Aluminum mold lifting device

Through the combination of the adaptive lifting mechanism and the mold loading frame, the aluminum mold is clamped with stud compression and hanging rollers, and combined with the elastic inclined L-shaped push plate and auxiliary loading roller, the existing aluminum mold lifting device is solved, and efficient and safe aluminum mold transportation and disassembly are achieved.

CN120246842AActive Publication Date: 2025-07-04CHINA CONSTRUCTION IND & ENERGY ENGINEERING XIAN CONSTRUCTION INVESTMENT CO LTD
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Patent Information

Application Number
CN202510707062.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-29
Publication Date
2025-07-04
Estimated Expiration
2045-05-29

AI Technical Summary

Technical Problem

The existing aluminum mold lifting device has low working efficiency and is inconvenient to disassemble the lifted aluminum mold. Especially when facing aluminum molds of different specifications, the lifting module needs to be frequently replaced, resulting in a reduced construction efficiency.

Method used

Adaptive lifting mechanism and mold loading frame are adopted to tighten the aluminum mold through studs, and the aluminum mold is clamped by a hanging roller and a motor drive shaft, and combined with an elastic inclined L-shaped push plate and auxiliary loading roller, so that the aluminum mold is easy to unload after being lifted.

Benefits of technology

It has achieved efficient improvement and convenient disassembly of aluminum molds of different specifications, improved construction efficiency, and reduced the risk and labor intensity of manual transportation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention provides an aluminum mold lifting device, and belongs to the technical field of aluminum mold transportation. Comprising a self-adaptive lifting mechanism and a guide rail, and the guide rail is installed at the bottom of the self-adaptive lifting mechanism and communicates with the interior of the self-adaptive lifting mechanism. By arranging the self-adaptive lifting mechanism and the mold carrying frame, after an aluminum mold is placed on the mold carrying frame, a pressing plate is made to press the aluminum mold through a stud, meanwhile, two sets of hanging rollers are driven to convey the aluminum mold to the position between a third rotating shaft and a first rotating shaft, and then a motor is driven to enable the first rotating shaft and the third rotating shaft to clamp the aluminum mold and drive the aluminum mold to move upwards; according to the aluminum mold lifting device, the aluminum molds are slowly separated from the mold carrying frame, so that lifting of the aluminum molds of different specifications is completed, meanwhile, the lifted aluminum molds can deflect through cooperation of an elastic inclined L-shaped push plate and an auxiliary feeding roller, so that the lifted aluminum molds can be conveniently discharged, and the problems that an existing aluminum mold lifting device is low in working efficiency and high in working efficiency are solved. And the problem that the lifted aluminum mold is inconvenient to disassemble is solved.
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Description

Technical Field

[0001] The present invention relates to the technical field of aluminum form transportation, and particularly relates to an aluminum form lifting device. Background Art

[0002] During the construction operation, after the construction of low-rise buildings is completed, it is necessary to remove the aluminum forms and transport them to high-rise buildings for reuse. However, some aluminum forms are not easy to be transported manually due to their large weight. At the same time, manual transportation is relatively dangerous and inefficient.

[0003] Most of the existing aluminum form lifting devices on the market adopt the cooperation of multi-stage lifting modules and transmission devices to lift the aluminum forms. Therefore, the specifications of the aluminum forms to be lifted are determined by the types of the lifting modules. However, in actual construction, the specifications of the aluminum forms in the low-rise buildings are diverse. Therefore, it is necessary to frequently replace different lifting modules to lift aluminum forms of different specifications, which reduces the construction efficiency. At the same time, after the aluminum forms are lifted to high-rise buildings, in the existing aluminum form lifting devices, since the aluminum forms are lifted vertically, it is not convenient to disassemble the aluminum forms when the height of the aluminum forms is relatively large.

[0004] Therefore, the present application provides an aluminum form lifting device to meet the requirements. Summary of the Invention

[0005] The technical problem to be solved by the present invention is to provide an aluminum form lifting device. After placing the aluminum form on the mold carrier, the pressure plate is pressed against the aluminum form by using the stud. At the same time, two groups of lifting rollers are driven to transport the aluminum form between the third rotating shaft and the first rotating shaft. Then, the driving motor enables the first rotating shaft and the third rotating shaft to clamp the aluminum form and drive the aluminum form to move upward, so that it slowly disengages from the mold carrier, thereby completing the lifting of aluminum forms of different specifications. At the same time, by using the cooperation of the elastic inclined L-shaped push plate and the auxiliary feeding roller, the lifted aluminum form can be deflected, so as to facilitate the unloading of the lifted aluminum form, and solve the problems that the existing aluminum form lifting devices have low working efficiency and are not convenient for disassembling the lifted aluminum forms.

