Support structure of sodium carbonate feeding port

By designing a soda ash feeding port support structure that includes a feeding rack, feeding mechanism and multiple components, the problems of long time consumption and low safety during the transfer of soda ash bags are solved, achieving more efficient and safer soda ash material transportation.

CN224226497UActive Publication Date: 2026-05-12XINJIANG GUANGYAO GLASS TECH
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
XINJIANG GUANGYAO GLASS TECH
Filing Date
2025-05-27
Publication Date
2026-05-12

AI Technical Summary

Technical Problem

In existing technologies, the transfer of soda ash bags takes a long time and has low safety, and they are prone to slipping out of the support.

Method used

A soda ash feeding port support structure was designed, including a feeding rack, feeding mechanism, limiting plate, hanging seat, electric hoist, placement component, lifting component, and reinforcing component. The structure uses spring components and telescopic columns to achieve shock absorption, enclosed panels and uprights to provide protection, and electric hoist and lifting component to improve transportation efficiency.

Benefits of technology

It simplifies the transfer process of soda ash bags, improves safety and transportation efficiency, reduces manpower consumption, enhances the structural strength of the feeding rack, and can carry more soda ash material at the same time.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of glass manufacturing, in particular to a sodium carbonate feeding port support structure which comprises a feeding frame and a feeding mechanism, and the feeding mechanism comprises two limiting plates, a hanging seat, an electric hoist, a placing assembly, a lifting assembly and two reinforcing assemblies. A placing plate in an existing placing assembly achieves the damping effect through two spring pieces and two telescopic columns, the inner bottom of the feeding frame can be protected even if heavier materials are borne, workers can push the materials to be transported and transferred conveniently through the arrangement of a plurality of surrounding plates, the transported materials are protected in cooperation with a plurality of vertical rods, and the working efficiency is improved. Compared with the prior art, workers do not need to manually adjust the material conveying posture, the soda ash material conveying device is simple in structure and convenient to produce, more soda ash materials can be carried at the same time, and the problems that in the transferring process of the soda ash material bag, much time is consumed, and in the lifting process, safety is low, and the soda ash material bag is prone to sliding out of a support are solved.
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Description

Technical Field

[0001] This utility model relates to the field of glass manufacturing technology, and in particular to a soda ash feeding port support structure. Background Technology

[0002] Soda ash is one of the main raw materials for glass production and also a major component of clarifying agents. Soda ash is usually fed by overhead cranes. Because soda ash easily absorbs water and clumps, it must be manually tapped and cleared during the feeding process. In addition, since soda ash is generally in powder form, it is very easy to generate dust during the feeding process. To avoid soda ash dust irritating the respiratory tract, dust covers are usually used to reduce the harm to workers' health caused by soda ash dust.

[0003] In the prior art, patent (CN217732094U) proposes a soda ash feeding device, including a receiving port assembly, a receiving hopper, a dust removal system, a top cover, a cover plate, a crusher, and a support. The receiving port assembly is connected to the receiving hopper, and the dust removal system is connected to the receiving hopper to absorb gas in the hopper. The receiving port assembly includes a receiving chute and a screen set at its lower end. The screen can prevent foreign matter from flowing in. The lower end of the receiving hopper is connected to the crusher, which can effectively crush lumpy materials. This utility model solves the problems of water absorption and clumping and dust pollution during soda ash feeding operations. It can also speed up the unloading speed and crush soda ash lumps during the feeding process, increasing the powder rate of soda ash and making the subsequent batching parameters more stable.

[0004] However, in the aforementioned existing technologies, the transfer of soda ash bags takes a long time, and the safety during the lifting process is low, as they are prone to slipping out of the support. Summary of the Invention

[0005] The purpose of this utility model is to provide a support structure for the soda ash feeding port, which solves the problems in the prior art where the soda ash bag takes a long time to transfer, has low safety during the lifting process, and is prone to slipping out of the support.

