Guiding device for heat insulation strip machining

Through the cooperation of multiple pushing components and the sliding plate, the problem of excessive stress when the heat insulation strip accumulates on the guide device is solved, and the precise push and stable movement of the heat insulation strip is achieved, avoiding damage, and improving processing quality and efficiency.

CN223173135UActive Publication Date: 2025-08-01HENAN LINHAI NEW MATERIAL CO LTD
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Patent Information

Application Number
CN202421980862.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-15
Publication Date
2025-08-01
Estimated Expiration
2034-08-15

AI Technical Summary

Technical Problem

When the existing thermal insulation strip processing guide device accumulates, the push mechanism lacks precise control, resulting in excessive stress on the thermal insulation strip, deformation, scratches or breaks, and the upper sliding plate squeezes the lower thermal insulation strip.

Method used

Using multiple pushing components (first, second, and third pushing parts) and the sliding plate, the precise push and stable movement of the heat insulation strip is achieved through structures such as slide chutes, arc blocks, spheres, clamps and springs, and avoid direct contact and excessive stress.

Benefits of technology

Effectively avoid deformation, scratches or breaks of the insulation strips, ensure the stability and smoothness of the sliding plate movement, and improve processing efficiency and product quality.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a guide device for heat insulation strip machining, and belongs to the technical field of guide devices. Comprising a support frame; the upper transverse frame is stably connected to the supporting frame; the lower transverse frame is stably connected to the supporting frame, and the lower transverse frame is located under the upper transverse frame; the multiple sliding plates are slidably connected to the upper transverse frame and the lower transverse frame correspondingly, and the sliding plates are used for bearing heat insulation strips; and the first pushing part is stably connected to the supporting frame. Through cooperation of the sliding plate, the first pushing part, the second pushing part and the third pushing part, the purpose of accurately and orderly pushing the heat insulation strip and the sliding plate is achieved; and meanwhile, through cooperation of the arc-shaped blocks, the springs and the clamping blocks, the situation that the sliding plate located on the upper portion extrudes the heat insulation strips on the sliding plate on the lower layer can be avoided.
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Description

Technical Field

[0001] The utility model relates to the technical field of guide devices, in particular to a guide device for processing thermal insulation strips. Background Art

[0002] With the continuous development of the construction industry, the demand for thermal insulation strips, as an important energy-saving material, is growing. Thermal insulation strips play a key role in blocking heat transfer and improving energy efficiency in buildings. In order to meet the huge market demand for thermal insulation strips, improving the processing quality and efficiency of thermal insulation strips has become the focus of relevant companies. In the processing of thermal insulation strips, the guide device plays a vital role, which directly affects the production process of the thermal insulation strips and the performance of the final product.

[0003] However, the existing insulation strip processing guide device usually pushes the insulation strips through a pushing mechanism after cutting the insulation strips into appropriate lengths; but when a large number of insulation strips are piled up on the guide device, if the pushing mechanism continues to push, due to the lack of precise control of the pushing force and timing, the insulation strips will be subjected to excessive force, resulting in deformation, scratches or even breakage of the insulation strips, which seriously affects product quality and production efficiency. Utility Model Content

[0004] The technical problem to be solved by the present utility model is to provide a guide device for processing thermal insulation strips, so as to solve the technical problem that when a large number of thermal insulation strips are piled up on the guide device, if the pushing mechanism continues to push, the thermal insulation strips will be subjected to excessive force, thereby causing the thermal insulation strips to be deformed, scratched or even broken, and the thermal insulation strips will be squeezed by the upper sliding plate during the upward movement of the sliding plate.

[0005] Technical solution: To achieve the above object, the present utility model is realized through the following technical solutions: A guiding device for heat insulation strip processing, comprising: a support frame; an upper cross frame stably connected to the support frame; a lower cross frame stably connected to the support frame, and the lower cross frame is directly below the upper cross frame; a plurality of sliding plates, and the plurality of sliding plates are respectively slidably connected to the upper cross frame and the lower cross frame, and the sliding plates are used to carry the heat insulation strip; a first pushing part stably connected to the support frame, and the first pushing part is below the lower cross frame, and the first pushing part is used to push the sliding plate upward; a second pushing part stably connected to the support frame, and the second pushing part is on one side of the upper cross frame, and the second pushing part is used to push the sliding plate to slide on the upper cross frame, and the second pushing part and the first pushing part are on the same side of the support frame; a third pushing part stably connected to the support frame, and the third pushing part is on the side of the lower cross frame away from the second pushing part, and the third pushing part is used to push the sliding plate to slide on the lower cross frame, wherein the connection mode of the upper cross frame and the lower cross frame with the support frame is welding, and the connection is firm and reliable; the first, second and third pushing parts all adopt electric push rods, and the thrust and stroke can be accurately controlled.

