A low-temperature foaming forming device for diatomite-based foamed ceramic wall materials
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- INNER MONGOLIA DONGSHENG DIATOMITE TECH INNOVATION IND PARK CO LTD
- Filing Date
- 2026-06-30
- Publication Date
- 2026-08-07
AI Technical Summary
[0004]然而,设置独立的顶出机构不仅会显著增加装置整体的结构体积,还会增加制造成本,因而并不适用于多层发泡成型装置
1、本装置的发泡模具通过采用可从顶板与底板之间抽离的侧边框,使其在脱模过程中,通过将侧边框从顶板与底板之间抽离,以使侧边框的上下端口敞开,从而增大脱模操作空间,便于使用者进行脱模作业。由此,本装置在不设置顶出机构的情况下也具备脱模方便的特性,节约了装配空间,解决了现有技术中存在的缺陷。
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Figure CN224601922U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of foaming molding equipment technology, and in particular to a low-temperature foaming molding device for diatomaceous earth-based foamed ceramic wall materials. Background Technology
[0002] Diatomaceous earth-based foamed ceramic wall materials combine lightweight, thermal insulation, and certain mechanical strength, making them promising candidates for application in the field of green building wall materials.
[0003] In the prior art, most molding dies for foamed wall materials are equipped with a dedicated ejection mechanism to facilitate demolding, so as to eject the product from the mold after the foamed wall material has been foamed and molded. For example, the Chinese utility model patent with authorization announcement number CN223278376U proposes an EPS insulation board molding die, in which a support plate is movably arranged in the lower cavity of the lower mold, and a slot is opened in the lower part of the support plate. A transverse push plate is supported in the slot in the lower part of the support plate, and the inclined surface of the transverse push plate cooperates with the inclined surface of the slot. A geared motor is installed on the bottom plate, and a gear is installed on the output shaft of the geared motor. A rack is provided on the upper surface of the outer end of the transverse push plate, and the rack meshes with the gear. When demolding, the geared motor cooperates with the rack on the upper surface of the transverse push plate through the toothed belt, so that the transverse push plate lifts the support plate, thereby ejecting the EPS insulation board from the lower mold groove of the lower mold through the ejector pin, so as to achieve rapid demolding.
[0004] However, setting up a separate ejection mechanism would not only significantly increase the overall structural volume of the device, but also increase manufacturing costs, and therefore is not suitable for multi-layer foaming molding devices. Utility Model Content
[0005] To address the technical problems existing in the prior art, this utility model provides a low-temperature foaming molding device for diatomaceous earth-based foamed ceramic wall materials, comprising: a shell body, a heating device, a plurality of foaming molds and a driving module; an opening structure is formed on one side of the shell body; the heating device and the plurality of foaming molds are disposed in the inner cavity of the shell body; the driving module is disposed on the shell body and connected to the plurality of foaming molds, for driving the plurality of foaming molds to open or close. The foaming mold includes: The base plate is fixedly installed inside the cavity of the outer shell body; The top plate is movably mounted on the upper side of the bottom plate and is connected to the drive module. The side frame is located between the top and bottom plates and can be pulled out from the opening side of the main body of the shell.
[0006] Furthermore, the side border includes: The rear panel is movably positioned between the top panel and the bottom panel; A pair of side panels, the head ends of which are hinged to the two ends of the rear side panel respectively; The front side panel is detachably mounted to the rear end of a pair of side panels. The front side panel, the pair of side panels, and the rear side panel together form a rectangular frame. The front side panel is located on the opening side of the main body of the outer shell. The handle is fixedly mounted on the side wall of the front panel facing away from the rear panel.
[0007] Furthermore, the foaming mold also includes: a pair of assembly components, the pair of assembly components being disposed on the base plate, the pair of assembly components being disposed on both sides of the side frame, and both of the pair of assembly components being connected to the side frame for assembling the side frame onto the base plate.
[0008] Furthermore, the assembly components include: A floating plate is movably installed in the inner cavity of the outer shell body. The head end of the floating plate corresponds to the position of the opening side of the outer shell body, and an movable gap is formed between the floating plate and the side frame. A pair of support mechanisms are set on the base plate, and the pair of support mechanisms are connected to the floating plate to provide elastic support for the floating plate; The assembly plate is fixedly mounted on the side frame, and the bottom of the assembly plate abuts against the top of the floating plate. The guiding mechanism is installed on the floating plate and is connected to the assembly plate to guide the assembly plate.