[0006] To achieve the above objectives, this utility model provides a soda ash feeding port support structure, including a feeding frame and a feeding mechanism. The feeding mechanism includes two limiting plates, a hanging seat, an electric hoist, a placement component, a lifting component, and two sets of reinforcing components. Both sets of reinforcing components are fixedly connected to the feeding frame and located on the periphery of the feeding frame. The lifting component is fixedly connected to the feeding frame and located above the feeding frame. The placement component is fixedly connected to the feeding frame and located at the inner bottom of the feeding frame. The electric hoist is fixedly connected to the hanging seat and located below the hanging seat. The hanging seat is slidably connected to the lifting component and located above the lifting component. Both limiting plates are fixedly connected to the lifting component and located above the lifting component.

[0007] The placement assembly includes a placement plate, two spring members, two telescopic columns, and multiple surrounding plates. Each surrounding plate is rotatably connected to the placement plate and located on the periphery of the placement plate. The lower ends of the two telescopic columns and the two spring members are fixedly connected to the feeding rack and located at the inner bottom of the feeding rack. The upper ends of the two telescopic columns and the two spring members are fixedly connected to the placement plate and located below the placement plate.

[0008] The lifting assembly includes two lifting cylinders, two lifting rods, and a horizontal plate. The two ends of the horizontal plate are fixedly connected to the corresponding lifting rods and are located at the upper ends of the corresponding lifting rods. The lower end of each lifting rod is fixedly connected to the output end of the corresponding lifting cylinder. Both lifting cylinders are fixedly connected to the loading rack and are located above the loading rack.

[0009] Each set of reinforcing components includes a long rod and a short rod. The short rod is fixedly connected to the feeding rack and located on one side of the feeding rack. The long rod is fixedly connected to the short rod and located at one end of the short rod.

[0010] The feeding rack includes a base plate, multiple uprights, and a top plate. The top plate is fixedly connected to each of the uprights and is located at the upper end of each upright. The lower end of each upright is fixedly connected to the base plate and is located above the base plate. The base plate is fixedly connected to two spring members and is located below the two spring members.

[0011] This utility model discloses a soda ash feeding port support structure. The placement plate within the placement assembly achieves shock absorption through two springs and two telescopic columns, protecting the bottom of the feeding rack even when bearing heavier materials. The multiple surrounding plates facilitate the transportation and transfer of materials by workers. Combined with the multiple uprights protecting the transported materials, there is no need for workers to manually adjust the material's transport posture. This design is simple, easy to produce, and can transport more soda ash material simultaneously. It solves the problems of soda ash bags taking a long time to transfer, low safety during lifting, and easy slippage off the support. 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 a soda ash feeding port support structure according to this utility model.

[0014] Figure 2This is a side view of a soda ash feeding port support structure according to this utility model.

[0015] Figure 3 This is the utility model Figure 2 A sectional view along line AA.

[0016] Figure 4 This is the utility model Figure 3 Enlarged view of the local structure at point B.

[0017] Figure 5 This is the utility model Figure 3 Enlarged view of the local structure at point C.

[0018] 101-Feeding rack, 102-Feeding mechanism, 103-Limit plate, 104-Hanging seat, 105-Electric hoist, 106-Placement component, 107-Lifting component, 108-Reinforcing component, 109-Placement plate, 110-Spring component, 111-Telescopic column, 112-Enclosure panel, 113-Lifting cylinder, 114-Lifting pole, 115-Horizontal plate, 116-Long pole, 117-Short pole, 118-Base plate, 119-Upright pole, 120-Top plate. Detailed Implementation

[0019] 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.

[0020] Please see Figures 1-5 ,in Figure 1 This is a schematic diagram of the overall structure of a soda ash feeding port support structure according to this utility model. Figure 2 This is a side view of a soda ash feeding port support structure according to this utility model. Figure 3 This is the utility model Figure 2 AA-line sectional view, Figure 4 This is the utility model Figure 3 Enlarged view of the local structure at point B. Figure 5 This is the utility model Figure 3 Enlarged view of the local structure at point C.

