Wear-resistant polyethylene movable lining plate
By designing a wear-resistant polyethylene movable liner, the problems of low detection accuracy and slow response speed of the moisture content detection equipment in the batching machine during the material loading process were solved, realizing rapid separation of material liquid and improving the wear resistance of the liner.
Patent Information
- Application Number
- CN202520042258.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-08
- Publication Date
- 2026-02-17
- Estimated Expiration
- 2035-01-08
AI Technical Summary
Existing batching machine moisture content detection equipment suffers from low detection accuracy and slow response speed during the water filtration process of the moving liner of the material loading machine. It is particularly difficult to accurately reflect the moisture content of the material under conditions of uneven material distribution and environmental interference.
A wear-resistant polyethylene movable liner was designed, comprising a hollowed-out back plate, permeable holes, a filter plate, and a wear-resistant layer. The combination of permeable holes and the filter plate enables rapid separation of material and water, while the wear-resistant layer improves the wear resistance of the liner.
It improves the material liquid separation rate and detection accuracy, while extending the service life of the liner and preventing parts from detaching during long-term use.
Smart Images

Figure CN223926393U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the technical field of batching machine moisture content detection equipment, and relates to a wear-resistant polyethylene movable liner. Background Technology
[0002] The main shortcomings of existing batching machine moisture content detection equipment in terms of filtering water through the moving liner are in detection accuracy and response speed. Firstly, because the moving liner is constantly moving during material loading, the uneven distribution of moisture makes it difficult for the detection equipment to accurately capture the true moisture content of the material, thus affecting the accuracy of the test results. Secondly, rapidly changing material states and environmental factors, such as temperature and humidity, may interfere with the sensors of the detection equipment, further reducing detection accuracy. Additionally, after the test is completed, it is not possible to quickly drain the water from the material through seepage.
[0003] These shortcomings arise from the limitations of existing technology and the complexity of the batching machine's working environment. The non-uniformity of materials, the dynamic changes caused by the movement of the liner, and interference from the external environment all contribute to the difficulty in accurately reflecting the material's moisture content in real time. Conventional solutions include employing more advanced sensor technology, increasing data acquisition frequency, and using software algorithms for data smoothing. However, these methods are costly and may not completely eliminate interference from environmental and physical factors. For example, while more advanced sensors can improve accuracy, they are expensive and may still fail under extreme working conditions. Therefore, there is an urgent need for a wear-resistant polyethylene movable liner to address these issues. Utility Model Content
[0004] In view of the shortcomings of the existing technology, the purpose of this utility model is to provide a wear-resistant polyethylene movable liner to solve the problems mentioned in the background art.
[0005] This utility model is achieved through the following technical solution: a wear-resistant polyethylene movable liner, comprising: a rear plate body and an inner groove II, wherein the rear plate body has a hollow structure inside, and a set of rear connecting plates for connecting with a filter plate are provided inside the rear plate body, and a number of water-permeable holes are provided inside the rear connecting plates for filtering water from the material inside the batching machine, and a batching intercepting mesh for intercepting and filtering the material inside the batching machine is wrapped on the outside of the rear connecting plates;
[0006] The right side of the feed interception net has a U-shaped cross-section and wraps around the outside of the rear connecting plate. The permeable hole has a strip-shaped cross-section when viewed from above. The permeable hole penetrates the interior of the rear connecting plate. The rear connecting plate and the filter plate are fixed together by bolts. The filter plate is made of a rubber material. The right side of the upper surface of the filter plate has an arc-shaped cross-section.
[0007] In a preferred embodiment, the filter plate is provided with several sets of collecting tanks for collecting materials inside the batching machine, and the collecting tanks are provided with several sets of material holes for collecting and discharging liquid materials inside the batching machine.