[0009] Furthermore, the supporting institutions include: The guide hole is formed on the base plate and is set vertically. The guide rod is movably inserted into the inner cavity of the guide hole, and the top end of the guide rod is fixedly connected to the floating plate. A return spring is sleeved on the guide rod, with its two ends connected to the base plate and the floating plate, respectively, to provide elastic support for the floating plate.
[0010] Furthermore, the guidance mechanism includes: The strip-shaped holes are formed on the floating plate and extend along the length of the floating plate; The card slot is located at the head end of the floating plate; The guide protrusion is fixedly mounted on the assembly plate and is slidably connected to the strip hole; The locking block is fixedly mounted on the assembly plate and engages with the locking slot.
[0011] Furthermore, the foaming mold also includes: A pair of sealing grooves are respectively opened on the top plate and the bottom plate. When the foaming mold is in the closed state, the upper port and the lower port of the side frame are respectively inserted into the pair of sealing grooves. A pair of seals are respectively set in a pair of sealing grooves to seal the upper port and the lower port of the side frame.
[0012] Furthermore, the driver module includes: Several transmission supports are fixedly mounted on the top plates of several foaming molds; A pair of drive screws are mounted on the outer casing, with the bottom end of either drive screw rotatably connected to the outer casing. Any transmission screw is threaded with several internally threaded tubes, and these internally threaded tubes are respectively fixedly connected to several transmission supports. The transmission mechanism is fixedly mounted on the outer shell. A pair of power output ends of the transmission mechanism are respectively connected to a pair of transmission screws to drive the pair of transmission screws to rotate. The motor is mounted on the main housing, and its output shaft is connected to the power input end of the transmission mechanism to drive the transmission mechanism.
[0013] Furthermore, this device also includes: The main body of the outer casing is mounted on the support frame. The attitude adjustment module is mounted on the support bracket and is connected to the main body of the outer shell. It is used to adjust the pitch angle of the main body of the outer shell.
[0014] Furthermore, the posture adjustment module includes: The bearing shaft is fixedly mounted on the bearing bracket and is located on the lower side of the outer shell body; A pair of bearing housings are fixedly installed at the bottom of the outer casing, and both bearing housings are rotatably connected to the bearing shaft; A fixed shaft is fixedly mounted on the bearing support, and the fixed shaft is parallel to the bearing shaft; The assembly shaft is fixedly installed at the bottom of the outer casing, and the assembly shaft is parallel to the fixed shaft; Several electric telescopic rods are movably installed on the lower side of the outer shell. The two ends of any electric telescopic rod are rotatably connected to a fixed shaft and an assembly shaft, respectively, to drive the outer shell to rotate around the bearing shaft.
[0015] A low-temperature foaming molding apparatus for diatomaceous earth-based foamed ceramic wall materials according to an embodiment of the present invention has the following beneficial effects: 1. The foaming mold of this device employs a side frame that can be pulled apart from the top and bottom plates. During demolding, by removing the side frame from between the top and bottom plates, the upper and lower ends of the side frame are opened, thereby increasing the demolding operation space and facilitating demolding operations for the user. Therefore, this device achieves convenient demolding without the need for an ejector mechanism, saving assembly space and overcoming the shortcomings of existing technologies.
[0016] 2. The foaming mold of this device adopts a combined side frame, which allows the front side plate to be disassembled and a pair of side plates to be flipped outward during the demolding process, thereby reducing the demolding resistance of the wall material and effectively preventing damage to the wall material during demolding, thus improving the processing yield of this device.
[0017] 3. The foaming mold of this device is equipped with assembly components, which allow the side frame to be moved upward a certain distance by the elastic force of the return spring during the demolding process, so that the lower end of the side frame can be disengaged from the sealing groove opened on the bottom plate, and the side frame can be smoothly pulled out. In addition, during the mold closing process, the pair of side plates can be positioned by the locking blocks and locking slots, and the upper and lower edges of the rear side plate and the pair of side plates can be aligned with the sealing grooves opened on the top plate and the bottom plate respectively, ensuring that the foaming mold can be closed smoothly and making it convenient for users to perform mold closing operations.
