Heat preservation and enclosure integrated plate pattern die and production method of heat preservation and enclosure integrated plate
By designing molds for integrated thermal insulation enclosure panels that adapt to different curvatures, and utilizing a combination of elastic and fixed plates, the problems of long production cycles and high costs for curved integrated thermal insulation enclosure panels have been solved, achieving efficient production and low-damage demolding.
Patent Information
- Application Number
- CN202511478080.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-16
- Publication Date
- 2025-11-18
- Estimated Expiration
- 2045-10-16
AI Technical Summary
In the existing technology, the production cycle of curved integrated thermal insulation enclosure panels is long and the cost is high. They require redesign and processing of molds, and the molds are easily damaged during demolding.
A mold for an integrated thermal insulation enclosure panel is provided, comprising two templates and a blocking component. The template consists of an elastic plate and a fixed plate. By adjusting the included angle of the fixed plate and the angle limiting component, it can adapt to different curvatures. No additional mold is required during the production process. When disassembling the mold, the fixed plate can rotate horizontally to reduce damage.
It shortens the production cycle of curved insulated enclosure panels, reduces production costs, minimizes damage to formwork, and improves production efficiency and the service life of formwork.
Smart Images

Figure CN120962831A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of building panel molding technology, and belongs to the category of special equipment for the production of energy-saving building materials. Specifically, it is a molding for an integrated thermal insulation enclosure panel and a method for producing an integrated thermal insulation enclosure panel. Background Technology
[0002] Integrated thermal insulation enclosure panels are building components that combine thermal insulation and decoration functions. They are widely used in building exterior walls and interior partitions, and have advantages such as low energy consumption during construction and maintenance, minimal environmental impact, short construction cycle, high installation precision, reduced thermal bridging effect, good fire resistance, and strong durability.
[0003] As the construction industry's demand for curved shapes (arcs or waves) of integrated thermal insulation enclosure panels continues to increase, it is necessary to customize molds according to the curved shape of the integrated thermal insulation enclosure panels. The molds are mostly made of metal or plastic materials. Therefore, each type of curved integrated thermal insulation enclosure panel requires redesign and processing of the mold, resulting in a long production cycle and high production cost. Summary of the Invention
[0004] The technical problem to be solved by the present invention is to overcome the existing defects and provide a mold for an integrated thermal insulation enclosure panel and a method for producing an integrated thermal insulation enclosure panel. The mold for the integrated thermal insulation enclosure panel is suitable for the production of integrated thermal insulation enclosure panels with different curvatures, eliminating the need for additional mold making, shortening the production cycle of curved integrated thermal insulation enclosure panels and reducing production costs. The method for producing an integrated thermal insulation enclosure panel also facilitates the installation or removal of the mold and reduces damage to the mold during demolding.
[0005] The technical solution adopted by this invention to solve its technical problem includes: On the one hand, an integrated thermal insulation enclosure panel mold is provided, including two blocking components and two templates. The templates include an elastic plate. Several parallel fixing plates are fixed on one side of the elastic plate along the length direction of the elastic plate, and the length direction of the fixing plates is perpendicular to the length direction of the elastic plate. Each fixing plate is fixed with a limiting component. Any two adjacent fixing plates are rotatably connected by a rotating connector. An angle limiting component is installed between any two adjacent limiting components.
[0006] Two templates are placed opposite each other on a flat operating surface. A positioning component is installed between the two templates. The length direction of any fixed plate is perpendicular to the operating surface, and the fixed plate is located on the outer side of the elastic plate. A filling space is formed between the two elastic plates. An insulation plate is installed in the filling space. Removable plugs are installed at both ends of the filling space along its length. The insulation plate divides the filling space into a first forming cavity and a second forming cavity.
[0007] As a preferred embodiment of the present invention, the positioning component includes a first screw, a sleeve, and a second screw. One end of the inner cavity of the sleeve is provided with a first helical groove adapted to the first screw, and the other end of the inner cavity of the sleeve is provided with a second helical groove adapted to the second screw. The helical direction of the first helical groove is opposite to that of the second helical groove. One end of the first screw is rotatably connected to a first locking member, and one end of the second screw is rotatably connected to a second locking member.
