Hydraulic creeping formwork machine horizontal sliding device
Patent Information
- Application Number
- CN202311704686.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-12-12
- Publication Date
- 2026-10-09
- Estimated Expiration
- 2043-12-12
AI Technical Summary
目前,液压爬模机位间距平行固定,如遇到复杂多变的建筑截面时,液压爬模机位间距变化均需要将爬模整体拆除再进行重新拼装吊装使用,浪费大量人力物力及影响施工进度
[0019]In application, the first connecting seat is first installed on the load-bearing tripod beam, then the sliding seat is slidably set on the main platform beam, and then the drive seat is set on the main platform beam and located in front of the sliding seat in the direction of movement of the load-bearing tripod beam. Finally, the transmission mechanism is connected between the sliding seat and the drive seat. When the hydraulic climbing formwork positions are not arranged in parallel for climbing, the transmission mechanism is activated, and the sliding component drives the load-bearing tripod beam to move relative to the main platform beam, thereby adjusting the spacing of the hydraulic climbing formwork positions to cope with complex and varied building cross-section changes. With the above-mentioned horizontal sliding device for the hydraulic climbing formwork positions, when facing complex and varied building cross-sections, it is not necessary to dismantle and reinstall the hydraulic climbing formwork positions. During the design phase, the non-parallel spacing of the hydraulic climbing formwork positions is determined according to the building structure before the overall climbing is carried out, thereby reducing material and labor costs, increasing the safety factor, and improving production efficiency.
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Figure CN118653665B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of construction equipment technology, and in particular to a horizontal sliding device for a hydraulic climbing formwork machine. Background Technology
[0002] To improve construction efficiency and increase safety, hydraulic climbing formwork is now commonly used in the construction of high-rise and super high-rise buildings. Currently, the spacing between the hydraulic climbing formwork positions is fixed and parallel. However, when encountering complex and variable building cross-sections, any changes in the spacing require the entire climbing formwork to be dismantled, reassembled, and hoisted back into service, wasting significant manpower and resources and impacting construction progress. Summary of the Invention
[0003] The purpose of this invention is to provide a horizontal sliding device for a hydraulic climbing formwork machine, so that it can be used without dismantling and reinstalling when facing complex and variable building cross sections, thereby improving production efficiency, reducing material and labor costs, and improving production safety.
[0004] To achieve the above objectives, the present invention provides the following technical solution: A hydraulic climbing formwork horizontal sliding device includes: A sliding assembly, comprising a sliding seat and a first connecting seat connected to the sliding seat, wherein the sliding seat is detachably and slidably connected to the main platform crossbeam of the hydraulic climbing formwork machine, and the first connecting seat is detachably connected to the load-bearing tripod crossbeam of the hydraulic climbing formwork machine. The drive assembly includes a drive base and a transmission mechanism. The drive base is detachably connected to the main platform crossbeam. The transmission mechanism includes a driving member and a driven member. The driving member is disposed on the drive base. The driven member is in transmission engagement with the driving member and is detachably connected to the sliding seat.
[0005] Optionally, the sliding seat and the first connecting seat are detachably and rotatably connected by a first pin.
[0006] Optionally, the top of the sliding seat is provided with a first sliding groove for slidingly engaging with the lower wing plate of the main platform crossbeam, and rollers for engaging with the sides and bottom of the lower wing plate of the main platform crossbeam are respectively provided on the side walls and bottom of the first sliding groove.
[0007] Optionally, the sliding seat is provided with a first positioning mechanism on both sides of the first slide groove. The first positioning mechanism is used to cooperate with the lower wing plate of the main platform crossbeam to fix the sliding seat relative to the main platform crossbeam.
[0008] Optionally, the first positioning mechanism includes: A threaded hole penetrating the wall of the first chute; A threaded clamping member engages with a threaded hole to pass through the threaded hole and clamp onto the lower flange of the main platform beam, thereby fixing the sliding seat relative to the main platform beam.
[0009] Optionally, the sliding seat includes: Two end plates are provided, which are spaced apart along the extension direction of the first slide groove. The end plates are provided with inverted T-shaped slots that serve as the inlet and outlet of the first slide groove. The first base plate is connected to the two end plates at both ends along the extension direction of the first groove. Two second base plates are arranged at intervals along a direction perpendicular to the extension direction of the first slide groove, and the two second base plates are arranged at intervals above the first base plate. The two ends of the second base plates along the extension direction of the first slide groove are respectively connected to the two end plates. The two end plates, the first base plate, and the two second base plates form the first slide groove. Two connecting plates are spaced apart and connected to the bottom of the first base plate. The two connecting plates are used to connect to the first connecting seat.