[0018] It should be understood that both the foregoing general description and the following detailed description are exemplary and intended to provide further illustration of the claimed technology. Attached Figure Description
[0019] Figure 1 This is a perspective view of an embodiment of the present utility model; Figure 2 This is an assembly diagram of the foaming mold according to an embodiment of the present utility model; Figure 3 This is an exploded view of the structure of the foaming mold according to an embodiment of the present invention; Figure 4 This is an exploded view of the support mechanism according to an embodiment of the present utility model; Figure 5 This is an assembly diagram of the drive module according to an embodiment of the present utility model; Figure 6 This is an assembly diagram of the transmission mechanism according to an embodiment of the present utility model (assembly housing is hidden). Figure 7 This is an assembly diagram of the posture adjustment module according to an embodiment of the present invention.
[0020] Explanation of reference numerals in the attached figures: 1-Outer shell body, 2-Foaming mold, 21-Base plate, 22-Top plate, 23-Side frame, 231-Rear side plate, 232-Side side plate, 233-Front side plate, 234-Handle, 24-Assembly assembly, 241-Floating plate, 242-Support mechanism, 2421-Guide hole, 2422-Guide rod, 2423-Reset spring, 243-Assembly plate, 2441-Strip hole, 2442-Slot, 2443-Guide protrusion, 2444-Card block, 2 5-Sealing groove, 3-Drive module, 31-Transmission bracket, 32-Transmission screw, 33-Internal threaded tube, 34-Transmission mechanism, 341-Transmission shaft, 342-Worm gear, 343-Worm, 344-Double row pulley, 345-Synchronous pulley, 346-Synchronous toothed belt, 35-Motor, 36-Assembly opening, 4-Bearing bracket, 5-Attitude adjustment module, 51-Bearing shaft, 52-Bearing seat, 53-Fixed shaft, 54-Assembly shaft, 55-Electric telescopic rod. Detailed Implementation
[0021] The preferred embodiments of the present invention will be described in detail below with reference to the accompanying drawings, further illustrating the present invention.
[0022] The foregoing and other technical contents, features, and effects of this utility model will be clearly presented in the following detailed description of the embodiments with reference to the accompanying drawings. The directional terms mentioned in the following embodiments, such as up, down, left, right, front, or back, are only for reference to the directions in the accompanying drawings. Therefore, the directional terms used are for illustrative purposes and not for limiting the present utility model. Furthermore, in all embodiments, the same reference numerals denote the same elements.
[0023] Specifically, such as Figure 1 , 2 As shown in the figure, a low-temperature foaming molding device for diatomaceous earth-based foamed ceramic wall material according to an embodiment of the present invention includes: a shell body 1, a heating device (not shown in the figure), a plurality of foaming molds 2, and a driving module 3; an opening structure is formed on one side of the shell body 1; the heating device and the plurality of foaming molds 2 are disposed in the inner cavity of the shell body 1; the driving module 3 is disposed on the shell body 1 and connected to the plurality of foaming molds 2, and is used to drive the plurality of foaming molds 2 to open or close; wherein, the foaming mold 2 includes: a bottom plate 21, a top plate 22, and a side frame 23; the bottom plate 21 is fixedly disposed in the inner cavity of the shell body 1; the top plate 22 is movably disposed on the upper side of the bottom plate 21 and is connected to the driving module 3; the side frame 23 is disposed between the top plate 22 and the bottom plate 21, and the side frame 23 can be pulled out from the opening side of the shell body 1.
[0024] Furthermore, such as Figures 1-3As shown, the side frame 23 includes: a rear side plate 231, a pair of side plates 232, a front side plate 233, and a handle 234; the rear side plate 231 is movably disposed between the top plate 22 and the bottom plate 21; the head ends of the pair of side plates 232 are respectively hinged to the two ends of the rear side plate 231; the front side plate 233 is detachably assembled to the tail ends of the pair of side plates 232 by a pair of bolts, and the front side plate 233, the pair of side plates 232, and the rear side plate 231 are combined to form a rectangular frame, and the front side plate 233 is located on the open side of the outer shell body 1; the handle 234 is fixedly disposed on the side wall of the front side plate 233 facing away from the rear side plate 231.