[0021] This utility model provides a soda ash feeding port support structure, including a feeding rack 101 and a feeding mechanism 102. The feeding mechanism 102 includes two limiting plates 103, a hanging base 104, an electric hoist 105, a placement component 106, a lifting component 107, and two sets of reinforcing components 108. The placement component 106 includes a placement plate 109, two springs 110, two telescopic columns 111, and multiple surrounding plates 112. The lifting component 107 includes two lifting cylinders 113, two lifting rods 114, and a horizontal plate 115. Each set of reinforcing components 108 includes a long rod 116 and a short rod 117. The feeding rack 101 includes a base plate 118, multiple uprights 119, and a top plate 120.

[0022] In this specific embodiment, both sets of reinforcing components 108 are fixedly connected to the loading rack 101, the lifting component 107 is fixedly connected to the loading rack 101, the placement component 106 is fixedly connected to the loading rack 101, the electric hoist 105 is fixedly connected to the hanging base 104, the hanging base 104 is slidably connected to the lifting component 107, both limiting plates 103 are fixedly connected to the lifting component 107, and each of the surrounding plates 112 is connected to the placement plate 109. The lower ends of the two telescopic columns 111 and the two spring members 110 are fixedly connected to the loading rack 101 via a rotatable connection. The upper ends of the two telescopic columns 111 and the two spring members 110 are fixedly connected to the placement plate 109. The two ends of the horizontal plate 115 are respectively fixedly connected to the corresponding lifting rods 114. The lower end of each lifting rod 114 is respectively fixedly connected to the output end of the corresponding lifting cylinder 113. Both lifting cylinders 113 are connected to the loading rack 101 via a rotatable connection. 1. Fixed connection: The short rod 117 is fixedly connected to the feeding rack 101, the long rod 116 is fixedly connected to the short rod 117, the top plate 120 is fixedly connected to each of the uprights 119, the lower end of each upright 119 is fixedly connected to the bottom plate 118, and the bottom plate 118 is fixedly connected to two spring members 110. The placement plate 109 in the currently installed placement assembly 106 achieves shock absorption through the two spring members 110 and the two telescopic columns 111. Even when bearing heavier materials, it can protect the bottom of the feeding rack 101. The setting of multiple enclosure plates 112 facilitates the transportation and transfer of materials by the staff. Combined with the protection of the transported materials by multiple uprights 119, there is no need for the staff to manually adjust the transport posture of the materials. This design has a simple structure, is easy to produce, and can carry more soda ash materials at the same time. It solves the problems that soda ash bags require a lot of time to transfer, have low safety during the lifting process, and are easy to slip off the support.

[0023] The two sets of reinforcing components 108 are located around the periphery of the feeding rack 101, the lifting component 107 is located above the feeding rack 101, the placement component 106 is located at the inner bottom of the feeding rack 101, the electric hoist 105 is located below the hanging base 104, the hanging base 104 is located above the lifting component 107, and the two limiting plates 103 are located above the lifting component 107. The long rod 116 and the short rod 117 in the reinforcing component 108 are mainly used to connect each upright 119, maintain the stability of the upright 119, enhance the overall structural strength of the feeding rack 101, and bear more soda ash material.

[0024] Secondly, each of the surrounding panels 112 is located around the placement plate 109. The lower ends of the two telescopic columns 111 and the two spring members 110 are located at the inner bottom of the feeding rack 101, and the upper ends of the two telescopic columns 111 and the two spring members 110 are located below the placement plate 109. The two ends of the horizontal plate 115 are respectively located at the upper ends of the corresponding lifting poles 114. The two lifting cylinders 113 are located above the feeding rack 101. The two lifting cylinders 113 drive the corresponding lifting poles 114, thereby driving the horizontal plate 115 to rise and fall. The electric hoist 105 in the middle of the horizontal plate 115 further lifts the soda ash material bag and transfers it above the top plate 120.

