertical buffer component includes a vertical telescopic rod, a vertical damper, and a vertical spring. The two ends of the vertical telescopic rod are fixedly connected to the base plate and the placement frame, respectively. The two ends of the vertical damper are fixedly connected to the base plate and the placement frame, respectively. The vertical spring is sleeved on the outside of the vertical damper and located between the base plate and the placement frame.

5. The buffer device of the large ceramic bottle transport mechanism as described in claim 1, characterized in that, The horizontal buffer component includes a horizontal telescopic rod, a horizontal damper, and a horizontal spring. The two ends of the horizontal telescopic rod are fixedly connected to the side plate and the placement frame, respectively. The two ends of the horizontal damper are fixedly connected to the side plate and the placement frame, respectively. The horizontal spring is sleeved on the outside of the horizontal damper and is located between the side plate and the placement frame.

Citation Information

Patent Citations

  • Damping transportation frame for ceramic transportation

    CN218143107U