[0006] In a further embodiment, a plurality of sliding grooves are opened, and the plurality of sliding grooves are respectively opened on both sides of the support frame close to the second pushing part and the third pushing part. The sliding grooves are adapted to the sliding plates, and the sliding grooves are used to provide a sliding path for the sliding plates. Among them, the inside of the sliding grooves is smoothed to reduce the resistance when the sliding plates slide; the width of the sliding grooves is slightly larger than that of the sliding plates to ensure that the sliding plates can slide smoothly and will not generate excessive shaking.

[0007] In a further embodiment, a feeding port is opened on the support frame. The feeding port is on the side of the support frame close to the first pushing part, and the feeding port is communicated with the sliding groove. The lower surface of the feeding port is flush with the sliding plate. The feeding port is used for the heat insulation strip to enter the support frame. Among them, a guiding slope is arranged at the feeding port to facilitate the smooth entry of the heat insulation strip; the width of the feeding port is slightly larger than the maximum width of the heat insulation strip to avoid jamming of the heat insulation strip during feeding. At the same time, a cutting device needs to be arranged on the side of the feeding port close to the sliding plate to realize the cutting of the heat insulation strip, and the setting of the cutting device cannot interfere with the operation of the sliding plate, and at the same time, it can effectively cut the heat insulation strip to avoid affecting the upward movement of the sliding plate after the heat insulation strip is cut.

[0008] In a further embodiment, a plurality of arc-shaped blocks are provided, and the plurality of arc-shaped blocks are respectively located on both sides of the sliding plate. The arc-shaped blocks are stably connected to the sliding plate, and the arc-shaped blocks are used to define the sliding trajectory of the heat insulation strip on the sliding plate; a plurality of spheres are provided, and the spheres are rotatably connected to the sliding plate. The spheres are located between the arc-shaped blocks on the sliding plate, and the spheres are used to reduce the friction of the heat insulation strip on the sliding plate. Among them, the radian of the arc-shaped block is carefully designed to be well matched with the shape of the heat insulation strip; the spheres are made of wear-resistant ceramic materials; the arc-shaped blocks are connected to the sliding plate by bolts for convenient replacement. The diameters of the spheres are evenly distributed within a certain range to ensure the smooth sliding of the heat insulation strip.

[0009] In a further embodiment, a plurality of clamping blocks are provided, and the plurality of clamping blocks are slidably connected to the support frame. The plurality of clamping blocks are all located in the chute on the side close to the first pushing portion, and the clamping blocks are used to support the sliding plate in the chute; a plurality of springs are provided, and the plurality of springs are respectively arranged in the support frame. The plurality of springs are respectively in contact with the plurality of clamping blocks, and the springs are used for the reset of the clamping blocks. Among them, a buffer pad can be arranged on the surface of the clamping block to reduce the impact when contacting the sliding plate; the elastic coefficient of the spring is selected according to the weight of the sliding plate and the required supporting force.

[0010] In a further embodiment, a plurality of limiting grooves are provided, and the plurality of limiting grooves are respectively opened on the upper cross frame and the lower cross frame; a plurality of limiting blocks are provided, and the plurality of limiting blocks are respectively stably connected to the plurality of sliding plates. The limiting blocks are located in the limiting grooves, and the limiting blocks are adapted to the limiting grooves. The limiting blocks are used to define the moving trajectory of the sliding plate. Among them, the matching precision of the limiting grooves and the limiting blocks is relatively high to ensure the accurate movement of the sliding plate; the depth and width of the limiting grooves are matched with the dimensions of the limiting blocks, and a small gap is reserved between the two to ensure smooth sliding and effective limiting.