[0006] To solve the above technical problem, the present invention provides the following technical solutions: An aluminum form lifting device includes an adaptive lifting mechanism and a guide rail. The guide rail is installed at the bottom of the adaptive lifting mechanism and is internally connected to the adaptive lifting mechanism. The adaptive lifting mechanism is composed of an alignment component, an elastic inclined L-shaped push plate, an auxiliary support plate, a top frame, a lifting roller and a bottom support frame. The alignment component includes a base frame. An upper feeding groove is opened at the bottom of the base frame, and the upper feeding groove is internally connected to the guide rail; The alignment component can adjust the width of the upper feeding groove, the elastic inclined L-shaped push plate can apply pressure to the aluminum form, the lifting roller can lift the aluminum form, and the bottom support frame can support the adaptive lifting mechanism.

[0007] Optionally, the inner walls at both ends on the left side of the base frame are rotatably connected to a first rotating shaft. A secondary frame is fixedly installed on the right end wall of the base frame. The inner walls on both sides of the secondary frame are rotatably connected to a second rotating shaft. A second helical gear is fixedly installed on the front end wall of the second rotating shaft. A first helical gear is fixedly installed on the end wall of the first rotating shaft located inside the secondary frame. The first helical gear meshes with the second helical gear. A motor is fixedly installed on the outer end wall of the secondary frame, and the output end of the motor is fixedly connected to the end wall of the second rotating shaft.

[0008] Optionally, a bottom groove is formed between the top surface of the bottom of the base frame and the bottom surfaces of both side walls. Sliding grooves are formed at both the top and bottom of both side walls of the base frame. An I-shaped plate is provided inside the base frame. The bottom of the I-shaped plate is located in the bottom groove, and the top of the I-shaped plate is located on the base frame. Sliders are fixedly installed on both the top and bottom end inner walls of the I-shaped plate. The sliders are used in cooperation with the corresponding sliding grooves, and the I-shaped plate is slidably connected to the base frame.

[0009] Optionally, a push column is fixedly installed on the outer wall of the middle part of the I-shaped plate, and the push column slidably penetrates the side wall of the base frame. A cylinder is fixedly installed on the outer wall of the base frame, and the output end of the cylinder is fixedly connected to the end wall of the push column.

[0010] Optionally, support frames are fixedly installed on both end walls of the I-shaped plate. A third rotating shaft is rotatably connected to the inner walls of the two support frames. Activity grooves are formed on both side walls of the base frame. Both ends of the third rotating shaft are respectively located in the two activity grooves and are slidably connected to the activity grooves. A third helical gear is fixedly installed on the end wall of the third rotating shaft located inside the secondary frame.

[0011] Optionally, a cross-shaped groove is formed in the inner wall of the middle part of the second rotating shaft, and the cross-shaped groove penetrates the second rotating shaft. A limiting frame is fixedly installed on the outer end wall of the I-shaped plate. A rotating cylinder is rotatably connected to the inner wall of the limiting frame. The rotating cylinder is sleeved on the second rotating shaft. A cross-shaped plate is fixedly installed on the inner wall of the rotating cylinder. The cross-shaped plate is located in the cross-shaped groove, and the rotating cylinder is slidably connected to the second rotating shaft. A fourth helical gear is fixedly installed on the end wall of the rotating cylinder. The fourth helical gear meshes with the third helical gear.

[0012] Optionally, a protective plate is fixedly installed on the left end wall of the base frame. The end wall of the first rotating shaft is rotatably connected to the inner wall of the protective plate. The end wall of the third rotating shaft movably penetrates the protective plate.

[0013] Optionally, a clamping groove is formed at the bottom of the elastic inclined L-shaped push plate. The clamping groove cooperates with the I-shaped plate, and the elastic inclined L-shaped push plate is clamped at the center of the top of the I-shaped plate. The front end surface of the top of the elastic inclined L-shaped push plate is located in front of the third rotating shaft.

[0014] Optionally, there are two sets of auxiliary support plates, which are respectively fixedly connected to both sides at the top of the base frame. The two ends of the top of the I-shaped plate are respectively slidably connected to the bottoms of the auxiliary support plates. Auxiliary feeding rollers are rotatably connected to the inner walls of the tops of the two sets of auxiliary support plates. The auxiliary feeding rollers and the first rotating shaft are in the same vertical plane.

[0015] Optionally, the bottom of the top frame is fixedly connected to the base frame, the auxiliary frame and the top of the protective plate, and assembly grooves are provided on both sides of the inner wall of the top frame. The two groups of assembly grooves are respectively plugged into the end walls of the two groups of auxiliary support plates.

[0016] Optionally, two groups of the hanging rollers are provided, and both are rotatably connected to the inner wall of the top frame. The hanging rollers are externally connected to a servo motor, and a sling is wound around the hanging rollers.