[0008] As a preferred embodiment of the present invention, the blocking component includes a first support plate, a second support plate, and a fixing component.
[0009] The first support plate and the second support plate are located within the filling space. The overlap width of the first support plate and the second support plate is adjusted, and the first support plate and the second support plate abut against two elastic plates respectively. The first support plate and the second support plate are fixedly connected by fasteners.
[0010] As a preferred embodiment of the present invention, the blocking component includes a blocking plate and two card seats, wherein the card seats are provided with card slots that are adapted to the blocking plate and the limiting component.
[0011] As a preferred embodiment of the present invention, the angle limiting member includes a connecting member, and both ends of the connecting member are rotatably mounted with sliders. Each slider is equipped with a limiting member, and the length direction of the limiting member is parallel to the length direction of the fixing plate.
[0012] The slider can slide along any of the limiting components.
[0013] As a preferred embodiment of the present invention, at least one elastic plate has a reinforcing mesh on its inner side.
[0014] As a preferred embodiment of the present invention, a plurality of insert rods are inserted into the insulation board, and both ends of the insert rods extend beyond the insulation board.
[0015] As a preferred embodiment of the present invention, a base is provided below the template, and the base includes a plurality of parallel support plates, with adjacent support plates sliding against each other.
[0016] On the other hand, a method for producing integrated thermal insulation enclosure panels is also provided, which uses any of the aforementioned integrated thermal insulation enclosure panel molds and includes the following steps: Two templates are placed opposite each other on a flat operating surface. A positioning component is installed between the two templates. The length direction of any fixed plate is perpendicular to the operating surface, and the fixed plate is located on the outer side of the elastic plate. This allows a number of fixed plates in the template to rotate horizontally. Then, the operating angle limiting component fixes the angle of any two adjacent fixed plates, forming a filling space between the two elastic plates.
[0017] An insulation board is placed inside the filling space, and plugs are installed at both ends of the filling space along its length. The insulation board divides the filling space into a first forming cavity and a second forming cavity.
[0018] Mortar is added to the first molding cavity and the second molding cavity respectively, and the difference between the height of the mortar in the first molding cavity and the height of the mortar in the second molding cavity is less than 10.0 cm during the mortar addition process. When the height of the mortar in the first molding cavity and the height of the mortar in the second molding cavity both reach the set height, the mortar in the first molding cavity and the mortar in the second molding cavity are vibrated.
[0019] As a preferred embodiment of the present invention, the following steps are also included: When removing the template, operate the angle limiting device to allow any two adjacent fixed plates to rotate horizontally relative to each other, and then start rotating the fixed plates one by one from the horizontal end of the template.
[0020] Compared with the prior art, the beneficial effects of the present invention are: 1. The integrated thermal insulation enclosure mold of the present invention, on the one hand, adjusts the curvature of the elastic plate by adjusting the included angle between two adjacent fixed plates, adapting to the production of integrated thermal insulation enclosures with different curvatures, eliminating the need for additional mold making, shortening the production cycle of curved integrated thermal insulation enclosures and reducing production costs; on the other hand, when removing the mold, any two adjacent fixed plates can be rotated horizontally relative to each other, starting from the horizontal end of the mold and rotating the fixed plates sequentially, so that the elastic plate corresponding to the fixed plate and the integrated thermal insulation enclosure are separated, reducing the damage to the mold during demolding.
[0021] 2. In the example of the integrated thermal insulation enclosure mold of the present invention, when the elastic plate is stretched straight along the length direction, the elastic plate has elastic potential energy to bend inward, thereby eliminating the wrinkles caused by the inward bending of the elastic plate and making the surface of the integrated thermal insulation enclosure panel free of depressions.
[0022] 3. In the example of the integrated thermal insulation enclosure panel mold of the present invention, the operator can adjust the distance between the first and second clamps by rotating the sleeve in the forward or reverse direction, thereby adjusting the distance between the two elastic plates, making the thickness adjustment of the integrated thermal insulation enclosure panel convenient.