[0025] Meanwhile, the short rod 117 is located on one side of the feeding rack 101, the long rod 116 is located at one end of the short rod 117, the top plate 120 is located at the upper end of each of the upright rods 119, the lower end of each of the upright rods 119 is located above the bottom plate 118, the bottom plate 118 is located below the two spring members 110, the upper side of each of the surrounding plates 112 is rotatably connected to the placement plate 109, and the lower side of each of the surrounding plates 112 slides above the bottom plate 118, thereby allowing the placement plate to be adjusted according to the specified dimensions. The height of the placement plate 109 adapts to changes, better positioning the material trolley carrying the material. This saves a significant amount of manpower and time when moving the trolley to and from the placement plate 109. Similarly, the multiple uprights 119 provide protection during the transport of the material bags. As the material bags move from the material trolley towards the electric hoist 105, no correction of the material bag's trajectory is required, thus increasing the carrying capacity and improving the efficiency of transporting soda ash.

[0026] In this embodiment, the long rod 116 and the short rod 117 within the reinforcing assembly 108 are mainly used to connect each of the uprights 119, maintain the stability of the uprights 119, and enhance the overall structural strength of the feeding rack 101 to support more soda ash material. The two lifting cylinders 113 drive the corresponding lifting rods 114, thereby raising and lowering the height of the horizontal plate 115. The electric hoist 105 in the middle of the horizontal plate 115 further lifts the soda ash material bag and transfers it above the top plate 120. The upper side of each of the surrounding plates 112 is rotatably connected to the placement plate 109. The lower sides of the enclosure 112 slide above the base plate 118, thereby adapting to changes in the height of the placement plate 109 to better position the material trolley carrying the material. This saves a lot of manpower and time when moving to and from the placement plate 109. Similarly, the multiple uprights 119 provide protection during the transportation of the material bags. As the material bags move from the material trolley toward the electric hoist 105, no correction of the material bag's trajectory is required, increasing the carrying capacity and improving the transportation efficiency of soda ash.

[0027] 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 soda ash feeding port support structure, comprising a feeding rack, characterized in that, It also includes a feeding mechanism, which comprises two limiting plates, a hanging base, an electric hoist, a placement component, a lifting component, and two sets of reinforcing components. Both sets of reinforcing components are fixedly connected to the feeding frame and located on the periphery of the feeding frame. The lifting component is fixedly connected to the feeding frame and located above the feeding frame. The placement component is fixedly connected to the feeding frame and located at the inner bottom of the feeding frame. The electric hoist is fixedly connected to the hanging base and located below the hanging base. The hanging base is slidably connected to the lifting component and located above the lifting component. Both limiting plates are fixedly connected to the lifting component and located above the lifting component.

2. The soda ash feed inlet support structure as described in claim 1, characterized in that, The placement assembly includes a placement plate, two spring members, two telescopic columns, and multiple surrounding plates. Each surrounding plate is rotatably connected to the placement plate and located on the periphery of the placement plate. The lower ends of the two telescopic columns and the two spring members are fixedly connected to the feeding rack and located at the inner bottom of the feeding rack. The upper ends of the two telescopic columns and the two spring members are fixedly connected to the placement plate and located below the placement plate.

3. The soda ash feed inlet support structure as described in claim 2, characterized in that, The lifting assembly includes two lifting cylinders, two lifting rods, and a horizontal plate. The two ends of the horizontal plate are fixedly connected to the corresponding lifting rods and are located at the upper ends of the corresponding lifting rods. The lower end of each lifting rod is fixedly connected to the output end of the corresponding lifting cylinder. Both lifting cylinders are fixedly connected to the loading rack and are located above the loading rack.

4. The soda ash feed inlet support structure as described in claim 3, characterized in that, Each set of reinforcing components includes a long rod and a short rod. The short rod is fixedly connected to the feeding rack and located on one side of the feeding rack. The long rod is fixedly connected to the short rod and located at one end of the short rod.

5. The soda ash feed inlet support structure as described in claim 4, characterized in that, The feeding rack includes a base plate, multiple uprights, and a top plate. The top plate is fixedly connected to each of the uprights and is located at the upper end of each upright. The lower end of each upright is fixedly connected to the base plate and is located above the base plate. The base plate is fixedly connected to two spring members and is located below the two spring members.