[0025] Furthermore, such as Figure 2 , 3 As shown, the foaming mold 2 also includes: a pair of assembly components 24, which are disposed on the base plate 21 and respectively disposed on both sides of the side frame 23. Both assembly components 24 are connected to the side frame 23 and are used to assemble the side frame 23 onto the base plate 21.
[0026] Furthermore, such as Figure 2 , 3 As shown, the assembly assembly 24 includes: a floating plate 241, a pair of support mechanisms 242, an assembly plate 243, and a guide mechanism; the floating plate 241 is movably disposed in the inner cavity of the outer shell body 1, with the head end of the floating plate 241 corresponding to the opening side of the outer shell body 1, and an movable gap is formed between the floating plate 241 and the side plate 232 of the side frame 23; the pair of support mechanisms 242 are disposed on the base plate 21 and connected to the floating plate 241 for elastically supporting the floating plate 241; the assembly plate 243 is fixedly disposed on the side frame 23, with the bottom of the assembly plate 243 abutting against the top of the floating plate 241; the guide mechanism is disposed on the floating plate 241 and connected to the assembly plate 243 for guiding the assembly plate 243.
[0027] Furthermore, such as Figures 2-4 As shown, the support mechanism 242 includes: a guide hole 2421, a guide rod 2422, and a return spring 2423; the guide hole 2421 is opened on the base plate 21 and is arranged vertically; the guide rod 2422 is movably inserted into the inner cavity of the guide hole 2421, and the top end of the guide rod 2422 is fixedly connected to the floating plate 241; the return spring 2423 is sleeved on the guide rod 2422, and the two ends of the return spring 2423 are respectively connected to the base plate 21 and the floating plate 241 for elastically supporting the floating plate 241.
[0028] Furthermore, such as Figure 2 , 3As shown, the guiding mechanism includes: a strip hole 2441, a slot 2442, a guide protrusion 2443, and a locking block 2444; the strip hole 2441 is formed on the floating plate 241 and extends along the length of the floating plate 241; the slot 2442 is formed at the head end of the floating plate 241; the guide protrusion 2443 is fixedly mounted on the assembly plate 243 and is slidably connected to the strip hole 2441; the locking block 2444 is fixedly mounted on the assembly plate 243 and engages with the slot 2442.
[0029] Furthermore, such as Figure 2 As shown, the foaming mold 2 also includes: a pair of sealing grooves 25 and a pair of sealing elements (not shown in the figure); the pair of sealing grooves 25 are respectively opened on the top plate 22 and the bottom plate 21. When the foaming mold 2 is in the closed state, the upper port and the lower port of the side frame 23 are respectively inserted into the pair of sealing grooves 25; the pair of sealing elements are respectively disposed in the pair of sealing grooves 25 for sealing the upper port and the lower port of the side frame 23.
[0030] Furthermore, such as Figure 1 , 5 As shown, the drive module 3 includes: several transmission brackets 31, a pair of transmission screws 32, internally threaded tubes 33, a transmission mechanism 34, and a motor 35; the several transmission brackets 31 are respectively fixedly mounted on the top plates 22 of several foaming molds 2; the pair of transmission screws 32 are mounted on the outer shell body 1, and the bottom end of any transmission screw 32 is rotatably connected to the outer shell body 1; several internally threaded tubes 33 are threaded onto any transmission screw 32, the internally threaded tubes 33 are not connected to the outer shell body 1, and there is a distance between any internally threaded tube 33 and the outer shell body 1. The assembly gap is provided by several assembly openings 36 on the side wall of the outer shell body 1. The connecting ends of several transmission brackets 31 pass through several assembly openings 36 and are fixedly connected to several internal threaded tubes 33. The transmission mechanism 34 is fixedly installed on the outer shell body 1. A pair of power output ends of the transmission mechanism 34 are respectively connected to a pair of transmission screws 32 to drive the pair of transmission screws 32 to rotate. The motor 35 is installed on the outer shell body 1. The output shaft of the motor 35 is connected to the power input end of the transmission mechanism 34 to drive the transmission mechanism 34 to run.