[0023] 4. The production method of the integrated thermal insulation enclosure panel of the present invention is simple to operate, shortens the production cycle of the integrated thermal insulation enclosure panel and reduces the production cost, and facilitates the removal of the template, reducing the damage to the template during demolding. Attached Figure Description
[0024] Figure 1 This is a schematic diagram of an embodiment of the present invention; Figure 2 for Figure 1 Enlarged schematic diagram of the structure at point A; Figure 3 for Figure 1 Another perspective structural diagram; Figure 4 for Figure 1 A top-view structural diagram; Figure 5 This is a partial structural diagram of the template of the present invention; Figure 6 This is a schematic diagram of the positioning component structure of the present invention; Figure 7 This is a schematic diagram of the angle limiting component structure of the present invention; Figure 8 This is a schematic diagram of an embodiment of the blocking component of the present invention.
[0025] In the diagram: 1. Base, 2. Insulation board, 3. Template, 31. Fixing plate, 32. Limiting component, 33. Elastic plate, 34. Rotating connector, 4. Positioning component, 41. First clamping component, 42. First screw, 43. Sleeve, 44. Second screw, 45. Second clamping component, 5. Reinforcing mesh, 6. Blocking component, 61. First support plate, 62. Second support plate, 63. Fixing component, 7. Angle limiting component, 71. Limiting component, 72. Slider, 73. Connecting component, 8. First forming cavity, 9. Second forming cavity, 10. Insert rod, 11. Card seat, 12. Card slot. Detailed Implementation
[0026] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of the present invention without creative effort are within the scope of protection of the present invention.
[0027] Example 1: Please refer to Figures 1-8 This embodiment discloses an integrated thermal insulation enclosure panel mold, including two blocking components 6 and two templates 3. The template 3 includes an elastic plate 33. Several parallel fixing plates 31 are fixed on one side of the elastic plate 33 along the length direction of the elastic plate 33, and the length direction of the fixing plates 31 is perpendicular to the length direction of the elastic plate 33. Each fixing plate 31 is fixed with a limiting component 32. Any two adjacent fixing plates 31 are rotatably connected by a rotating connector 34. An angle limiting component 7 is installed between any two adjacent limiting components 32.
[0028] Two templates 3 are placed opposite each other on a flat operating surface. At least two positioning parts 4 are installed between the two templates 3. The length direction of any one of the fixed plates 31 is perpendicular to the operating surface, and the fixed plate 31 is located on the outer side of the elastic plate 33. A filling space is formed between the two elastic plates 33. A heat insulation plate 2 is provided in the filling space. Removable blocking parts 6 are installed at both ends of the filling space along its length direction. The heat insulation plate 2 and the inner side of one of the elastic plates 33 form a first forming cavity 8. The heat insulation plate 2 and the inner side of the other elastic plate 33 form a second forming cavity 9.
[0029] Preferably, the rotating connector 34 is a connecting belt, a hinge seat, or a hinge; the elastic plate 33 is an elastic rubber plate or an elastic silicone plate; and the insulation board 2 is an expanded perlite insulation board, a rock wool insulation board, or a polystyrene foam board.
[0030] Furthermore, the side of the elastic plate 33 with the fixing plate 31 is the outer side, and the side of the elastic plate 33 away from the fixing plate 31 is the inner side.
[0031] The working process and principle of this embodiment are as follows: The operator places two templates 3 opposite each other on a flat operating surface, with the inner sides of the two elastic plates 33 facing each other. The operator connects one fixed plate 31 on one template 3 and another fixed plate 31 on the other template 3 together through a positioning piece 4. The length direction of any fixed plate 31 is perpendicular to the operating surface, and the bottom of the fixed plate 31 and the bottom of the elastic plate 33 are in contact with the operating surface. The operator rotates a portion of the fixed plates 31 of the templates 3 horizontally, and then operates the angle limiting piece 7 to fix the angle of any two adjacent fixed plates 31. The filling space between the two templates 3 is arc-shaped or wavy.
[0032] Workers insert insulation board 2 into the filling space and install blocking parts 6 at both ends of the filling space along its length. Insulation board 2 divides the filling space into a first forming cavity 8 and a second forming cavity 9.