[0008] In a preferred embodiment, each set of material holes is provided with a set of liquid guiding chambers for discharging the liquid stored in the batching machine. When the operator installs the movable liner inside the existing batching machine moisture content device, and the movable liner supports the material inside the batching machine, allowing the liquid stored in the material inside the batching machine to stand and filter water, the arc-shaped structure at the upper end of the filter plate can concentrate the material inside the batching machine and allow the water inside to seep through the bottom of the middle position of the filter plate, and then enter the liquid guiding chamber through the material hole, and then enter the inner groove one and inner groove two through the liquid guiding chamber, so as to separate the liquid stored in the material inside the batching machine, and at the same time improve the rate of liquid separation of the material inside the batching machine.
[0009] As a preferred embodiment, a set of rubber inserts for positioning and fitting with the first and second inner grooves are provided on the outer side of several sets of liquid guiding cavities, and the several sets of rubber inserts on the left side are positioned and fitted with the inner grooves of the first set.
[0010] As a preferred embodiment, the rubber insert on the right side is internally positioned and fitted into a set of embedded grooves, and the lower end of the filter plate is provided with two sets of embedded arc grooves for receiving it, and the two sets of embedded arc grooves are fitted into the filter plate.
[0011] In a preferred embodiment, a partition is provided between several sets of two sets of embedded arc grooves to separate them. The partition is connected and fixed to the front connecting plate and the rear connecting plate. The filter plate is a detachable structure.
[0012] In a preferred embodiment, the front connecting plate has a set of rotating shafts inside its front side for supporting the rotation and adjustment of the movable liner, and the front connecting plate, the filter plate and the rear connecting plate have a set of wear-resistant layers on their outer sides to improve the wear resistance.
[0013] In a preferred embodiment, the wear-resistant layer includes a top layer, an outer sealing frame, and an outer support plate. The top of the wear-resistant layer is provided with a set of top layers for improving wear resistance. The top layer is made of a wear-resistant material. The outer side of the top layer is provided with a set of outer sealing frames for defining the position of the top layer. The lower end of the top layer is provided with a set of outer support plates for supporting the top layer. When the operator uses this movable liner to support the materials inside the batching machine, its wear-resistant layer can effectively improve the wear resistance of the outer side of the front connecting plate, the filter plate, and the rear connecting plate. At the same time, its outer support plate supports the bottom of the wear-resistant layer to prevent the wear-resistant layer from detaching from the outer side of the front connecting plate, the filter plate, and the rear connecting plate during long-term use.
[0014] After adopting the above technical solution, the beneficial effects of this utility model are as follows: When the worker installs the movable liner inside the existing batching machine moisture content device, and the movable liner supports the material inside the batching machine, and allows the liquid in the material inside the batching machine to stand and filter water, the arc-shaped structure at the upper end of the filter plate can concentrate the support of the material inside the batching machine, and allow the water inside to seep through the bottom of the middle position of the filter plate, and then enter the liquid guiding chamber through the material hole, and then enter the inner groove one and inner groove two through the liquid guiding chamber, so as to separate the liquid in the material inside the batching machine, and at the same time improve the liquid separation rate of the material inside the batching machine. When the worker uses the movable liner to support the material inside the batching machine, its wear-resistant layer can effectively improve the wear resistance of the front connecting plate, the filter plate and the outer side of the rear connecting plate. At the same time, its outer support plate supports the bottom of the wear-resistant layer to prevent the wear-resistant layer from detaching from the outer side of the front connecting plate, the filter plate and the rear connecting plate during long-term use. Attached Figure Description
[0015] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0016] Figure 1 This is a top view of the front structure of a wear-resistant polyethylene movable liner according to the present invention;
[0017] Figure 2 This is a top view of the front side of the internal arc groove in a wear-resistant polyethylene movable liner of the present invention.
[0018] Figure 3 This is a top view of the right side of the internal partitions of two sets of embedded arc grooves in a wear-resistant polyethylene movable liner of this utility model.