[0031] Preferably, such as Figure 5 , 6As shown, in this embodiment, the transmission mechanism 34 includes: an assembly housing (not shown in the figure), a transmission shaft 341, a worm gear 342, a worm 343, a double-row pulley 344, a pair of synchronous pulleys 345, and a pair of synchronous toothed belts 346; the assembly housing is fixedly disposed on the top of the outer shell body, and the top ends of the pair of transmission screws 32 extend into the assembly housing and are rotatably connected to the assembly housing; the transmission shaft 341 is vertically disposed in the inner cavity of the assembly housing, and the transmission shaft 341 is located between the pair of transmission screws 32, with both the upper and lower ends of the transmission shaft 341 rotatably connected to the inner wall of the assembly housing; the worm gear 342 is fixedly sleeved on the transmission shaft 341; the worm 343 is disposed in the inner cavity of the assembly housing, and the worm... Both ends of 343 are rotatably connected to the inner wall of the assembly housing. One end of the worm 343 is fixedly connected to the output shaft of the motor 35. The worm 343 meshes with the worm wheel 342 to drive the worm wheel 342 to rotate. The double-row pulley 344 is fixedly sleeved on the transmission shaft 341 and is located below the worm wheel 342. A pair of synchronous pulleys 345 are fixedly sleeved on the top ends of a pair of transmission screws 32 and are located in the inner cavity of the assembly housing. The two rows of grooves of the double-row pulley 344 are respectively connected to the pair of synchronous pulleys 345 through a pair of synchronous toothed belts 346, so that the pair of synchronous toothed belts 346 can drive the pair of synchronous pulleys 345 to rotate.
[0032] When the transmission mechanism 34 is running, the motor 35 drives the worm 343 to rotate, which in turn drives the worm wheel 342 to rotate. During the rotation, the worm wheel 342 drives the double-row pulley 344, which is fixedly mounted on the transmission shaft 341, to rotate synchronously with the worm wheel 342. At the same time, the double-row pulley 344 drives a pair of synchronous pulleys 345 to rotate through a pair of synchronous toothed belts 346, thereby achieving the purpose of using a pair of synchronous pulleys 345 to drive a pair of transmission screws 32 to rotate.
[0033] Furthermore, such as Figure 1 As shown, the device also includes: a support bracket 4 and an attitude adjustment module 5; the outer shell body 1 is mounted on the support bracket 4; the attitude adjustment module 5 is mounted on the support bracket 4 and is connected to the outer shell body 1 for adjusting the pitch angle of the outer shell body 1.
[0034] Furthermore, such as Figure 1 , 7As shown, the attitude adjustment module 5 includes: a bearing shaft 51, a pair of bearing seats 52, a fixed shaft 53, an assembly shaft 54, and several electric telescopic rods 55; the bearing shaft 51 is fixedly mounted on the bearing support 4, and the bearing shaft 51 is located on the lower side of the outer shell body 1; the pair of bearing seats 52 are fixedly mounted on the bottom of the outer shell body 1, and both bearing seats 52 are rotatably connected to the bearing shaft 51; the fixed shaft 53 is fixedly mounted on the bearing support 4, and the fixed shaft 53 is parallel to the bearing shaft 51; the assembly shaft 54 is fixedly mounted on the bottom of the outer shell body 1, and the assembly shaft 54 is parallel to the fixed shaft 53; several electric telescopic rods 55 are movably mounted on the lower side of the outer shell body 1, and the two ends of any electric telescopic rod 55 are rotatably connected to the fixed shaft 53 and the assembly shaft 54 respectively, for driving the outer shell body 1 to rotate around the bearing shaft 51.
[0035] When demolding the wall material, firstly, the motor 35 drives the transmission mechanism 34 to run, which in turn drives a pair of transmission screws 32 to rotate in the forward direction. During the rotation of the pair of transmission screws 32, the transmission screws 32 drive the transmission bracket 31 and the top plate 22 fixedly connected to the transmission bracket 31 to rise a certain distance through the internal threaded tube 33 threaded onto it. As the top plate 22 rises, the floating plate 241, under the elastic force of the return spring 2423, drives the assembly plate 243 and the side frame 23 fixedly connected to it to rise synchronously, so that the lower end of the side frame 23 disengages from the sealing groove 25 opened on the bottom plate 21. The side frame 23 stops rising before the top plate 22 reaches its final position, causing the top plate 22 to rise to its final position. After the side frame 23 is in position, the upper end of the side frame 23 disengages from the sealing groove 25 on the top plate 22. After the side frame 23 is in position, the user uses the drive handle 234 to pull the wall material foamed in the inner cavity of the side frame 23 out of the inner cavity of the outer shell 1 a certain distance, so that the locking block 2444 disengages from the locking groove 2442. Then, the user removes the bolts that fix the front side plate 233 and the tail end of the pair of side plates 232, as well as the front side plate 233, and drives the pair of side plates 232 to rotate outward at a certain angle to reduce the contact area between the side frame 23 and the wall material and reduce the demolding resistance of the wall material. Finally, the user removes the wall material from the inner cavity of the side frame 23, thus completing the demolding of the wall material.