[0033] Workers add mortar to the first molding cavity 8 and the second molding cavity 9 respectively. During the mortar addition process, the difference between the height of the mortar in the first molding cavity 8 and the height of the mortar in the second molding cavity 9 is less than 10.0 cm. When the height of the mortar in the first molding cavity 8 and the height of the mortar in the second molding cavity 9 both reach the set height, the workers vibrate the mortar in the first molding cavity 8 and the mortar in the second molding cavity 9. After the mortar in the first molding cavity 8 and the mortar in the second molding cavity 9 solidify, they both adhere to the insulation board 2. The solidified mortar in the filling space and the insulation board 2 form an integrated insulation enclosure panel.
[0034] This integrated thermal insulation enclosure panel mold adjusts the curvature of the elastic plate 33 by adjusting the included angle between two adjacent fixed plates 31, making it suitable for the production of integrated thermal insulation enclosure panels with different curvatures. It eliminates the need for additional mold making, shortens the production cycle of curved integrated thermal insulation enclosure panels, and reduces production costs.
[0035] When dismantling the template 3, the operator operates the angle limiting piece 7 so that any two adjacent fixed plates 31 can rotate horizontally relative to each other. Then, starting from the horizontal end of the template 3, the operator rotates the fixed plates 31 one by one to separate the elastic plate 33 corresponding to the fixed plate 31 from the integrated insulation enclosure plate, thereby reducing the damage to the template 3 during demolding.
[0036] In the existing technology, arc-shaped molds or wavy molds are directly demolded. The molds usually separate along a fixed direction. However, the normal directions of different points of arc-shaped molds or wavy molds are different, which causes some areas of the mold to be subjected to oblique forces when demolding, making it easy to damage some areas of the mold.
[0037] Furthermore, the thickness of the elastic plate 33 gradually increases from top to bottom. After the first molding cavity 8 and the second molding cavity 9 are filled with mortar, the thickness of the elastic plate 33 at all points in contact with the mortar is similar.
[0038] Furthermore, when the elastic plate 33 is stretched straight along its length, the elastic plate 33 has elastic potential energy to bend inward, thereby eliminating the wrinkles caused by the inward bending of the elastic plate 33, so that the surface of the integrated thermal insulation enclosure panel is free of depressions.
[0039] Furthermore, the inner surfaces of the two elastic plates 33 and the inner surfaces of the two plugs 6 are coated with a release agent.
[0040] Furthermore, the distance between two adjacent fixed plates 31 is 0.0cm-1.0cm, the width of the fixed plate 31 is 2.0cm-15.0cm, and the thickness of the elastic plate 33 is 2.0cm-15.0cm.
[0041] Example 2: Figure 6As shown, this embodiment discloses an integrated thermal insulation enclosure panel mold, whose structure is roughly the same as that of Embodiment 1. The difference is that the positioning component 4 in this embodiment includes a first screw 42, a sleeve 43, and a second screw 44. One end of the inner cavity of the sleeve 43 is provided with a first spiral groove adapted to the first screw 42, and the other end of the inner cavity of the sleeve 43 is provided with a second spiral groove adapted to the second screw 44. The spiral direction of the first spiral groove is opposite to that of the second spiral groove. One end of the first screw 42 and the first locking member 41 are connected by a hinge or a hinge seat. The other end of the first screw 42 rotates into the first spiral groove. One end of the second screw 44 and the second locking member 45 are connected by a hinge or a hinge seat. The other end of the second screw 44 rotates into the second spiral groove. The rotation axis of the first locking member 41 and the rotation axis of the second locking member 45 are parallel, and the rotation axis of the first locking member 41 is perpendicular to the length direction of the sleeve 43.
[0042] Furthermore, both the first card 41 and the second card 45 are provided with a snap-fit groove adapted to the limiting member 32, and the snap-fit groove of the first card 41 and the snap-fit groove of the second card 45 can be snapped onto the limiting member 32.
[0043] The working process and principle of this embodiment are as follows: The worker places the first clip 41 against the fixing plate 31 of one of the templates 3, and the second clip 45 against the fixing plate 31 of the other template 3. The rotation axis of the first clip 41 is vertical. The worker rotates the sleeve 43 in the forward or reverse direction to adjust the distance between the first clip 41 and the second clip 45, thereby adjusting the distance between the two elastic plates 33, making it convenient to adjust the thickness of the integrated thermal insulation enclosure panel.
[0044] Preferably, the first screw 42, sleeve 43 and second screw 44 are replaced with a telescopic rod with controllable length, and the two ends of the telescopic rod are rotatably connected to the first clamp 41 and the second clamp 45 respectively.