[0017] Optionally, the base frames are provided with four groups, and are respectively fixedly connected to the end walls on both sides of the base frame, and the base frames can be fixedly connected to the ground by bolts.

[0018] Optionally, the top of the guide rail is fixedly connected to the bottom of the base frame, and limit slide bars are fixedly installed on the inner walls on both sides of the guide rail. A mold carrier is provided inside the guide rail, and the mold carrier can carry an aluminum mold. Two sets of sliding grooves are opened on the outer wall of the mold carrier, and the sliding grooves cooperate with the limit slide bars, and the mold carrier is slidably connected to the guide rail.

[0019] Optionally, hanging heads are fixedly installed on both sides of the top of the mold carrier, the bottom of the sling is fixedly connected to the corresponding hanging heads, pressure grooves are opened on both side walls of the middle part of the mold carrier, a positioning plate is fixedly installed on the inner wall at the front end of the pressure groove, a stud is engaged in the middle of the positioning plate, two groups of inner walls of the pressure grooves are slidably connected to the same pressure plate, the front end walls of the two groups of studs are in contact with the pressure plate, the inner wall of the mold carrier and the rotating shaft one are located on the same vertical plane, and the pressure plate and the rotating shaft three are always on the same vertical plane.

[0020] Compared with the prior art, the present invention has at least the following beneficial effects:

[0021] In the above scheme, an adaptive lifting mechanism and a mold carrier are set up, the aluminum mold is placed on the mold carrier, and a pressure plate is inserted into the pressure groove. According to the specifications and thickness of the aluminum mold, two sets of studs are tightened to press the pressure plate and make the pressure plate press the aluminum mold. At the same time, the cylinder is driven to push the push column and the I-plate to ensure that the distance between the third axis and the first axis is the same as the thickness of the aluminum mold. Thereafter, two sets of lifting rollers are driven to retract the lifting rope to lift the mold carrier. When the top of the aluminum mold in the mold carrier is transported to between the third axis and the first axis, the motor is driven to drive the second axis to rotate, so that the bevel gear two is meshed with the first axis, and the bevel gear four is meshed with the third axis, thereby driving the first axis and the third axis to rotate. At this time, the first axis and the third axis can clamp the aluminum mold and drive the aluminum mold to move upward, so that it slowly separates from the mold carrier, thereby completing the lifting of aluminum molds of different specifications.

[0022] By setting the elastic inclined L-shaped push plate and the auxiliary feeding roller, when the top of the aluminum mold contacts the elastic inclined L-shaped push plate, the elastic inclined L-shaped push plate can be pressed to deform. However, when the bottom of the aluminum mold completely disengages from the mold carrier and the first rotating shaft and the third rotating shaft, and the side surface contacts the elastic inclined L-shaped push plate, under the action of elasticity, the elastic inclined L-shaped push plate resumes its deformation and pushes the aluminum mold forward to make it deflect, and makes its other side surface contact the auxiliary feeding roller. At this time, the construction worker can carry out the aluminum mold at the top of the auxiliary feeding roller, so as to facilitate the unloading of the lifted aluminum mold. BRIEF DESCRIPTION OF THE DRAWINGS

[0023] The drawings incorporated herein and constituting a part of the specification illustrate embodiments of the present invention, and together with the specification are further used to explain the principles of the present invention and enable those skilled in the relevant art to implement and use the present invention.

[0024] Figure 1 It is a schematic three-dimensional structure diagram of an aluminum mold lifting device; Figure 2 It is a schematic three-dimensional structure diagram of an adaptive lifting mechanism; Figure 3 It is a schematic plan structure diagram of an adaptive lifting mechanism; Figure 4 It is a schematic structure diagram of an alignment component; Figure 5 It is a schematic installation diagram of an I-shaped plate in a base frame; Figure 6 It is a schematic structure diagram of a base frame; Figure 7 It is a schematic internal structure diagram of a base frame; Figure 8 It is a schematic installation diagram of an I-shaped plate, a third rotating shaft and a rotating cylinder; Figure 9 It is a schematic installation diagram of a second rotating shaft and a rotating cylinder; Figure 10 It is a schematic installation diagram of an elastic inclined L-shaped push plate and an I-shaped plate; Figure 11 It is a schematic installation diagram of an auxiliary support plate and a base frame; Figure 12 It is a schematic installation position diagram of an elastic inclined L-shaped push plate and an auxiliary feeding roller; Figure 13 It is a schematic working diagram of an elastic inclined L-shaped push plate and an auxiliary feeding roller; Figure 14 It is a schematic installation diagram of a top frame; Figure 15 It is a schematic installation diagram of a base frame and a guide rail; Figure 16 It is a schematic structure diagram of a guide rail; Figure 17It is a schematic structural diagram of a mold - carrying frame; Figure 18 is Figure 17 an enlarged view of part A in