[0010] Optionally, the roller includes: Multiple side rollers, at least one of the side rollers is provided in the gap between the second base plate and the first base plate to contact and cooperate with the side of the lower wing plate of the main platform beam; The bottom roller is provided with two connecting plates arranged at intervals along a direction perpendicular to the extension direction of the first slide groove. The bottom roller is rotatably disposed between the two connecting plates. The first bottom plate is provided with a hollow groove, which allows the top of the bottom roller to enter the first slide groove to contact and engage with the bottom of the lower wing plate of the main platform beam.
[0011] Optionally, the drive seat is detachably and slidably connected to the main platform beam of the hydraulic climbing formwork machine. The top of the drive seat is provided with a second slide groove for slidingly engaging with the lower wing plate of the main platform beam. The drive seat is provided with a second positioning mechanism on both sides of the second slide groove. The second positioning mechanism is used to engage with the lower wing plate of the main platform beam to fix the drive seat relative to the main platform beam.
[0012] Optionally, the driving component includes: The gear, which serves as the driving element, is rotatably mounted on the drive seat via a rotating shaft; As the driven member, the rack can slide and engage with the drive seat along the extension direction of the second slide groove and mesh with the gear. The end of the rack away from the drive seat is connected to the slide seat.
[0013] Optionally, the drive assembly further includes a synchronous drive shaft, which is used to drive and connect the rotating shafts on the drive seats at corresponding positions on the main platform crossbeams of two adjacent hydraulic climbing formwork positions, and to allow them to move synchronously relative to each other.
[0014] Optionally, the synchronous drive shaft includes a synchronous bushing and synchronous shaft tubes. Two coaxial synchronous shaft tubes are fitted inside the synchronous bushing. The two synchronous shaft tubes can extend or retract from both ends of the synchronous bushing, respectively. A locking mechanism is provided between the synchronous shaft tubes and the synchronous bushing for locking the synchronous shaft tubes and the synchronous bushing. The ends of the synchronous shaft tubes that are far apart from each other are used for transmission connection with the rotating shafts on the drive seats at corresponding positions on the main platform crossbeams of two adjacent hydraulic climbing formwork positions, and are relatively synchronously displaced.
[0015] Optionally, the synchronous shaft tube and the rotating shaft are connected by friction fit or profile fit to achieve power transmission.
[0016] Optionally, the horizontal sliding device of the hydraulic climbing formwork position further includes a fixing component, which includes a second connecting seat and a third connecting seat connected to the second connecting seat. The second connecting seat and the third connecting seat are respectively used to detachably connect the load-bearing tripod beam and the main platform beam of the hydraulic climbing formwork position.
[0017] Optionally, the second connecting seat and the third connecting seat are detachably and rotatably connected by a second pin.
[0018] As can be seen from the above technical solutions, the present invention discloses a horizontal sliding device for a hydraulic climbing formwork machine. The horizontal sliding device for a hydraulic climbing formwork machine includes a sliding assembly and a driving assembly. The sliding assembly includes a sliding seat and a first connecting seat connected to the sliding seat. The sliding seat is detachably and slidably connected to the main platform crossbeam of the hydraulic climbing formwork machine. The first connecting seat is detachably connected to the load-bearing tripod crossbeam of the hydraulic climbing formwork machine. The driving assembly includes a driving seat and a transmission mechanism. The driving seat is detachably connected to the main platform crossbeam. The transmission mechanism includes a driving member and a driven member. The driving member is disposed on the driving seat. The driven member is in transmission engagement with the driving member and is detachably connected to the sliding seat.