[0045] Example 3: Figure 1 , Figure 2 and Figure 4 As shown, this embodiment discloses an integrated thermal insulation enclosure panel mold, whose structure is roughly the same as that of Embodiment 1 or Embodiment 2. The difference is that the blocking component 6 in this embodiment includes a first support plate 61, a second support plate 62, and a fixing component 63.
[0046] Preferably, the fastener 63 is a plate fixing clamp, or the fastener 63 is a screw fixed on the first support plate 61 with a nut installed on the screw, and the second support plate 62 has an elongated hole adapted to the screw.
[0047] The working process and principle of this embodiment are as follows: The workers positioned the first support plate 61 and the second support plate 62 within the filling space. Then, they adjusted the overlap width of the first support plate 61 and the second support plate 62 so that the first support plate 61 and the second support plate 62 rested against the two elastic plates 33 respectively. The workers then fixed the first support plate 61 and the second support plate 62 together using the fixing member 63. The blocking member 6 sealed the two horizontal ends of the filling space, and the two ends of the insulation plate 2 rested against the two blocking members 6 respectively.
[0048] Furthermore, the two elastic plates 33 directly abut against the positioning member 4, and the first locking member 41 and the second locking member 45 both contact the outer side of the blocking member 6, so that the blocking member 6 is firmly fixed between the two elastic plates 33.
[0049] Example 4: Figure 3 and Figure 8 As shown, this embodiment discloses an integrated thermal insulation enclosure panel mold, whose structure is roughly the same as that of Embodiment 1. The difference is that the blocking component 6 in this embodiment includes a blocking plate and two card seats 11. The card seats 11 are provided with card slots 12 that are adapted to the blocking plate and the limiting component 32.
[0050] The working process and principle of this embodiment are as follows: The staff placed the sealing plate at one end of the length of the filling space, and then made the two slots 12 on the card holder 11 respectively lock onto the sealing plate and the limiting member 32. The sealing plate is easy to install and remove.
[0051] Example 5: Figure 5 and Figure 7 As shown, this embodiment discloses an integrated thermal insulation enclosure panel mold, whose structure is roughly the same as that of Embodiment 1. The difference is that the angle limiting member 7 in this embodiment includes a connecting member 73. Both ends of the connecting member 73 are equipped with sliders 72 through ball joints. Each slider 72 is equipped with a limiting member 71. The length direction of the limiting member 32 is parallel to the length direction of the fixing plate 31.
[0052] The slider 72 can slide along any one of the limiting members 32.
[0053] Preferably, the limiting member 32 is a T-shaped plate or an I-shaped plate, the limiting member 71 is a bolt or a clamp, and the connecting member 73 is a connecting rod or a connecting plate.
[0054] The working process and principle of this embodiment are as follows: Before adjusting the angle of two adjacent fixed plates 31, the staff fixes the position of the slider 72 on one of the fixed plates 31 with the limiting member 71. After adjusting the angle of the two adjacent fixed plates 31, the staff fixes the position of the slider 72 on the other fixed plate 31 with the limiting member 71, so that the angle adjustment of the two adjacent fixed plates 31 is convenient.
[0055] Example 6: Figure 1 , Figure 3 and Figure 4 As shown, this embodiment discloses an integrated thermal insulation enclosure panel mold, whose structure is roughly the same as that of Embodiment 2. The difference is that in this embodiment, the angle limiting member 7 is replaced by the positioning member 4. The bottom of the first locking member 41 and the bottom of the second locking member 45 of the positioning member 4 are provided with a locking groove that is compatible with the limiting member 32.
[0056] Preferably, the limiting member 32 is a T-shaped plate or an I-shaped plate.
[0057] The working process and principle of this embodiment are as follows: After the staff adjusted the angle of the two adjacent fixing plates 31, the staff made the locking groove of the first locking piece 41 and the locking groove of the second locking piece 45 respectively engage with the limiting piece 32 of the two adjacent fixing plates 31, so that the angle of the two adjacent fixing plates 31 could be easily fixed.