[0011] In a further embodiment, an auxiliary plate is stably connected to the third pushing portion, and the auxiliary plate is used to prevent the sliding plate from interfering with the third pushing portion. Among them, the material of the auxiliary plate is the same as that of the sliding plate and has good wear resistance; the length and width of the auxiliary plate are determined according to the dimensions of the third pushing portion and the moving range of the sliding plate.

[0012] Beneficial effects: 1. Through the cooperation among the sliding plate, the first pushing part, the second pushing part and the third pushing part, the purpose of precisely and orderly pushing the heat insulation strip and the sliding plate is achieved. When producing the heat insulation strip, the sliding plate receives the heat insulation strip, and then through the orderly pushing of the first pushing part, the second pushing part and the third pushing part, the recycling of the sliding plate is realized. At the same time, through the arc-shaped block, it can prevent the first pushing part, the second pushing part and the third pushing part from directly contacting the heat insulation strip, and prevent the heat insulation strip from piling up on the support frame, thereby avoiding damage to the heat insulation strip such as deformation, scratches or even fractures due to excessive stress.

[0013] 2. Through the cooperation among the arc-shaped block, the spring and the block, it can prevent the sliding plate above from squeezing the heat insulation strip on the lower-layer sliding plate. When the first pushing part pushes the sliding plate upward, the sliding plate will squeeze the block, causing the block to retract into the support frame. When the sliding plate moves above the block, the spring will reset the block, so that the block can support the sliding plate. At the same time, the arc-shaped block on the sliding plate will push the upper-layer sliding plate, so that the sliding plate moves to the block at the upper layer. Brief description of the drawings

[0014] In order to more clearly illustrate the technical solutions in the embodiments of the present utility model or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the following drawings are only some embodiments of the present utility model. For those of ordinary skill in the art, without creative efforts, other drawings can be obtained based on these drawings.

[0015] Figure 1 It is a structural schematic diagram of the present utility model.

[0016] Figure 2 It is Figure 1 the main sectional structural schematic diagram of

[0017] Figure 3 It is Figure 1 the right sectional structural schematic diagram of

[0018] Figure 4 It is Figure 1 the left sectional structural schematic diagram of

[0019] Figure 5 It is Figure 3 the structural schematic diagram at position A of

[0020] Figure 6 It is Figure 4 the structural schematic diagram at position B of

[0021] The reference numerals in the figures are: 1, support frame; 101, feed inlet; 102, chute; 2, upper cross frame; 3, lower cross frame; 4, sliding plate; 401, arc-shaped block; 402, sphere; 403, limiting block; 5, first pushing part; 6, second pushing part; 7, third pushing part; 701, auxiliary plate; 8, limiting groove; 9, clamping block; 10, spring. Detailed implementation manners

[0022] To make the objectives, technical solutions and advantages of the embodiments of the present utility model clearer, the technical solutions in the embodiments of the present utility model are described clearly and completely. Apparently, the described embodiments are some but not all of the embodiments of the present utility model. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present utility model without creative efforts shall fall within the protection scope of the present utility model.

[0023] By providing a guiding device for heat insulation strip processing in the embodiments of the present application, the technical problems are solved that when a large number of heat insulation strips are stacked on the guiding device, if the pushing mechanism continues to push, the heat insulation strips will be subjected to excessive force, resulting in damage such as deformation, scratches or even fractures of the heat insulation strips, and when the sliding plate moves upward, the heat insulation strips on the lower sliding plate will be squeezed by the sliding plate above. In actual use, it is avoided that the heat insulation strips are damaged due to excessive pushing force, and at the same time, it is avoided that the sliding plate above squeezes the heat insulation strips on the lower sliding plate.

[0024] To better understand the above technical solutions, the above technical solutions will be described in detail below in conjunction with the accompanying drawings of the specification and specific implementation manners.