[0019] In application, the first connecting seat is first installed on the load-bearing tripod beam, then the sliding seat is slidably set on the main platform beam, and then the drive seat is set on the main platform beam and located in front of the sliding seat in the direction of movement of the load-bearing tripod beam. Finally, the transmission mechanism is connected between the sliding seat and the drive seat. When the hydraulic climbing formwork positions are not arranged in parallel for climbing, the transmission mechanism is activated, and the sliding component drives the load-bearing tripod beam to move relative to the main platform beam, thereby adjusting the spacing of the hydraulic climbing formwork positions to cope with complex and varied building cross-section changes. With the above-mentioned horizontal sliding device for the hydraulic climbing formwork positions, when facing complex and varied building cross-sections, it is not necessary to dismantle and reinstall the hydraulic climbing formwork positions. During the design phase, the non-parallel spacing of the hydraulic climbing formwork positions is determined according to the building structure before the overall climbing is carried out, thereby reducing material and labor costs, increasing the safety factor, and improving production efficiency. Attached Figure Description
[0020] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0021] Figure 1 This is a schematic diagram of the assembly state structure of the horizontal sliding device for the hydraulic climbing formwork machine provided in an embodiment of the present invention; Figure 2 This is a partially enlarged schematic diagram of the sliding component of the horizontal sliding device for the hydraulic climbing formwork machine provided in an embodiment of the present invention; Figure 3 This is a schematic diagram of the sliding component of the hydraulic climbing formwork horizontal sliding device provided in an embodiment of the present invention; Figure 4 This is a front view of the sliding seat of the sliding component of the horizontal sliding device for the hydraulic climbing formwork machine provided in an embodiment of the present invention; Figure 5 A bottom view of the sliding seat of the sliding component of the hydraulic climbing formwork machine horizontal sliding device provided in an embodiment of the present invention; Figure 6 This is a partially enlarged schematic diagram of the drive assembly of the horizontal sliding device for the hydraulic climbing formwork machine provided in an embodiment of the present invention; Figure 7 This is a schematic diagram of the drive assembly of the hydraulic climbing formwork horizontal sliding device provided in an embodiment of the present invention; Figure 8 This is a partial sectional view of the horizontal sliding device for the hydraulic climbing formwork machine provided in an embodiment of the present invention; Figure 9This is a front view of the assembly state of the horizontal sliding device for the hydraulic climbing formwork machine provided in an embodiment of the present invention; Figure 10 This is a partially enlarged schematic diagram of the fixing component of the horizontal sliding device for the hydraulic climbing formwork machine provided in an embodiment of the present invention; Figure 11 This is a schematic diagram of the fixing component of the hydraulic climbing formwork horizontal sliding device provided in an embodiment of the present invention; Figure 12 This is a front view of the fixing component of the horizontal sliding device for the hydraulic climbing formwork machine provided in an embodiment of the present invention.
[0022] In the picture: 1 is a sliding assembly; 110 is a sliding seat; 111 is a first end plate; 111a is a first slide groove; 112 is a first base plate; 113 is a second base plate; 114 is a first connecting plate; 115 is an ear plate; 120 is a first connecting seat; 130 is a first pin; 140 is a first positioning mechanism; 141 is a threaded clamping part; 142 is a nut; 150 is a side roller; 160 is a bottom roller; 2 is a drive assembly; 210 is a drive seat; 211 is a second end plate; 211a is a second slide groove; 211b 212 is the guide groove; 213 is the third base plate; 214 is the second connecting plate; 225 is the transmission mechanism; 226 is the gear; 227 is the rotating shaft; 228 is the rack; 3 is the fixing component; 310 is the second connecting seat; 320 is the third connecting seat; 330 is the second pin; 4 is the main platform crossbeam; 410 is the lower flange of the main platform crossbeam; 5 is the load-bearing tripod crossbeam; 510 is the upper flange of the load-bearing tripod crossbeam; 6 is the synchronous drive shaft; 610 is the synchronous bushing; 620 is the synchronous shaft tube. Detailed Implementation
[0023] The core of this invention is to provide a horizontal sliding device for a hydraulic climbing formwork machine. The structural design of this device enables it to operate without dismantling and reinstalling when faced with complex and variable building cross-sections, thereby improving production efficiency, reducing labor costs, and increasing production safety.
[0024] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0025] Please see Figures 1 to 8 , Figure 1 This is a schematic diagram of the assembly state structure of the horizontal sliding device for the hydraulic climbing formwork machine provided in an embodiment of the present invention. Figure 2This is a partially enlarged schematic diagram of the sliding component of the horizontal sliding device for the hydraulic climbing formwork machine provided in an embodiment of the present invention. Figure 3 This is a schematic diagram of the sliding component of the horizontal sliding device for the hydraulic climbing formwork machine provided in an embodiment of the present invention. Figure 4 This is a front view of the sliding seat of the sliding assembly of the horizontal sliding device for the hydraulic climbing formwork machine provided in an embodiment of the present invention. Figure 5 This is a bottom view of the sliding seat of the sliding assembly of the horizontal sliding device for the hydraulic climbing formwork machine provided in an embodiment of the present invention. Figure 6 This is a partially enlarged schematic diagram of the drive assembly of the horizontal sliding device for the hydraulic climbing formwork machine provided in an embodiment of the present invention. Figure 7 This is a schematic diagram of the drive assembly of the hydraulic climbing formwork horizontal sliding device provided in an embodiment of the present invention. Figure 8 This is a partial cross-sectional view of the horizontal sliding device for the hydraulic climbing formwork machine provided in an embodiment of the present invention.