[0025] Reference numerals: Adaptive lifting mechanism 100, alignment component 110, base frame 111, movable slot 112, bottom slot 113, feeding slot 114, sliding slot 115, first rotating shaft 116, first helical gear 117, auxiliary frame 120, second rotating shaft 121, second helical gear 122, one - character slot 123, motor 124, I - shaped plate 130, slider 131, pushing column 132, support frame 133, third rotating shaft 134, third helical gear 135, limiting frame 136, rotating cylinder 137, fourth helical gear 138, one - character plate 139, protective plate 140, elastic inclined L - shaped pushing plate 150, clamping slot 151, air cylinder 152, auxiliary support plate 160, auxiliary feeding roller 161, top frame 170, assembly slot 171, hanging roller 180, suspension cable 181, bottom support frame 190, guide rail 200, limiting slide bar 210, mold - carrying frame 220, sliding groove 221, hanging head 222, pressing groove 223, positioning plate 224, stud 225, pressing plate 226.

[0026] As shown in the figure, in order to clearly show the structure of the embodiments of the present invention, specific structures and devices are marked in the figure. However, this is only for schematic purposes and is not intended to limit the present invention to this specific structure, device, and environment. According to specific needs, those of ordinary skill in the art can adjust or modify these devices and environments. Detailed implementation manners

[0027] The following describes in detail an aluminum - mold lifting device provided by the present invention with reference to the accompanying drawings and specific embodiments. At the same time, it should be noted here that in order to make the embodiments more detailed, the following embodiments are the best and preferred embodiments. For some well - known technologies, those skilled in the art can also adopt other alternative methods for implementation; moreover, the accompanying drawings are only for more specifically describing the embodiments and are not intended to specifically limit the present invention.

[0028] As Figures 1 to 18 shown, an embodiment of the present invention provides an aluminum - mold lifting device, including an adaptive lifting mechanism 100 and a guide rail 200. The guide rail 200 is installed at the bottom of the adaptive lifting mechanism 100 and is internally connected to the adaptive lifting mechanism 100. The adaptive lifting mechanism 100 is composed of an alignment component 110, an elastic inclined L - shaped pushing plate 150, an auxiliary support plate 160, a top frame 170, a hanging roller 180, and a bottom support frame 190. The alignment component 110 includes a base frame 111. The bottom of the base frame 111 is provided with a feeding slot 114, and the feeding slot 114 is internally connected to the guide rail 200; The alignment component 110 can adjust the width of the loading chute 114, the elastic inclined L-shaped push plate 150 can apply pressure to the aluminum mold, the lifting roller 180 can lift the aluminum mold, and the footrest 190 can support the adaptive lifting mechanism 100.