[0058] Example 7: Figures 1-4 As shown, this embodiment discloses an integrated thermal insulation enclosure panel mold, whose structure is roughly the same as that of Embodiment 1. The difference is that, in this embodiment, at least one elastic plate 33 has a reinforcing mesh 5 on its inner side, and a plurality of insert rods 10 are inserted on the thermal insulation plate 2, with both ends of the insert rods 10 extending out of the thermal insulation plate 2.
[0059] Preferably, the reinforcing mesh 5 is a metal mesh or a fiber mesh, and the insertion rod 10 is made of carbon fiber, plastic or rubber.
[0060] The working process and principle of this embodiment are as follows: The reinforcing mesh 5 and the insert rod 10 enhance the structural strength of the integrated thermal insulation enclosure panel.
[0061] Example 8: As Figure 1 , Figure 3 and Figure 4 As shown, this embodiment discloses an integrated thermal insulation enclosure panel mold, whose structure is roughly the same as that of Embodiment 1. The difference is that the template 3 in this embodiment is provided with a base 1 below it. The base 1 includes several parallel support plates, and two adjacent support plates slide against each other.
[0062] The working process and principle of this embodiment are as follows: Workers can move the support plate along its length to keep the template 3 always on the base 1, reducing the site requirements of this integrated thermal insulation enclosure template.
[0063] Furthermore, a limiting seat is fixed on the operating plane, which restricts the two support plates located at the edge to slide only along the length of the support plates.
[0064] Example 9: Figures 1-8 As shown, this embodiment discloses a method for producing integrated thermal insulation enclosure panels, applicable to the integrated thermal insulation enclosure panel molds of any of Embodiments 1 to 8, including the following steps: Two templates 3 are placed opposite each other on a flat operating surface. A positioning component 4 is installed between the two templates 3. The length direction of any fixed plate 31 is perpendicular to the operating surface, and the fixed plate 31 is located on the outer side of the elastic plate 33, so that a portion of the fixed plates 31 in the template 3 can rotate horizontally. Then, the operating angle limiting component 7 fixes the angle of any two adjacent fixed plates 31, and a filling space is formed between the two elastic plates 33.
[0065] An insulation board 2 is placed inside the filling space, and plugs 6 are installed at both ends of the filling space along its length. The insulation board 2 divides the filling space into a first forming cavity 8 and a second forming cavity 9.
[0066] Mortar is added to the first molding cavity 8 and the second molding cavity 9 respectively, and the difference between the height of the mortar in the first molding cavity 8 and the height of the mortar in the second molding cavity 9 is less than 10.0 cm during the mortar addition process. When the height of the mortar in the first molding cavity 8 and the height of the mortar in the second molding cavity 9 both reach the set height, the mortar in the first molding cavity 8 and the mortar in the second molding cavity 9 are vibrated.
[0067] The production method of this integrated thermal insulation enclosure panel is simple to operate, shortens the production cycle of the integrated thermal insulation enclosure panel, and reduces production costs.
[0068] Example 10: As Figure 1 , Figure 2 and Figure 4 As shown, this embodiment discloses a method for producing integrated thermal insulation enclosure panels. The steps are largely the same as those in Embodiment Nine, except that the following steps are also included: When removing the template 3, the angle limiting component 7 can be operated so that any two adjacent fixed plates 31 can rotate horizontally relative to each other. Then, starting from the horizontal end of the template 3, the fixed plates 31 are rotated sequentially.
[0069] The production method of this integrated thermal insulation enclosure panel facilitates the removal of template 3 and reduces the damage to template 3 during demolding.
[0070] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention.
Claims
1. A type of integrated thermal insulation enclosure panel mold, characterized in that: It includes two blocking components (6) and two templates (3). The template (3) includes an elastic plate (33). Several parallel fixing plates (31) are fixed on one side of the elastic plate (33) along the length direction of the elastic plate (33). The length direction of the fixing plates (31) is perpendicular to the length direction of the elastic plate (33). Each fixing plate (31) is fixed with a limiting component (32). Any two adjacent fixing plates (31) are rotatably connected by a rotating connector (34). An angle limiting component (7) is installed between any two adjacent limiting components (32). Two templates (3) are placed opposite each other on a flat operating surface. A positioning component (4) is installed between the two templates (3). The length direction of any fixed plate (31) is perpendicular to the operating surface, and the fixed plate (31) is located on the outer side of the elastic plate (33). A filling space is formed between the two elastic plates (33). A heat insulation plate (2) is provided in the filling space. Removable plugs (6) are installed at both ends of the filling space in the length direction. The heat insulation plate (2) divides the filling space into a first molding cavity (8) and a second molding cavity (9).