[0026] This invention discloses a hydraulic climbing formwork horizontal sliding device, which includes a sliding component 1 and a driving component 2.
[0027] The sliding assembly 1 includes a sliding seat 110 and a first connecting seat 120 connected to the sliding seat 110, such as... Figure 2 In this case, the sliding seat 110 and the first connecting seat 120 are detachably and rotatably connected by the first pin 130. In other embodiments, the sliding seat 110 and the first connecting seat 120 may be fixedly connected or be an integral structure, which is not limited here.
[0028] The sliding seat 110 is used for a detachable and slidable connection with the main platform beam 4 of the hydraulic climbing formwork machine. That is, the sliding seat 110 can be detached from the main platform beam 4. When the sliding seat 110 is installed on the main platform beam 4, the sliding seat 110 can slide back and forth along the length of the main platform beam 4. The first connecting seat 120 is used for a detachable connection with the load-bearing tripod beam 5 of the hydraulic climbing formwork machine. In this case, the first connecting seat 120 and the load-bearing tripod beam 5 are connected by multiple threaded fasteners, including fastening bolts and fastening nuts. Correspondingly, the connecting seat and the load-bearing tripod beam 5 are respectively provided with connecting through holes. The fastening bolts pass through the connecting through holes on the connecting seat and the load-bearing tripod beam 5 and cooperate with the fastening nuts to fix the connecting seat and the load-bearing tripod beam 5.
[0029] The drive assembly 2 includes a drive seat 210 and a transmission mechanism 220. The drive seat 210 is detachably connected to the main platform crossbeam 4. In this case, the drive seat 210 can be fixed at any position on the main platform crossbeam 4. Of course, to facilitate the position adjustment of the drive seat 210, the drive seat 210 can also be detachably and slidably set on the main platform crossbeam 4 like the sliding seat 110, so as to adjust the position of the drive seat 210 and fix it to the main platform crossbeam 4. The transmission mechanism 220 includes a driving member and a driven member. The driving member is set on the drive seat 210, and the driven member is driven in a transmission engagement with the driving member. The driven member is detachably connected to the sliding seat 110.
[0030] As can be seen, compared with the prior art, the hydraulic climbing formwork horizontal sliding device provided in this embodiment of the invention, when applied, firstly installs the first connecting seat 120 on the load-bearing tripod beam 5, then slides the sliding seat 110 on the main platform beam 4, then sets the drive seat 210 on the main platform beam 4 and positions it in front of the sliding seat 110 in the direction of movement of the load-bearing tripod beam 5, and finally connects the transmission mechanism 220 between the sliding seat 110 and the drive seat 210. When the hydraulic climbing formwork is not arranged in a parallel climbing manner, the transmission mechanism 220... The motion transmission mechanism 220 and the sliding component 1 drive the load-bearing tripod beam 5 to move relative to the main platform beam 4, thereby adjusting the spacing of the hydraulic climbing formwork positions to cope with complex and ever-changing building cross-sections. Through the above-mentioned horizontal sliding device of the hydraulic climbing formwork positions, when facing complex and ever-changing building cross-sections, it is not necessary to dismantle and reinstall the hydraulic climbing formwork positions. During the design phase, the non-parallel spacing of the hydraulic climbing formwork positions is determined according to the building structure before the overall climbing is carried out, thereby reducing material and labor costs, increasing the safety factor, and improving production efficiency.
[0031] like Figure 2 and Figure 4 As shown, the sliding seat 110 is provided with a first pin hole, and the first connecting seat 120 is provided with a second pin hole. The first pin shaft 130 passes through the first pin hole and the second pin hole to detachably and rotatably connect the sliding seat 110 and the first connecting seat 120. It should be noted that the connection between the sliding seat 110 and the first connecting seat 120 via the first pin shaft 130 in this case is only a preferred embodiment provided by the present invention, and is not actually limited to this. There are many ways to detachably and rotatably connect the sliding seat 110 and the first connecting seat 120. For example, the sliding seat 110 and the first connecting seat 120 can also be detachably and rotatably connected by means of a rotating shaft 222, snap-fit, etc., which are not limited here.