[0029] As an implementation manner in this embodiment, as Figures 4 to 9As shown in the figure, at both ends of the inner wall on the left side of the base frame 111, there are rotationally connected with the first rotating shafts 116. On the right end wall of the base frame 111, there is fixedly installed an auxiliary frame 120. On both inner walls of the auxiliary frame 120, there are rotationally connected with the second rotating shafts 121. On the front end wall of the second rotating shaft 121, there is fixedly installed a second bevel gear 122. On the end wall of the first rotating shaft 116 located inside the auxiliary frame 120, there is fixedly installed a first bevel gear 117. The first bevel gear 117 meshes with the second bevel gear 122. On the outer end wall of the auxiliary frame 120, there is fixedly installed a motor 124, and the output end of the motor 124 is fixedly connected with the end wall of the second rotating shaft 121. Between the top surface of the bottom of the base frame 111 and the bottom surfaces of both side walls, there is opened a bottom groove 113. On both the top and bottom of both side walls of the base frame 111, there are opened sliding grooves 115. Inside the base frame 111, there is an I-shaped plate 130. The bottom of the I-shaped plate 130 is located inside the bottom groove 113, and the top of the I-shaped plate 130 is located on the base frame 111. On both the top and bottom ends of the inner walls of the I-shaped plate 130, there are fixedly installed sliding blocks 131. The sliding blocks 131 are used in cooperation with the corresponding sliding grooves 115, and the I-shaped plate 130 is slidably connected with the base frame 111. On the outer wall of the middle part of the I-shaped plate 130, there is fixedly installed a push post 132, and the push post 132 slidably penetrates through the side wall of the base frame 111. On the outer wall of the base frame 111, there is fixedly installed a cylinder 152, and the output end of the cylinder 152 is fixedly connected with the end wall of the push post 132. On both end walls of the I-shaped plate 130, there are fixedly installed support frames 133. Inside the two support frames 133, there are rotationally connected with the third rotating shafts 134. On both side walls of the base frame 111, there are opened movable grooves 112. Both ends of the third rotating shaft 134 are respectively located inside the two movable grooves 112 and are slidably connected with the movable grooves 112. On the end wall of the third rotating shaft 134 located inside the auxiliary frame 120, there is fixedly installed a third bevel gear 135. Inside the middle part of the second rotating shaft 121, there is opened a slot 123, and the slot 123 penetrates through the second rotating shaft 121. On the outer end wall of the I-shaped plate 130, there is fixedly installed a limiting frame 136. Inside the limiting frame 136, there is rotationally connected with a rotating cylinder 137. The rotating cylinder 137 is sleeved on the second rotating shaft 121. Inside the rotating cylinder 137, there is fixedly installed a slot plate 139. The slot plate 139 is located inside the slot 123, and the rotating cylinder 137 is slidably connected with the second rotating shaft 121. On the end wall of the rotating cylinder 137, there is fixedly installed a fourth bevel gear 138. The fourth bevel gear 138 meshes with the third bevel gear 135. In the present invention, when the top of the aluminum mold in the mold-carrying frame 220 is transported between the third rotating shaft 134 and the first rotating shaft 116, the driving motor 124 is driven to drive the second rotating shaft 121 to rotate. Under the limiting action of the slot plate 139, the second rotating shaft 121 drives the second bevel gear 122 and the fourth bevel gear 138 to rotate, so that the second bevel gear 122 meshes with the first bevel gear 117 and the fourth bevel gear 138 meshes with the third bevel gear 135, thereby driving the first rotating shaft 116 and the third rotating shaft 134 to rotate, and the rotation directions of the first rotating shaft 116 and the third rotating shaft 134 are opposite. At this time, the first rotating shaft 116 and the third rotating shaft 134 can clamp the aluminum mold and drive the aluminum mold to move upward, so that it slowly detaches from the mold-carrying frame 220. When the bottom of the aluminum mold completely detaches from the mold-carrying frame 220 and the side surface contacts the elastic inclined L-shaped push plate 150,Under the push of the elastic inclined L-shaped push plate 150, the aluminum mold is deflected and the other side thereof contacts the auxiliary loading roller 161. At this time, the construction personnel can move the aluminum mold out from the top of the auxiliary loading roller 161, thereby completing the lifting of the aluminum mold.

[0030] In this embodiment, if Figure 10 As shown, a protective plate 140 is fixedly installed on the left end wall of the base frame 111, the end wall of the rotating shaft 116 is rotatably connected to the inner wall of the protective plate 140, and the end wall of the rotating shaft 3 134 movably passes through the protective plate 140. The protective plate 140 provides a protective effect for the rotating shaft 116 and the rotating shaft 3 134 to avoid external influences.

[0031] As an implementation method in this embodiment, Figure 10 As shown, a slot 151 is provided at the bottom of the elastic inclined L-shaped push plate 150, and the slot 151 cooperates with the I-shaped plate 130, and the elastic inclined L-shaped push plate 150 is clamped with the center of the top of the I-shaped plate 130, and the front end surface of the top of the elastic inclined L-shaped push plate 150 is located at the front end of the rotating shaft three 134. In the present invention, the elastic inclined L-shaped push plate 150 is composed of elastic material, which can deform itself. When the top of the aluminum mold contacts the elastic inclined L-shaped push plate 150, it can compress the elastic inclined L-shaped push plate 150 to deform. When the bottom of the aluminum mold is completely separated from the rotating shaft one 116 and the rotating shaft three 134, the elastic inclined L-shaped push plate 150, under the action of elasticity, restores its deformation and pushes the aluminum mold forward to deflect it, thereby facilitating the construction personnel to remove the aluminum mold.

[0032] As an implementation method in this embodiment, Figure 11 and Figure 12 As shown, there are two groups of auxiliary support plates 160, which are fixedly connected to the two sides of the top of the base frame 111 respectively, and the two ends of the top of the I-shaped plate 130 are slidingly connected to the bottom of the auxiliary support plates 160 respectively. The base frame 111 can support the auxiliary support plates 160. The top inner walls of the two groups of auxiliary support plates 160 are rotatably connected with auxiliary loading rollers 161. The auxiliary loading rollers 161 and the rotating shaft 116 are on the same vertical plane. The auxiliary loading rollers 161 cooperate with the elastic inclined L-shaped push plate 150 to deflect the aluminum mold, thereby facilitating disassembly by construction personnel.

[0033] As an implementation method in this embodiment, Figure 14 As shown, the bottom of the top frame 170 is fixedly connected to the top of the base frame 111, the auxiliary frame 120, and the protective plate 140. Assembly grooves 171 are provided on both sides of the inner wall of the top frame 170. The two groups of assembly grooves 171 are respectively plugged into the end walls of the two groups of auxiliary support plates 160. The top frame 170 can support the auxiliary support plates 160 and at the same time protect the entire device.