[0019] Figure 4 This is a top view of the front structure of the wear-resistant layer in a wear-resistant polyethylene movable liner of this utility model;
[0020] In the diagram: 100-rear plate, 110-feeding interception mesh, 120-filter plate, 130-material hole, 140-liquid guiding cavity, 150-wear-resistant layer, 160-front connecting plate, 170-rotating shaft, 180-rear connecting plate, 190-water permeable hole, 200-embedded arc groove, 210-embedded groove one, 220-partition plate, 230-embedded groove two;
[0021] 15a - Top layer, 15b - Outer sealing frame, 15c - Outer support plate. Detailed Implementation
[0022] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0023] Please see Figures 1-4 A wear-resistant polyethylene movable liner includes: a rear plate 100, a wear-resistant layer 150, an embedded arc groove 200 and an embedded groove 230. The rear plate 100 has a hollow structure inside. The rear plate 100 is provided with a set of rear connecting plates 180 for connecting with a filter plate 120. The rear connecting plates 180 are provided with several sets of water-permeable holes 190 for filtering water from the materials inside the batching machine. The rear connecting plates 180 are wrapped with a batching intercepting net 110 for intercepting and filtering the materials inside the batching machine.
[0024] The feed interception net 110 has a U-shaped cross-section on the right side and wraps around the outside of the rear connecting plate 180. The permeable hole 190 has a strip-shaped cross-section when viewed from above. The permeable hole 190 penetrates the interior of the rear connecting plate 180. The rear connecting plate 180 is fixed to the filter plate 120 by bolts. The filter plate 120 is made of a rubber material. The upper right side of the filter plate 120 has an arc-shaped cross-section.
[0025] The filter plate 120 has several sets of collection tanks for collecting materials inside the batching machine, and several sets of material holes 130 for collecting and discharging liquid materials inside the batching machine.
[0026] Each set of material holes 130 has a set of liquid guiding chambers 140 for discharging the liquid material stored inside the batching machine.
[0027] Several sets of liquid guiding cavities 140 are provided with a set of rubber inserts on the outside for positioning and fitting with the inner groove 210 and the inner groove 230 respectively, and several sets of left rubber inserts are positioned and fitted inside the inner groove 210.
[0028] The rubber insert on the right side is positioned and fitted inside a set of embedded grooves 230. The lower end of the filter plate 120 is provided with two sets of embedded arc grooves 200 for receiving it. The two sets of embedded arc grooves 200 are fitted into the filter plate 120.
[0029] A partition 220 is provided between several sets of two sets of embedded arc grooves 200 for separating them. The partition 220 is connected and fixed to the front connecting plate 160 and the rear connecting plate 180. The filter plate 120 is a detachable structure.
[0030] The front connecting plate 160 has a set of rotating shafts 170 inside the front side for supporting the flipping and adjustment of the movable liner. The front connecting plate 160, the filter plate 120 and the rear connecting plate 180 have a set of wear-resistant layers 150 on the outside for improving the wear resistance of the outside.
[0031] The wear-resistant layer 150 includes a top layer 15a, an outer sealing frame 15b, and an outer support plate 15c. The top of the wear-resistant layer 150 is provided with a set of top layer 15a for improving wear resistance. The top layer 15a is made of a wear-resistant material. The outer side of the top layer 15a is provided with a set of outer sealing frames 15b for defining the position of the top layer 15a. The lower end of the top layer 15a is provided with a set of outer support plates 15c for supporting the top layer 15a.
[0032] Please see Figures 1-4 As the first embodiment of this utility model: when the worker installs the movable liner inside the existing batching machine moisture content device, and the movable liner supports the material inside the batching machine, and allows the liquid in the material inside the batching machine to stand and filter water, the arc-shaped structure at the upper end of the filter plate 120 can concentrate the material inside the batching machine, and allow the water inside to seep through the bottom of the middle position of the filter plate 120, and then enter the liquid guiding chamber 140 through the material hole 130, and then enter the inner groove 210 and the inner groove 230 through the liquid guiding chamber 140, so as to separate the liquid in the material inside the batching machine, and at the same time improve the rate of liquid separation of the material inside the batching machine.