[0032] like Figure 1As shown, in this embodiment of the invention, the main platform beam 4 has an I-shaped cross-section. The main platform beam 4 is mainly composed of a web and flanges at the upper and lower ends of the web. The top of the sliding seat 110 is provided with a first groove 111a for sliding cooperation with the lower flange 410 of the main platform beam 4. Therefore, as shown... Figure 3 As shown, the first slide groove 111a is inverted T-shaped. Rollers are respectively provided on the two side walls and the bottom of the first slide groove 111a for engaging with the two sides and the bottom of the lower flange 410 of the main platform crossbeam 4. Figure 3 and Figure 4 As shown, when the sliding seat 110 slides along the main platform crossbeam 4, the roller can reduce the sliding resistance and reduce the wear of the sliding seat 110 and the main platform crossbeam 4.
[0033] To further optimize the above technical solution, in this embodiment of the invention, in order to fix the position of the sliding seat 110 relative to the main platform crossbeam 4, so that the sliding seat 110 can be fixed to the main platform crossbeam 4 without adjusting the hydraulic climbing formwork position, and play a connecting and supporting role between the main platform crossbeam 4 and the load-bearing tripod crossbeam 5, the sliding seat 110 is provided with a first positioning mechanism 140 on both sides of the first slide groove 111a. The first positioning mechanism 140 is used to cooperate with the lower wing plate 410 of the main platform crossbeam 4 to fix the sliding seat 110 relative to the main platform crossbeam 4.
[0034] Specifically, the aforementioned first positioning mechanism 140 includes a threaded hole and a threaded clamping member 141. The threaded hole penetrates the groove wall of the first slide groove 111a. The threaded hole can be directly opened on the side wall of the first slide groove 111a, or a nut 142 can be welded on the side wall of the first slide groove 111a and a through hole coaxial with the threaded hole of the nut 142 can be opened. The threaded clamping member 141 cooperates with the threaded hole to pass through the threaded hole and clamp onto the lower wing plate 410 of the main platform crossbeam 4. The friction generated after the threaded clamping member 141 clamps onto the lower wing plate 410 of the main platform crossbeam 4 is used to fix the sliding seat 110 relative to the main platform crossbeam 4. This clamping and fixing method does not require opening a hole on the lower wing plate 410 of the main platform crossbeam 4, and the sliding seat 110 can be fixed at any position of the main platform crossbeam 4.
[0035] like Figure 3 As shown, in one specific embodiment of this case, two first positioning mechanisms 140 are respectively provided on both sides of the first slide groove 111a. Of course, depending on the size of the sliding seat 110 and the required clamping force, one or three or more first positioning mechanisms 140 can be provided on both sides of the first slide groove 111a.
[0036] like Figures 3 to 5As shown, in this embodiment of the invention, the sliding seat 110 is welded from multiple plates. Specifically, the sliding seat 110 includes a first end plate 111, a first base plate 112, a second base plate 113, and a first connecting plate 114. Two first end plates 111 are spaced apart along the extension direction of the first sliding groove 111a. Each first end plate 111 has an inverted T-shaped slot serving as the inlet and outlet of the first sliding groove 111a. The two ends of the first base plate 112 along the extension direction of the first sliding groove 111a are respectively connected to the two first end plates 111. Two second base plates 113 are spaced apart along a direction perpendicular to the extension direction of the first sliding groove 111a, forming a space between the two second base plates 113 for the main... The gap through which the web of the platform beam 4 passes, and two second base plates 113 are arranged above the first base plate 112 at intervals. The two second base plates 113 are respectively provided with the aforementioned first positioning mechanism 140. The two ends of the second base plates 113 along the extension direction of the first slide groove 111a are respectively connected to the two first end plates 111. The two first end plates 111, the first base plate 112 and the two second base plates 113 form the first slide groove 111a. Two first connecting plates 114 are connected at intervals below the first base plate 112. The two first connecting plates 114 are used to connect with the first connecting seat 120. The two first connecting plates 114 are respectively provided with the aforementioned first pin holes.