[0034] As an implementation method in this embodiment,Figure 2 and Figure 3 As shown in Figure 3 , there are two sets of suspension rollers 180, both of which are rotatably connected to the inner wall of the top frame 170. The suspension rollers 180 are externally connected to a servo motor, and a suspension cable 181 is wound around the suspension rollers 180. By driving the externally connected servo motor, the suspension rollers 180 can be driven to rotate, so as to achieve the effect of lifting or lowering the die mounting frame 220.

[0035] As an implementation manner in this embodiment, as Figure 2 shown in Figure 2 , there are four sets of footrest frames 190, which are respectively fixedly connected to both side end walls of the base frame 111. The footrest frames 190 can be fixedly connected to the ground through bolts, so as to support and fix the adaptive lifting mechanism 100.

[0036] As an implementation manner in this embodiment, as Figures 15 to 18As shown, the top of the guide rail 200 is fixedly connected to the bottom of the base frame 111, and the connection between the guide rail 200 and the base frame 111 is detachable and can be connected by bolts. The inner walls of both sides of the guide rail 200 are fixedly installed with limited slide bars 210. A mold carrier 220 is arranged inside the guide rail 200, and the mold carrier 220 can carry the aluminum mold. Two sets of sliding grooves 221 are opened on the outer wall of the mold carrier 220. The sliding grooves 221 cooperate with the limited slide bars 210, and the mold carrier 220 is slidably connected to the guide rail 200. The guide rail 200 and the limited slide bars 210 can be used for the movement of the mold carrier 220. The mold carrier 220 is limited in position, and the top two sides of the mold carrier 220 are fixedly installed with hanging heads 222, and the bottom of the sling 181 is fixedly connected to the corresponding hanging heads 222. By lifting the sling 181, the mold carrier 220 can be lifted. The middle two side walls of the mold carrier 220 are provided with pressing grooves 223, and the inner wall of the front end of the pressing groove 223 is fixedly installed with a positioning plate 224. The middle of the positioning plate 224 is meshed with a stud 225. The inner walls of the two groups of pressing grooves 223 are slidably connected with the same pressing plate 226. The front end walls of the two groups of studs 225 are in contact with the pressing plate 226. By tightening the studs 225, the pressing plate 226 can be driven 26 moves forward, thereby achieving the effect of pressing the aluminum mold in the mold carrier 220, the inner wall of the mold carrier 220 and the rotating shaft 116 are located on the same vertical plane, and the pressing plate 226 and the rotating shaft 3 134 are always on the same vertical plane. This arrangement can ensure that when the aluminum mold is transported between the rotating shaft 116 and the rotating shaft 3 134, the aluminum mold can be transported by the rotating shaft 116 and the rotating shaft 3 134. In the present invention, when it is necessary to transport the aluminum mold in the ground floor building to the high-rise building, the construction personnel can transport the aluminum mold to the mold carrier 220 and insert the pressing plate 226 into the pressing groove 223. According to the specifications and thickness of the mold, tighten the two sets of studs 225 to compress the pressure plate 226 and make the pressure plate 226 press the aluminum mold, and at the same time drive the cylinder 152 to push the push column 132 and the I-plate 130, so that the rotating shaft 3 134 and the rotating drum 137 move forward synchronously, thereby ensuring that the distance between the rotating shaft 3 134 and the rotating shaft 1 16 is the same as the thickness of the aluminum mold, and then drive the two sets of hanging rollers 180 to retract the sling 181, so as to lift the mold carrier 220, and under the limiting action of the guide rail 200 and the limiting slide 210, the mold carrier 220 moves upward in the guide rail 200.