[0025] Referring to Figures 1-6 , a guiding device for heat insulation strip processing includes: a support frame 1; an upper cross frame 2 stably connected to the support frame 1; a lower cross frame 3 stably connected to the support frame 1, and the lower cross frame 3 is directly below the upper cross frame 2; a plurality of sliding plates 4, and the plurality of sliding plates 4 are respectively slidably connected to the upper cross frame 2 and the lower cross frame 3, and the sliding plates 4 are used for receiving heat insulation strips; a first pushing part 5 stably connected to the support frame 1, and the first pushing part 5 is below the lower cross frame 3, and the first pushing part 5 is used for pushing the sliding plate 4 to move upward; a second pushing part 6 stably connected to the support frame 1, and the second pushing part 6 is on one side of the upper cross frame 2, and the second pushing part 6 is used for pushing the sliding plate 4 to slide on the upper cross frame 2, and the second pushing part 6 and the first pushing part 5 are on the same side of the support frame 1; a third pushing part 7 stably connected to the support frame 1, and the third pushing part 7 is on the side of the lower cross frame 3 away from the second pushing part 6, and the third pushing part 7 is used for pushing the sliding plate 4 to slide on the lower cross frame 3.

[0026] Through the mutual cooperation between the above-mentioned structures, it is possible to avoid the thrust of the first pushing part 5 and the second pushing part 6 directly acting on the heat insulation strip, and at the same time, the recycling of the sliding plate 4 can be realized.

[0027] The sliding grooves 102 are provided in plurality, and the plurality of sliding grooves 102 are respectively provided on both sides of the support frame 1 close to the second pushing part 6 and the third pushing part 7. The sliding grooves 102 are adapted to the sliding plate 4, and the sliding grooves 102 are used to provide a sliding path for the sliding plate 4.

[0028] By providing the sliding grooves 102 adapted to the sliding plate 4 at specific positions on the support frame 1, a clear, stable and smooth sliding path is provided for the sliding plate 4, ensuring the directionality and stability of the movement of the sliding plate 4.

[0029] The feeding port 101 is provided on the support frame 1. The feeding port 101 is located on the side of the support frame 1 close to the first pushing part 5, and the feeding port 101 is communicated with the sliding groove 102. The lower surface of the feeding port 101 is flush with the sliding plate 4, and the feeding port 101 is used for the heat insulation strip to enter the support frame 1.

[0030] Through the position and structural cooperation of the feeding port 101, the sliding groove 102 and the sliding plate 4, the heat insulation strip can accurately and smoothly enter the interior of the support frame 1, preparing for the subsequent processing procedures.

[0031] A plurality of arc-shaped blocks 401 are provided, and the plurality of arc-shaped blocks 401 are respectively located on both sides of the sliding plate 4. The arc-shaped blocks 401 are stably connected to the sliding plate 4, and the arc-shaped blocks 401 are used for limiting the sliding track of the heat insulation strip on the sliding plate 4; a plurality of spheres 402 are provided, and the spheres 402 are rotatably connected to the sliding plate 4. The spheres 402 are located between the arc-shaped blocks 401 on the sliding plate 4, and the spheres 402 are used for reducing the friction between the heat insulation strip and the sliding plate 4.

[0032] Through the connection between the arc-shaped blocks 401 and the sliding plate 4 and the rotational connection cooperation of the spheres 402 on the sliding plate 4, the effective limitation of the sliding track of the heat insulation strip is realized, and at the same time, the friction between the heat insulation strip and the sliding plate 4 is reduced, making the movement of the heat insulation strip smoother and more controllable.

[0033] A plurality of clamping blocks 9 are provided, and the plurality of clamping blocks 9 are slidably connected to the support frame 1. The plurality of clamping blocks 9 are all located in the sliding groove 102 on the side close to the first pushing part 5, and the clamping blocks 9 are used for supporting the sliding plate 4 in the sliding groove 102; a plurality of springs 10 are provided, and the plurality of springs 10 are all arranged in the support frame 1. The plurality of springs 10 are respectively in contact with the plurality of clamping blocks 9, and the springs 10 are used for resetting the clamping blocks 9.

[0034] Through the sliding connection between the clamping block 9 and the sliding groove 102 and the contact cooperation between the spring 10 and the clamping block 9, the effective support for the sliding plate 4 and the automatic reset of the clamping block 9 are realized, ensuring the stable stay of the sliding plate 4 at different positions.

[0035] Limit grooves 8 are provided in multiple numbers, and the multiple limit grooves 8 are respectively provided on the upper cross frame 2 and the lower cross frame 3; limit blocks 403 are provided in multiple numbers, and the multiple limit blocks 403 are respectively stably connected to the multiple sliding plates 4. The limit blocks 403 are located in the limit grooves 8, and the limit blocks 403 are adapted to the limit grooves 8. The limit blocks 403 are used to limit the movement track of the sliding plate 4.