[0037] Regarding the sliding seat 110 structure in the above embodiments, in this embodiment, as follows: Figures 2 to 5 As shown, the rollers include side rollers 150 and bottom rollers 160. Multiple side rollers 150 are symmetrically distributed on both sides of the first slide groove 111a. At least one side roller 150 is disposed in the gap between the second base plate 113 and the first base plate 112 to contact and engage with the side edge of the lower flange 410 of the main platform beam 4. One or more bottom rollers 160 are disposed. Two first connecting plates 114 are spaced apart along a direction perpendicular to the extension direction of the first slide groove 111a. The bottom roller 160 is rotatably disposed between the two first connecting plates 114. The first base plate 112 has a perforated groove, allowing the top of the bottom roller 160 to enter the first slide groove 111a to contact and engage with the bottom of the lower flange 410 of the main platform beam 4. Figure 3 As shown, in this embodiment of the invention, two bottom rollers 160 are provided, and the axes of the two bottom rollers 160 are perpendicular to the extension direction of the first slide groove 111a. Correspondingly, the first base plate 112 is provided with two hollow grooves. In this way, when the sliding seat 110 and the main platform crossbeam 4 slide relative to each other, the side rollers 150 and the bottom rollers 160 roll together, which can effectively reduce the sliding resistance between the two.
[0038] Furthermore, the roller may also include a top roller disposed on the second base plate 113, which at least partially extends into the first groove 111a to contact and engage with the upper surface of the lower flange 410 of the main platform beam 4.
[0039] like Figures 3 to 5 As shown, the two first end plates 111 of the sliding seat 110 are also provided with ear plates 115, which are used to cooperate with the driven part of the transmission mechanism 220 of the drive assembly 2.
[0040] like Figure 6 and Figure 7 As shown, in this embodiment of the invention, the drive seat 210 is detachably and slidably connected to the main platform beam 4 of the hydraulic climbing formwork machine. The top of the drive seat 210 is provided with a second slide groove 211a for slidingly engaging with the lower wing plate 410 of the main platform beam 4. The drive seat 210 is provided with a second positioning mechanism on both sides of the second slide groove 211a. The second positioning mechanism is used to engage with the lower wing plate 410 of the main platform beam 4 to fix the drive seat 210 relative to the main platform beam 4.
[0041] like Figure 7 As shown, the drive base 210 includes a second end plate 211, a third base plate 212, and a second connecting plate 213. The two second end plates 211 are spaced apart along the extension direction of the second slide groove 211a, and each end plate 211 has an inverted T-shaped slot serving as the inlet and outlet of the second slide groove 211a. The third base plate 212 is positioned between the two end plates 211, with its top surface serving as the bottom of the second slide groove 211a. Rollers can be mounted on the third base plate 212 to contact and engage with the bottom of the lower flange 410 of the main platform beam 4. The second positioning mechanism is mounted on the third base plate 212 and includes threaded holes and... The threaded fastening member 141 has a threaded hole that penetrates the third base plate 212. The threaded hole can be directly opened on the third base plate 212, or a nut can be welded on the third base plate 212 and a through hole coaxial with the threaded hole of the nut can be opened. The threaded fastening member 141 cooperates with the threaded hole to pass through the threaded hole and fasten to the lower wing plate 410 of the main platform crossbeam 4. Two second connecting plates 213 are arranged at intervals on the bottom of the third base plate 212 along the extension direction perpendicular to the second slide groove 211a. The two ends of the two second connecting plates 213 along the extension direction of the second slide groove 211a are respectively fixedly connected to the two second end plates 211. The transmission mechanism 220 is arranged on the two second connecting plates 213.
[0042] The drive assembly 2 in this embodiment of the invention includes a gear 221 and a rack 223. The gear 221 is the driving member and is rotatably mounted on the drive seat 210 via a rotating shaft 222. The rack 223 is the driven member and can slide along the extension direction of the second sliding groove 211a to engage with the drive seat 210 and mesh with the gear 221. The end of the rack 223 away from the drive seat 210 is connected to the sliding seat 110.
[0043] Based on the drive base 210 in the above embodiment, the gear 221 is rotatably disposed between two second connecting plates 213 via a rotating shaft 222. Both ends of the rotating shaft 222 are respectively disposed on the two second connecting plates 213, and one end of the rotating shaft 222 extends through one of the second connecting plates 213 to form a drive end that cooperates with and connects to the driver. Figure 8 As shown, rack 223 meshes with gear 221 above gear 221. To limit and fix rack 223, guide grooves 211b are provided on the two second end plates 211 below the third base plate 212. One end of rack 223 passes through guide groove 211b, and the other end of rack 223 is connected to ear plate 115 on sliding seat 110.
[0044] like Figure 9 As shown, the drive assembly 2 also includes a synchronous drive shaft 6. The synchronous drive shaft is used to drive the rotating shafts 222 on the corresponding positions of the drive seats 210 on the main platform crossbeams 4 of two adjacent hydraulic climbing formwork positions. In this way, only one rotating shaft 222 needs to be driven, and the gear 221 on the drive seat 210 on the other main platform crossbeam 4 can be driven synchronously through the synchronous drive shaft 6, thereby realizing the synchronous sliding of the sliding seats 110 on the two main platform crossbeams 4.