[0036] When the mold is closed, the user pushes the rear side plate 231 and a pair of side plates 232 into the inner cavity of the outer shell body 1, so that the locking blocks 2444 of the pair of assembly components 24 are re-locked into the corresponding slots 2442; then, the motor 35 drives the transmission mechanism 34 to run again, driving a pair of transmission screws 32 to rotate in the opposite direction. The threaded assembly relationship between the transmission screws 32 and the internal threaded tube 33 drives the transmission bracket 31 and the top rod fixedly connected to it to move down a certain distance. During this process, the top plate 22 presses down the pair of side plates 232 and the rear side plate 231, so that its lower edge is inserted into the sealing groove 25 opened on the bottom plate 21, and its upper edge is inserted into the sealing groove 25 opened on the top plate 22. Next, the electric telescopic rod 55 extends, driving the opening side of the outer shell 1 to rise at a certain angle. After this, the user inputs the wall material into the cavity formed by the top plate 22, bottom plate 21, rear side plate 231, and a pair of side plates 232. Next, the user uses bolts to fix the front side plate 233 to the tail ends of the pair of side plates 232, forming a sealed cavity containing the wall material. Finally, the electric telescopic rods 55 retract and reset, causing the outer shell 1 to flip and reset, thus completing the mold closing process. After mold closing, the heating device on the outer shell 1 heats the material at a preset temperature for a predetermined time, causing the wall material to foam and form within the cavity of the foaming mold 2.
[0037] It should be noted that, in this specification, the terms "comprising," "including," or any other variations thereof are intended to cover a non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, an element defined by the phrase "comprising..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes said element.
[0038] Although the present invention has been described in detail through the above preferred embodiments, it should be understood that the above description should not be considered as a limitation of the present invention. Various modifications and substitutions to the present invention will be apparent to those skilled in the art after reading the above content. Therefore, the scope of protection of the present invention should be defined by the appended claims.
Claims
1. A low-temperature foaming molding apparatus for diatomaceous earth-based foamed ceramic wall materials, comprising: a shell body, a heating device, a plurality of foaming molds, and a driving module; an opening structure is formed on one side of the shell body; the heating device and the plurality of foaming molds are disposed in the inner cavity of the shell body; the driving module is disposed on the shell body and connected to the plurality of foaming molds, for driving the plurality of foaming molds to open or close; characterized in that, The foaming mold includes: The base plate is fixedly installed in the inner cavity of the outer shell body; A top plate is movably mounted on the upper side of the bottom plate, and the top plate is connected to the drive module; A side frame is disposed between the top plate and the bottom plate, and the side frame can be pulled out from the opening side of the outer shell body.
2. The low-temperature foaming molding device for diatomaceous earth-based foamed ceramic wall materials as described in claim 1, characterized in that, The side border includes: The rear side panel is movably disposed between the top plate and the bottom plate; A pair of side panels, the head ends of which are respectively hinged to the two ends of the rear side panel; A front side panel is detachably mounted to the rear end of the pair of side panels. The front side panel, the pair of side panels, and the rear side panel together form a rectangular frame. The front side panel is located on the opening side of the main body of the outer shell. The handle is fixedly mounted on the side wall of the front panel facing away from the rear panel.
3. The low-temperature foaming molding device for diatomaceous earth-based foamed ceramic wall materials as described in claim 1, characterized in that, The foaming mold further includes: a pair of assembly components, the pair of assembly components being disposed on the base plate, the pair of assembly components being respectively disposed on both sides of the side frame, and the pair of assembly components being connected to the side frame for assembling the side frame onto the base plate.