[0033] Please see Figures 1-4As a second embodiment of this utility model: Based on the description in the above embodiments, further, when the worker uses this movable liner to support the materials inside the batching machine, its wear-resistant layer 150 can effectively improve the wear resistance of the outer side of the front connecting plate 160, the filter plate 120 and the rear connecting plate 180. At the same time, its outer support plate 15c supports the bottom of the wear-resistant layer 150 to prevent the wear-resistant layer 150 from separating from the outer side of the front connecting plate 160, the filter plate 120 and the rear connecting plate 180 during long-term use.
[0034] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.
Claims
1. A wear-resistant polyethylene live liner comprising: The back plate body (100), the wear-resistant layer (150), the embedded arc groove (200) and the embedded groove two (230) are characterized in that: the inside of the back plate body (100) is a hollow structure, a group of back connecting plates (180) for connecting with the water filter plate (120) are arranged inside the back plate body (100), a plurality of groups of water permeable holes (190) for filtering water in the material in the batching machine are arranged inside the back connecting plate (180), and a batching interception net (110) for intercepting and filtering the material in the batching machine is wrapped outside the back connecting plate (180). The right side view of the cross section of the batching interception net (110) is a U-shaped structure, and the outside of the back connecting plate (180) is wrapped, the water permeable hole (190) is a strip-shaped structure in the top view, the water permeable hole (190) penetrates through the inside of the back connecting plate (180), the back connecting plate (180) and the water filter plate (120) are fixedly connected through bolts, the water filter plate (120) is made of rubber material, and the right side view of the cross section of the upper end surface of the water filter plate (120) is an arc-shaped structure.
2. A wear resistant polyethylene live lining according to claim 1, characterized in that: A plurality of groups of collection grooves for collecting the material in the batching machine are arranged inside the water filter plate (120), and a plurality of groups of material holes (130) for collecting and discharging the liquid material in the batching machine are arranged inside the collection grooves.
3. A wear resistant polyethylene live lining according to claim 2, characterized in that: A group of liquid guide cavities (140) for discharging the liquid material in the batching machine are arranged inside each group of material holes (130).
4. A wear resistant polyethylene live lining according to claim 3, characterized in that: A group of rubber embedding seats for positioning and embedding the embedded groove one (210) and the embedded groove two (230) respectively are arranged outside a plurality of groups of liquid guide cavities (140), and a plurality of left side rubber embedding seats correspond to the inside of a group of embedded groove one (210) for positioning and embedding.
5. A wear resistant polyethylene live lining according to claim 4, characterised in that: The right side rubber embedding seat corresponds to the inside of a group of embedded groove two (230) for positioning and embedding, and the lower end of the water filter plate (120) is provided with two groups of embedded arc grooves (200) for supporting the water filter plate (120), and the two groups of embedded arc grooves (200) and the water filter plate (120) are embedded with each other.
6. A wear resistant polyethylene live lining according to claim 5, characterized in that: A group of partitions (220) for separating the two groups of embedded arc grooves (200) are arranged between the two groups of embedded arc grooves (200), the partitions (220) are connected and fixed with the front connecting plate (160) and the back connecting plate (180), and the water filter plate (120) is a detachable structure.
7. A wear resistant polyethylene live lining according to claim 6, characterized in that: A group of rotating shafts (170) for supporting the turnover adjustment of the movable lining plate are arranged inside the front side of the front connecting plate (160), and a wear-resistant layer (150) for improving the wear resistance of the outside is arranged outside the front connecting plate (160), the water filter plate (120) and the back connecting plate (180).
8. A wear resistant polyethylene live lining according to claim 7, characterized in that: The wear-resistant layer (150) comprises a top layer (15a), an outer sealing frame (15b) and an outer support plate (15c), a group of top layers (15a) for improving wear-resistant effect are arranged on the top of the wear-resistant layer (150), the top layer (15a) is made of a wear-resistant material, an outer sealing frame (15b) for limiting the position of the top layer (15a) is arranged on the outer side of the top layer (15a), and an outer support plate (15c) for supporting the top layer (15a) is arranged at the lower end of the top layer (15a).