[0045] Specifically, such as Figure 9 As shown, in this embodiment of the invention, the synchronous drive shaft 6 includes a synchronous shaft sleeve 610 and a synchronous shaft tube 620. Two coaxial synchronous shaft tubes 620 are fitted inside the synchronous shaft sleeve 610. The two synchronous shaft tubes 620 can extend or retract from both ends of the synchronous shaft sleeve 610, respectively. A locking mechanism is provided between the synchronous shaft tube 620 and the synchronous shaft sleeve 610 for locking the synchronous shaft tube 620 and the synchronous shaft sleeve 610. The locking mechanism includes a locking threaded hole provided on the synchronous shaft sleeve 610 and a locking threaded fastener that cooperates with the locking threaded hole. The locking threaded fastener passes through the locking threaded hole and presses against the synchronous shaft tube 620 to fix the synchronous shaft tube 620 and the synchronous shaft sleeve 610 relatively. The ends of the synchronous shaft tubes 620 that are far apart from each other are used for transmission connection with the rotating shaft 222 on the drive seat 210 at the corresponding position on the main platform crossbeam 4 of the two adjacent hydraulic climbing formwork positions.
[0046] To further optimize the above technical solution, in this embodiment of the invention, the synchronous shaft tube 620 and the rotating shaft 222 achieve power transmission through friction fit or profile fit.
[0047] like Figures 10 to 12 As shown, in this embodiment of the invention, the horizontal sliding device of the hydraulic climbing formwork machine position further includes a fixing component 3. The fixing component 3 includes a second connecting seat 310 and a third connecting seat 320 connected to the second connecting seat 310. In this case, the second connecting seat 310 and the third connecting seat 320 are detachably and rotatably connected by a second pin 330. Of course, in other embodiments, the second connecting seat 310 and the third connecting seat 320 can be fixedly connected or rotatably connected in other ways, which is not limited here. The second connecting seat 310 and the third connecting seat 320 are respectively used to detachably connect the load-bearing tripod beam 5 and the main platform beam 4 of the hydraulic climbing formwork machine position.
[0048] The first connecting seat 120 of the sliding component 1 and the second connecting seat 310 of the fixing component 3 are detachably connected to the upper wing plate 510 of the load-bearing tripod beam 5.
[0049] It should be noted that the various embodiments in this specification are described in a progressive manner, with each embodiment focusing on the differences from other embodiments. The same or similar parts between the various embodiments can be referred to each other.
[0050] This article uses specific examples to illustrate the principles and implementation methods of the present invention. The descriptions of the above embodiments are only for the purpose of helping to understand the core ideas of the present invention. It should be noted that those skilled in the art can make several improvements and modifications to the present invention without departing from the principles of the present invention, and these improvements and modifications also fall within the protection scope of the claims of the present invention.
Claims
1. A horizontal sliding device for a hydraulic climbing formwork machine, characterized in that, include: A sliding assembly, comprising a sliding seat and a first connecting seat connected to the sliding seat, wherein the sliding seat is detachably and slidably connected to the main platform crossbeam of the hydraulic climbing formwork machine, and the first connecting seat is detachably connected to the load-bearing tripod crossbeam of the hydraulic climbing formwork machine. The drive assembly includes a drive base and a transmission mechanism. The drive base is detachably connected to the main platform crossbeam. The transmission mechanism includes a driving member and a driven member. The driving member is disposed on the drive base. The driven member is in transmission engagement with the driving member and is detachably connected to the sliding seat.
2. The hydraulic climbing formwork horizontal sliding device according to claim 1, characterized in that, The sliding seat and the first connecting seat are detachably and rotatably connected by a first pin.
3. The hydraulic climbing formwork horizontal sliding device according to claim 1 or 2, characterized in that, The top of the sliding seat is provided with a first sliding groove for sliding cooperation with the lower wing plate of the main platform crossbeam. Rollers are respectively provided on the two side walls and the bottom of the first sliding groove for cooperation with the two sides and the bottom of the lower wing plate of the main platform crossbeam.
4. The hydraulic climbing formwork horizontal sliding device according to claim 3, characterized in that, The sliding seat is provided with a first positioning mechanism on both sides of the first slide groove. The first positioning mechanism is used to cooperate with the lower wing plate of the main platform beam to fix the sliding seat relative to the main platform beam.