[0037] The working principle of the technical solution provided by the present invention is as follows: after the construction of the bottom building is completed, a drilling operation is performed on the surface of the high-rise building so that the punched hole groove has the same cross-sectional shape as the guide rail 200, and then the guide rail 200 is passed through the hole groove, and the base frame 190 is connected to the ground of the high-rise building by bolts to support and fix the adaptive lifting mechanism 100, and at the same time, the carrier frame 220 is installed in the guide rail 200, and the sling 181 is connected to the sling head 222, thereby completing the assembly of the entire device; When the aluminum formwork in the ground floor building needs to be transported to the high-rise building, the construction workers can transport the aluminum formwork to the formwork frame 220 (the aluminum formwork lifted by the device is heavy and the overall height of the aluminum formwork is higher than the formwork frame 220), and insert the pressing plate 226 into the pressing groove 223. According to the specifications and thickness of the aluminum formwork, the two sets of studs 225 are tightened to press the pressing plate 226 and make the pressing plate 226 press the aluminum formwork. At the same time, the cylinder 152 is driven to push the push column 132 and the I-shaped plate 130. The rotating shaft 3 134 and the rotating drum 137 move forward synchronously, thereby ensuring that the spacing between the rotating shaft 3 134 and the rotating shaft 1 116 is the same as the thickness of the aluminum mold. After that, the two sets of hanging rollers 180 are driven to retract the slings 181, thereby lifting the mold carrier 220. Under the limiting action of the guide rail 200 and the limiting slide bar 210, the mold carrier 220 moves upward in the guide rail 200. When the top of the aluminum mold in the mold carrier 220 is transported to the intersection of the rotating shaft 3 134 and the rotating shaft 116, 6, the driving motor 124 drives the second shaft 121 to rotate. Under the limiting effect of the straight plate 139, the second shaft 121 drives the second bevel gear 122 and the fourth bevel gear 138 to rotate, so that the second bevel gear 122 is meshed with the first bevel gear 117, and the fourth bevel gear 138 is meshed with the third bevel gear 135, thereby driving the first shaft 116 and the third shaft 134 to rotate, and the rotation directions of the first shaft 116 and the third shaft 134 are opposite. At this time, Rotating shaft 1 116 and rotating shaft 3 134 can clamp the aluminum mold and drive the aluminum mold to move upward, so that it slowly detaches from the mold carrier 220. When the bottom of the aluminum mold is completely detached from the mold carrier 220 and the side is in contact with the elastic inclined L-shaped push plate 150, under the push of the elastic inclined L-shaped push plate 150, the aluminum mold is deflected and the other side is in contact with the auxiliary loading roller 161. At this time, the construction personnel can move the aluminum mold out from the top of the auxiliary loading roller 161, thereby completing the lifting of the aluminum mold.

[0038] The present invention covers any substitution, modification, equivalent method and scheme made on the essence and scope of the present invention. In order to make the public have a thorough understanding of the present invention, specific details are described in detail in the following preferred embodiments of the present invention, but those skilled in the art can fully understand the present invention without the description of these details. In addition, in order to avoid unnecessary confusion about the essence of the present invention, well-known methods, processes, procedures, components and circuits are not described in detail.

[0039] The above is only a preferred embodiment of the present invention. It should be pointed out that for ordinary technicians in this technical field, several improvements and modifications can be made without departing from the principle of the present invention. These improvements and modifications should also be regarded as the scope of protection of the present invention.

Claims

1. An aluminum formwork lifting device, comprising an adaptive lifting mechanism (100) and a guide rail (200). The guide rail (200) is installed at the bottom of the adaptive lifting mechanism (100) and is internally connected to the adaptive lifting mechanism (100). It is characterized in that, The adaptive lifting mechanism (100) is composed of an alignment component (110), an elastic inclined L-shaped push plate (150), an auxiliary support plate (160), a top frame (170), a lifting roller (180) and a bottom support frame (190). The alignment component (110) includes a base frame (111). A feeding groove (114) is formed at the bottom of the base frame (111), and the feeding groove (114) is internally communicated with the guide rail (200). The alignment component (110) can adjust the width of the feeding groove (114). The elastic inclined L-shaped push plate (150) can apply pressure to the aluminum mold. The lifting roller (180) can lift the aluminum mold. The bottom support frame (190) can support the adaptive lifting mechanism (100).

2. The aluminum formwork lifting device according to claim 1, characterized in that, Two ends of the inner wall of the left side of the base frame (111) are rotatably connected with a first rotating shaft (116). An auxiliary frame (120) is fixedly installed on the right end wall of the base frame (111). Two inner walls of the auxiliary frame (120) are rotatably connected with a second rotating shaft (121). A second bevel gear (122) is fixedly installed on the front end wall of the second rotating shaft (121). A first bevel gear (117) is fixedly installed on the end wall of the first rotating shaft (116) located inside the auxiliary frame (120). The first bevel gear (117) is meshed with the second bevel gear (122). A motor (124) is fixedly installed on the outer end wall of the auxiliary frame (120), and the output end of the motor (124) is fixedly connected with the end wall of the second rotating shaft (121).

3. The aluminum formwork lifting device according to claim 2, wherein, A bottom groove (113) is formed between the bottom top surface and the bottom surfaces of the two side walls of the base frame (111). Chute grooves (115) are formed at the top and bottom of the two side walls of the base frame (111). An I-shaped plate (130) is arranged inside the base frame (111). The bottom of the I-shaped plate (130) is located inside the bottom groove (113), and the top of the I-shaped plate (130) is located on the base frame (111). Sliders (131) are fixedly installed on the inner walls of the top and bottom ends of the I-shaped plate (130). The sliders (131) are used in cooperation with the corresponding chute grooves (115), and the I-shaped plate (130) is slidably connected with the base frame (111).

4. The aluminum formwork lifting device according to claim 3, characterized in that, A push column (132) is fixedly installed on the outer wall of the middle part of the I-shaped plate (130), and the push column (132) slidably penetrates through the side wall of the base frame (111). A cylinder (152) is fixedly installed on the outer wall of the base frame (111), and the output end of the cylinder (152) is fixedly connected with the end wall of the push column (132).