2. The integrated thermal insulation enclosure panel mold according to claim 1, characterized in that: The positioning component (4) includes a first screw (42), a sleeve (43), and a second screw (44). One end of the inner cavity of the sleeve (43) is provided with a first spiral groove adapted to the first screw (42), and the other end of the inner cavity of the sleeve (43) is provided with a second spiral groove adapted to the second screw (44). The spiral direction of the first spiral groove is opposite to that of the second spiral groove. One end of the first screw (42) is rotatably connected to the first clamp (41), and one end of the second screw (44) is rotatably connected to the second clamp (45).
3. The integrated thermal insulation enclosure panel mold according to claim 1, characterized in that: The blocking component (6) includes a first support plate (61), a second support plate (62), and a fixing component (63); The first support plate (61) and the second support plate (62) are located in the filling space. The overlap width of the first support plate (61) and the second support plate (62) is adjusted. The first support plate (61) and the second support plate (62) respectively abut against two elastic plates (33). The first support plate (61) and the second support plate (62) are fixedly connected by a fastener (63).
4. The integrated thermal insulation enclosure panel mold according to claim 1, characterized in that: The blocking component (6) includes a blocking plate and two card holders (11), and the card holders (11) are provided with card slots (12) that are adapted to the blocking plate and the limiting component (32).
5. The integrated thermal insulation enclosure panel mold according to claim 1, characterized in that: The angle limiting member (7) includes a connector (73), and both ends of the connector (73) are rotatably mounted with sliders (72). Each slider (72) is equipped with a limiting member (71), and the length direction of the limiting member (32) is parallel to the length direction of the fixing plate (31). The slider (72) can slide along any of the limiting members (32).
6. The integrated thermal insulation enclosure panel mold according to claim 1, characterized in that: At least one elastic plate (33) has a reinforcing mesh (5) on its inner side.
7. The integrated thermal insulation enclosure panel mold according to claim 6, characterized in that: The insulation board (2) is provided with a number of insert rods (10), and both ends of the insert rods (10) extend outside the insulation board (2).
8. The integrated thermal insulation enclosure panel mold according to claim 1, characterized in that: The template (3) is provided with a base (1) below it. The base (1) includes several parallel support plates, and two adjacent support plates slide against each other.
9. A method for producing an integrated thermal insulation enclosure panel, applied to the mold of the integrated thermal insulation enclosure panel as described in any one of claims 1-8, characterized in that, Includes the following steps: Two templates (3) are placed opposite each other on a flat operating surface. A positioning component (4) is installed between the two templates (3). The length direction of any fixed plate (31) is perpendicular to the operating surface, and the fixed plate (31) is located on the outer side of the elastic plate (33). This allows a portion of the fixed plates (31) in the template (3) to rotate horizontally. Then, the angle limiting component (7) is used to fix the angle of any two adjacent fixed plates (31), and a filling space is formed between the two elastic plates (33). An insulation board (2) is placed in the filling space, and plugs (6) are installed at both ends of the filling space along its length. The insulation board (2) divides the filling space into a first forming cavity (8) and a second forming cavity (9). Mortar is added to the first molding cavity (8) and the second molding cavity (9) respectively. During the mortar addition process, the difference between the height of the mortar in the first molding cavity (8) and the height of the mortar in the second molding cavity (9) is less than 10.0 cm. When the height of the mortar in the first molding cavity (8) and the height of the mortar in the second molding cavity (9) both reach the set height, the mortar in the first molding cavity (8) and the mortar in the second molding cavity (9) are vibrated.
10. The method for producing integrated thermal insulation enclosure panels according to claim 9, characterized in that, It also includes the following steps: When removing the template (3), the angle limiting piece (7) is operated so that any two adjacent fixed plates (31) can rotate horizontally relative to each other. Then, starting from the horizontal end of the template (3), the fixed plates (31) are rotated sequentially.
Citation Information
Patent Citations
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