[0036] Through the adaptation cooperation between the limit groove 8 and the limit block 403, the accurate limitation of the movement track of the sliding plate 4 is realized, preventing it from shifting or abnormal movement, and ensuring the accuracy and stability of the operation of the device.

[0037] The auxiliary plate 701 is stably connected to the third pushing part 7, and the auxiliary plate 701 is used to prevent the sliding plate 4 from interfering with the third pushing part 7.

[0038] Through the stable connection cooperation between the auxiliary plate 701 and the third pushing part 7, it is realized to prevent the sliding plate 4 from interfering with the third pushing part 7 during the movement process, ensuring that the third pushing part 7 can normally and effectively push the sliding plate 4.

[0039] During the use process, the heat insulation strip enters the device through the feeding port 101 opened on the support frame 1 and communicated with the sliding groove 102. The lower surface of the feeding port 101 is flush with the sliding plate 4, ensuring that the heat insulation strip can be placed on the sliding plate 4 smoothly; the sliding plate 4 is slidably connected to the upper cross frame 2 and the lower cross frame 3, and arc-shaped blocks 401 for limiting the sliding track of the heat insulation strip are provided on both sides thereof. There is also a sphere 402 rotatably connected between the arc-shaped blocks 401 to reduce the friction force of the heat insulation strip; then, the first pushing part 5 below the lower cross frame 3 pushes the sliding plate 4 to move upward; multiple clamping blocks 9 are located in the sliding groove 102 and are used to support the sliding plate 4. When the sliding plate 4 moves upward and squeezes the clamping block 9, the clamping block 9 retracts into the support frame 1. After the sliding plate 4 moves above the clamping block 9, the spring 10 will reset the clamping block 9 to support the sliding plate 4; then, the second pushing part 6 on one side of the upper cross frame 2 pushes the sliding plate 4 to slide on the upper cross frame 2, and the sliding plate 4 close to the third pushing part 7 on the upper cross frame 2 will fall into the lower cross frame 3 through the sliding groove 102, and the third pushing part 7 pushes the sliding plate 4 to slide on the lower cross frame 3; the limit grooves 8 opened on the upper cross frame 2 and the lower cross frame 3 cooperate with the limit blocks 403 stably connected to the sliding plate 4 to limit the movement track of the sliding plate 4; an auxiliary plate 701 is stably connected to the third pushing part 7 to prevent the sliding plate 4 from interfering with the third pushing part 7; through the coordinated operation of each component, the orderly processing and movement of the heat insulation strip in the guiding device are realized.

[0040] The above-mentioned required detection mechanism, cooling mechanism, extrusion mechanism, positioning device, etc. all belong to the prior art and are non-essential technical features in this application. Therefore, they are not elaborated and drawn in the documents and drawings of this application.

[0041] In summary, compared with the prior art, the present invention has the following beneficial effects: effectively solving the problem that when a large amount of heat insulation strips accumulate on the guiding device, the heat insulation strips are deformed, scratched or even broken due to excessive force caused by the continuous pushing of the pushing mechanism; realizing precise control of the pushing of the heat insulation strips through the cooperation of multiple pushing parts and the sliding plate, avoiding excessive force application; secondly, avoiding the situation where the upper sliding plate squeezes the heat insulation strips on the lower sliding plate during the upward movement of the sliding plate; the cooperation of structures such as the arc-shaped block, spring, and clamping block not only ensures the stability of the movement of the sliding plate, but also maximally protects the integrity and quality of the heat insulation strips; furthermore, the setting of the sphere reduces the friction force of the heat insulation strips on the sliding plate, making the movement of the heat insulation strips smoother and improving the processing efficiency; and realizing the orderly recycling of the sliding plate.

[0042] The present utility model covers any substitutions, modifications, equivalent methods and solutions made within the essence and scope of the present utility model. In order to enable the public to have a thorough understanding of the present utility model, specific details are described in detail in the above preferred embodiments of the present utility model. However, those skilled in the art can fully understand the present utility model without the description of these details. In addition, in order to avoid unnecessary confusion to the essence of the present utility model, well-known methods, processes, procedures, components and circuits, etc. are not described in detail.