5. An aluminum formwork lifting device according to claim 4, characterized in that, Both end walls of the I-shaped plate (130) are fixedly installed with support frames (133). A third rotating shaft (134) is rotatably connected to the inner walls of the two groups of support frames (133). Activity grooves (112) are formed in both side walls of the base frame (111). Both ends of the third rotating shaft (134) are respectively located in the two groups of activity grooves (112) and are slidably connected to the activity grooves (112). A third bevel gear (135) is fixedly installed on the end wall of the third rotating shaft (134) located inside the auxiliary frame (120). A protective plate (140) is fixedly installed on the left end wall of the base frame (111). The end wall of the first rotating shaft (116) is rotatably connected to the inner wall of the protective plate (140). The end wall of the third rotating shaft (134) penetrates through the protective plate (140) movably.

6. The aluminum formwork lifting device according to claim 5, characterized in that, A cross slot (123) is formed in the inner wall of the middle part of the second rotating shaft (121), and the cross slot (123) penetrates through the second rotating shaft (121). A limiting frame (136) is fixedly installed on the outer end wall of the I-shaped plate (130). A rotating cylinder (137) is rotatably connected to the inner wall of the limiting frame (136). The rotating cylinder (137) is sleeved on the second rotating shaft (121). A cross plate (139) is fixedly installed on the inner wall of the rotating cylinder (137). The cross plate (139) is located in the cross slot (123), and the rotating cylinder (137) is slidably connected to the second rotating shaft (121). A fourth bevel gear (138) is fixedly installed on the end wall of the rotating cylinder (137). The fourth bevel gear (138) meshes with the third bevel gear (135).

7. An aluminum formwork lifting device according to claim 6, characterized in that, A clamping groove (151) is formed at the bottom of the elastic inclined L-shaped push plate (150). The clamping groove (151) cooperates with the I-shaped plate (130), and the elastic inclined L-shaped push plate (150) is clamped at the center of the top of the I-shaped plate (130). The front end face of the top of the elastic inclined L-shaped push plate (150) is located in front of the third rotating shaft (134).

8. An aluminum formwork lifting device according to claim 7, characterized in that, There are two groups of auxiliary support plates (160), which are respectively fixedly connected to both sides of the top of the base frame (111). Both ends of the top of the I-shaped plate (130) are respectively slidably connected to the bottom of the auxiliary support plates (160). Auxiliary feeding rollers (161) are rotatably connected to the inner walls of the tops of the two groups of auxiliary support plates (160). The auxiliary feeding rollers (161) and the first rotating shaft (116) are in the same vertical plane. There are two groups of hanging rollers (180), which are both rotatably connected to the inner wall of the top frame (170). The hanging rollers (180) are externally connected to a servo motor. A suspension cable (181) is wound around the hanging rollers (180).

9. The aluminum formwork lifting device according to claim 8, characterized in that, The bottom of the top frame (170) is fixedly connected to the top of the base frame (111), the auxiliary frame (120), and the protection plate (140). Assembly grooves (171) are formed on both sides of the inner wall of the top frame (170). The ends of the two groups of auxiliary support plates (160) are inserted into the two groups of assembly grooves (171) respectively. The top of the guide rail (200) is fixedly connected to the bottom of the base frame (111). Limit slide bars (210) are fixedly installed on both inner walls of the guide rail (200). A mold carrier (220) is arranged inside the guide rail (200). The mold carrier (220) can carry the aluminum mold. Two sliding grooves (221) are formed on the outer wall of the mold carrier (220). The sliding grooves (221) cooperate with the limit slide bars (210), and the mold carrier (220) is slidably connected to the guide rail (200).

10. The aluminum formwork lifting device according to claim 9, characterized in that, Four groups of bottom feet (190) are provided and are respectively fixedly connected to the two side end walls of the base frame (111). The bottom feet (190) can be fixedly connected to the ground by bolts. Lifting heads (222) are fixedly installed on both sides of the top of the mold carrier (220). The bottom of the lifting cable (181) is fixedly connected to the corresponding lifting head (222). Pressing grooves (223) are formed on both side walls in the middle of the mold carrier (220). A positioning plate (224) is fixedly installed on the front inner wall of the pressing groove (223). A stud (225) is engaged in the middle of the positioning plate (224). The same pressing plate (226) is slidably connected to the inner walls of the two groups of pressing grooves (223). The front end walls of the two groups of studs (225) are in contact with the pressing plate (226). The inner wall of the mold carrier (220) and the first rotating shaft (116) are in the same vertical plane. The pressing plate (226) and the third rotating shaft (134) are always in the same vertical plane.

Citation Information

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