4. The low-temperature foaming molding device for diatomaceous earth-based foamed ceramic wall materials as described in claim 3, characterized in that, The assembly component includes: A floating plate is movably disposed in the inner cavity of the outer shell body, with the head end of the floating plate corresponding to the opening side of the outer shell body, and an movable gap is formed between the floating plate and the side frame. A pair of support mechanisms are disposed on the base plate, and the pair of support mechanisms are connected to the floating plate for elastically supporting the floating plate; An assembly plate is fixedly mounted on the side frame, with the bottom of the assembly plate abutting against the top of the floating plate; A guiding mechanism is disposed on the floating plate and is connected to the assembly plate to guide the assembly plate.
5. The low-temperature foaming molding device for diatomaceous earth-based foamed ceramic wall materials as described in claim 4, characterized in that, The support mechanism includes: A guide hole is formed on the base plate, and the guide hole is arranged vertically; A guide rod is movably inserted into the inner cavity of the guide hole, and the top end of the guide rod is fixedly connected to the floating plate; A return spring is sleeved on the guide rod, and its two ends are connected to the base plate and the floating plate respectively, for elastic support of the floating plate.
6. The low-temperature foaming molding apparatus for diatomaceous earth-based foamed ceramic wall materials as described in claim 4, characterized in that, The guiding mechanism includes: A strip-shaped hole is formed on the floating plate, and the strip-shaped hole extends along the length direction of the floating plate; A slot is provided at the head end of the floating plate; A guide protrusion is fixedly mounted on the assembly plate, and the guide protrusion is slidably connected to the strip hole; A locking block is fixedly mounted on the assembly plate, and the locking block engages with the locking slot.
7. The low-temperature foaming molding device for diatomaceous earth-based foamed ceramic wall materials as described in claim 1, characterized in that, The foaming mold further includes: A pair of sealing grooves are respectively formed on the top plate and the bottom plate. When the foaming mold is in the closed state, the upper port and the lower port of the side frame are respectively inserted into the pair of sealing grooves. A pair of seals are respectively disposed in the pair of sealing grooves for sealing the upper port and the lower port of the side frame.
8. The low-temperature foaming molding device for diatomaceous earth-based foamed ceramic wall materials as described in claim 1, characterized in that, The driver module includes: Several transmission brackets are respectively fixedly installed on the top plates of the several foaming molds; A pair of drive screws are disposed on the housing body, and the bottom end of either drive screw is rotatably connected to the housing body; Each of the aforementioned transmission screws is threaded with a plurality of internally threaded tubes, and the plurality of internally threaded tubes are respectively fixedly connected to the plurality of transmission brackets; A transmission mechanism is fixedly mounted on the outer shell body. A pair of power output ends of the transmission mechanism are respectively connected to a pair of transmission screws to drive the pair of transmission screws to rotate. An electric motor is mounted on the main housing, and the output shaft of the motor is connected to the power input end of the transmission mechanism to drive the transmission mechanism.
9. The low-temperature foaming molding device for diatomaceous earth-based foamed ceramic wall materials as described in claim 1, characterized in that, Also includes: A support bracket, wherein the outer casing is mounted on the support bracket; An attitude adjustment module is mounted on the support bracket and is connected to the outer shell body. The attitude adjustment module is used to adjust the pitch angle of the outer shell body.
10. The low-temperature foaming molding apparatus for diatomaceous earth-based foamed ceramic wall materials as described in claim 9, characterized in that, The posture adjustment module includes: A bearing shaft is fixedly mounted on the bearing bracket, and the bearing shaft is located on the lower side of the outer shell body; A pair of bearing seats are fixedly disposed at the bottom of the housing body, and both bearing seats are rotatably connected to the bearing shaft; A fixed shaft is fixedly mounted on the bearing support, and the fixed shaft is parallel to the bearing shaft; An assembly shaft is fixedly disposed at the bottom of the outer casing body, and the assembly shaft is parallel to the fixed shaft; Several electric telescopic rods are movably mounted on the lower side of the outer shell body. The two ends of any one of the electric telescopic rods are respectively rotatably connected to the fixed shaft and the assembly shaft, and are used to drive the outer shell body to rotate around the bearing shaft.
Citation Information
Patent Citations
EPS insulation board forming die
CN223278376U