5. The hydraulic climbing formwork horizontal sliding device according to claim 4, characterized in that, The first positioning mechanism includes: A threaded hole penetrating the wall of the first chute; A threaded clamping member engages with a threaded hole to pass through the threaded hole and clamp onto the lower flange of the main platform beam, thereby fixing the sliding seat relative to the main platform beam.
6. The hydraulic climbing formwork horizontal sliding device according to claim 3, characterized in that, The sliding seat includes: Two end plates are provided, which are spaced apart along the extension direction of the first slide groove. The end plates are provided with inverted T-shaped slots that serve as the inlet and outlet of the first slide groove. The first base plate is connected to the two end plates at both ends along the extension direction of the first groove. Two second base plates are arranged at intervals along a direction perpendicular to the extension direction of the first slide groove, and the two second base plates are arranged at intervals above the first base plate. The two ends of the second base plates along the extension direction of the first slide groove are respectively connected to the two end plates. The two end plates, the first base plate, and the two second base plates form the first slide groove. Two connecting plates are spaced apart and connected to the bottom of the first base plate. The two connecting plates are used to connect to the first connecting seat.
7. The hydraulic climbing formwork horizontal sliding device according to claim 6, characterized in that, The roller includes: Multiple side rollers, at least one of the side rollers is provided in the gap between the second base plate and the first base plate to contact and cooperate with the side of the lower wing plate of the main platform beam; The bottom roller is provided with two connecting plates arranged at intervals along a direction perpendicular to the extension direction of the first slide groove. The bottom roller is rotatably disposed between the two connecting plates. The first bottom plate is provided with a hollow groove, which allows the top of the bottom roller to enter the first slide groove to contact and engage with the bottom of the lower wing plate of the main platform beam.
8. The hydraulic climbing formwork horizontal sliding device according to any one of claims 1, 2, and 4-7, characterized in that, The drive seat is detachably and slidably connected to the main platform beam of the hydraulic climbing formwork machine. The top of the drive seat is provided with a second slide groove for slidingly engaging with the lower wing plate of the main platform beam. The drive seat is provided with a second positioning mechanism on both sides of the second slide groove. The second positioning mechanism is used to engage with the lower wing plate of the main platform beam to fix the drive seat relative to the main platform beam.
9. The hydraulic climbing formwork horizontal sliding device according to claim 8, characterized in that, The driving component includes: The gear, which serves as the driving element, is rotatably mounted on the drive seat via a rotating shaft; As the driven member, the rack can slide and engage with the drive seat along the extension direction of the second slide groove and mesh with the gear. The end of the rack away from the drive seat is connected to the slide seat.
10. The hydraulic climbing formwork horizontal sliding device according to claim 9, characterized in that, The drive assembly also includes a synchronous drive shaft, which is used to drive and connect the rotating shafts on the drive seats at corresponding positions on the main platform crossbeams of two adjacent hydraulic climbing formwork positions, and to move synchronously relative to each other.
11. The hydraulic climbing formwork horizontal sliding device according to claim 10, characterized in that, The synchronous drive shaft includes a synchronous bushing and synchronous shaft tubes. Two coaxial synchronous shaft tubes are fitted inside the synchronous bushing. The two synchronous shaft tubes can extend or retract from both ends of the synchronous bushing, respectively. A locking mechanism is provided between the synchronous shaft tubes and the synchronous bushing for locking the synchronous shaft tubes and the synchronous bushing. The ends of the synchronous shaft tubes that are far apart from each other are used to drive and connect to the rotating shafts on the drive seats at corresponding positions on the main platform crossbeams of two adjacent hydraulic climbing formwork positions, and are relatively synchronously displaced.
12. The hydraulic climbing formwork horizontal sliding device according to claim 11, characterized in that, The synchronous shaft tube and the rotating shaft are connected by friction fit or profile fit to achieve power transmission.
13. The hydraulic climbing formwork horizontal sliding device according to any one of claims 1, 2, 4-7 and 9-12, characterized in that, The horizontal sliding device of the hydraulic climbing formwork machine position also includes a fixing component, which includes a second connecting seat and a third connecting seat connected to the second connecting seat. The second connecting seat and the third connecting seat are respectively used to detachably connect the load-bearing tripod beam and the main platform beam of the hydraulic climbing formwork machine position.
14. The hydraulic climbing formwork horizontal sliding device according to claim 13, characterized in that, The second connecting seat and the third connecting seat are detachably and rotatably connected by a second pin.
Citation Information
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