[0043] The above description is only a preferred embodiment of the present utility model. It should be noted that for those of ordinary skill in the art, without departing from the principle of the present utility model, several improvements and refinements can be made, and these improvements and refinements should also be regarded as the protection scope of the present utility model.

Claims

1. A guiding device for heat insulation strip processing, characterized in that, Comprising: Support frame (1); Upper cross-frame (2), stably connected to the support frame (1); Lower cross-frame (3), stably connected to the support frame (1), and the lower cross-frame (3) is directly below the upper cross-frame (2); Sliding plates (4), there are multiple of them, and the multiple sliding plates (4) are respectively slidably connected to the upper cross-frame (2) and the lower cross-frame (3), and the sliding plates (4) are used to carry the heat insulation strips; First pushing part (5), stably connected to the support frame (1), and the first pushing part (5) is below the lower cross-frame (3), and the first pushing part (5) is used to push the sliding plate (4) upward; Second pushing part (6), stably connected to the support frame (1), and the second pushing part (6) is on one side of the upper cross-frame (2), and the second pushing part (6) is used to push the sliding plate (4) to slide on the upper cross-frame (2), and the second pushing part (6) and the first pushing part (5) are on the same side of the support frame (1); Third pushing part (7), stably connected to the support frame (1), and the third pushing part (7) is on the side of the lower cross-frame (3) away from the second pushing part (6), and the third pushing part (7) is used to push the sliding plate (4) to slide on the lower cross-frame (3).

2. The guiding device for heat insulation strip processing according to claim 1, characterized in that, Further comprising: Chute grooves (102), there are multiple of them, and the multiple chute grooves (102) are respectively opened on both sides of the support frame (1) close to the second pushing part (6) and the third pushing part (7), the chute grooves (102) are adapted to the sliding plates (4), and the chute grooves (102) are used to provide a sliding path for the sliding plates (4).

3. The guiding device for heat insulation strip processing according to claim 2, characterized in that, Further comprising: Feeding port (101), opened on the support frame (1), the feeding port (101) is on the side of the support frame (1) close to the first pushing part (5), and the feeding port (101) is communicated with the chute grooves (102), the lower surface of the feeding port (101) is flush with the sliding plate (4), and the feeding port (101) is used for the heat insulation strips to enter the support frame (1).

4. The guiding device for heat insulation strip processing according to claim 1, characterized in that, Further comprising: Arc-shaped blocks (401), there are multiple of them, and the multiple arc-shaped blocks (401) are respectively on both sides of the sliding plate (4), the arc-shaped blocks (401) are stably connected to the sliding plate (4), and the arc-shaped blocks (401) are used for limiting the sliding track of the heat insulation strips on the sliding plate (4); Spheres (402), there are multiple of them, and the spheres (402) are rotatably connected to the sliding plate (4), the spheres (402) are between the arc-shaped blocks (401) on the sliding plate (4), and the spheres (402) are used to reduce the friction of the heat insulation strips on the sliding plate (4).

5. The guiding device for heat insulation strip processing according to claim 2, characterized in that, Further comprising: Locking blocks (9), there are multiple of them, and the multiple locking blocks (9) are slidably connected to the support frame (1), and the multiple locking blocks (9) are all in the chute grooves (102) on the side close to the first pushing part (5), and the locking blocks (9) are used to support the sliding plates (4) in the chute grooves (102); Springs (10), there are multiple of them, and the multiple springs (10) are all arranged in the support frame (1), and the multiple springs (10) are respectively in contact with the multiple locking blocks (9), and the springs (10) are used for the locking blocks (9) to reset.

6. The guiding device for heat insulation strip processing according to claim 1, characterized in that, Further comprising: Limit grooves (8), multiple in number, and the multiple limit grooves (8) are respectively formed on the upper cross frame (2) and the lower cross frame (3); Limit blocks (403), multiple in number, and the multiple limit blocks (403) are stably connected to the multiple sliding plates (4) respectively. The limit blocks (403) are located in the limit grooves (8), the limit blocks (403) are adapted to the limit grooves (8), and the limit blocks (403) are used to define the moving track of the sliding plates (4).

7. The guiding device for processing heat insulation strips according to claim 1, characterized in that, Further comprising: Auxiliary plates (701), stably connected to the third pushing part (7), and the auxiliary plates (701) are used to prevent the sliding plates (4) from interfering with the third pushing part (7).