An adjustable anti-slip support frame structure
Patent Information
- Application Number
- CN202611336132.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2026-08-31
- Publication Date
- 2026-09-25
AI Technical Summary
[0003]但是现有技术中,用于设备安装的支撑架多采用固定尺寸结构或螺栓固定方式,当被支撑设备的尺寸发生变化时,支撑架的承载范围及支撑间距难以进行适应性调整;同时,现有支撑架的安装方向及安装跨度调节能力有限,难以根据不同安装空间及安装位置进行换向和伸缩调整,此外,在设备运行过程中产生振动时,设备与支撑架之间容易发生滑移、偏移或松动,单纯依靠螺栓固定的方式又存在拆装调节不便的问题,难以同时满足不同尺寸设备的适配、不同安装位置的调节以及设备安装后的稳定防滑需求
[0027]与现有技术相比,本发明具有如下有益效果;
Smart Images

Figure CN122823129A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of equipment installation support technology, specifically an adjustable anti-slip support frame structure. Background Technology
[0002] During the installation of equipment in an industrial site, support frames are typically used to support, position, and secure the equipment. For equipment such as power supply boxes used in industrial sites, due to differences in the external dimensions, installation space, and installation location of different devices, the support frames usually need to be adaptively adjusted according to the actual installation conditions in terms of support range, load-bearing position, and installation span to meet the installation requirements of different devices.
[0003] However, in existing technologies, support frames used for equipment installation mostly adopt fixed-size structures or bolt fixing methods. When the size of the supported equipment changes, it is difficult to adapt the load-bearing capacity and support spacing of the support frame. At the same time, the existing support frames have limited adjustment capabilities in terms of installation direction and installation span, making it difficult to change direction and adjust the extension and retraction according to different installation spaces and installation positions. In addition, when vibration occurs during equipment operation, slippage, displacement or loosening can easily occur between the equipment and the support frame. Relying solely on bolt fixing methods also presents the problem of inconvenient disassembly and adjustment. It is difficult to simultaneously meet the requirements of adapting to equipment of different sizes, adjusting to different installation positions, and ensuring the stability and anti-slip properties of the equipment after installation.
[0004] Therefore, it is necessary to provide an adjustable anti-slip support frame structure, which can improve the adaptability to equipment of different sizes and different installation conditions by adjusting the size of the support frame itself, adjusting the load-bearing position, adjusting the installation direction and span, and combining clamping, anti-slip and limiting structures, while improving the stability and ease of disassembly and assembly of the equipment after installation. Summary of the Invention
[0005] Other features and advantages of the invention will be set forth in the description which follows, and will be apparent in part from the description, or may be learned by practicing the invention. The objects and other advantages of the invention may be realized and obtained by means of the structures particularly pointed out in the description and other accompanying drawings.
[0006] The purpose of this invention is to overcome the above-mentioned shortcomings and provide an adjustable anti-slip support frame structure. This structure uses multi-stage telescopic rods and a Y-shaped support frame to form a support section, which is then fixed by a dual-purpose fastener. Connecting struts, rotating blocks, and anti-deviation blocks on the auxiliary frame cooperate to achieve positioning and anti-deviation. The lower and upper swing arms of the side auxiliary clamp, under the action of tension springs, drive the top clamp to adjust the clamping action. Combined with the L-shaped carrier anti-slip block and the inner top anti-slip block of the dual-purpose fastener, this improves anti-slip stability, thereby enhancing the stability of the industrial power supply box installation support.
[0007] To achieve the above objectives, the present invention provides the following technical solution: an adjustable anti-slip support frame structure, comprising a support frame body, on which an even number of tension springs are installed; a nested frame is included within the support frame body; an extension frame is connected to the nested frame; a lower support assembly is fixed on the nested frame; a transverse sliding table is installed on both the nested frame and the extension frame; a sleeve body is included within the nested frame; an even number of parallel limiting grooves are formed on the inner wall of the sleeve body; an insert groove is formed at the top of the sleeve body; a pulley track is formed within the sleeve body; and the extension frame includes... The frame has clearance grooves on its inner wall and anti-detachment sliders fixed on its outer wall. The lower support assembly includes an even number of side fixing blocks, and a carrier platform is connected between the lower parts of the even number of side fixing blocks. A torsion auxiliary sleeve is installed in the center of the surface of the carrier platform, and side auxiliary clamps are provided on both sides of the torsion auxiliary sleeve. A rotating sleeve is installed below the carrier platform, and a connecting cap post is connected to the rotating sleeve. Auxiliary frame rods are connected to both sides of the rotating sleeve. An even number of limiting slots are provided on the carrier platform. A first sleeve rod is nested at one end of the auxiliary frame rod, and a second sleeve rod is nested at the other end of the auxiliary frame rod.
[0008] By adopting the above technical solution, the nested frame and the expansion frame work together to adjust the support range of the main support frame, thereby adapting to the load-bearing requirements of equipment of different sizes and achieving stable support for the equipment.
[0009] In a further improvement to the present invention, multi-stage telescopic rods are installed at both ends of the rotating sleeve, a Y-shaped support is fixed at the end of the multi-stage telescopic rod, a dual-purpose fixing component is fixed on the Y-shaped support, a connecting support rod is connected to the auxiliary frame rod, a rotating block is fixed at the end of the connecting support rod, a Y-shaped reinforcing frame is fixed on the inner side of the auxiliary frame rod, and anti-displacement blocks are installed on the inner wall of the even-numbered limiting slots.
[0010] By adopting the above technical solution, the Y-shaped support frame forms a support and fixing part by cooperating with the dual-purpose fastener at its Y-shaped fork end, and the extension length of the support part is adjusted by relying on the multi-stage telescopic rod connected to the end of the Y-shaped support frame, thereby adapting to the support requirements of different installation spaces.
[0011] In a further improvement to the present invention, the anti-offset locking block is used for engaging the rotating locking block, the Y-shaped reinforcing frame is connected between the auxiliary frame rod and the rotating sleeve, the even-numbered limiting slots are evenly distributed in a ring, the frame body is embedded in the insert groove through the anti-detachment slider, the clearance groove is used to avoid the anti-detachment slider, and the pulley tracks are respectively opened in the nested frame and the extension frame.
[0012] By adopting the above technical solution, the limiting slot is used to engage and position the auxiliary support pole after rotation and reversal, so that the auxiliary support pole is kept in the corresponding support position. Through the cooperation of the rotating block and the anti-offset block, the possibility of the support structure shifting position when subjected to vibration or external force is reduced.
[0013] In a further improvement to the present invention, the dual-purpose fastener includes a fixed crossbeam block, the fixed crossbeam block having a shaft groove on the beam, a swing lock frame mounted on the shaft of the shaft groove, and inner top anti-slip blocks fixed at both ends of the surface of the fixed crossbeam block. The swing lock frame and the fixed crossbeam block both have several reinforcing bolt holes, the swing lock frame cooperates with the fixed crossbeam block, and the outer surface of the fixed crossbeam block is fixed to the top of the Y-shaped support frame.
[0014] By adopting the above technical solution, the reinforced bolt hole is used for the fixed connection of the dual-purpose fastener, so that the support part can be installed in the corresponding installation position; the dual-purpose fastener can also be locked by the flip lock frame, or the flip lock frame can cooperate with the fixed crossbeam block to form a clamping fixation, thereby improving the adaptability of the support frame installation and fixation.
[0015] In a further improvement to the present invention, the torsion auxiliary sleeve includes a collar seat, a pull-down spring is rotatably housed in the collar seat, a rotating adapter cap is linked to the top of the pull-down spring, and a deep groove and a shallow groove are respectively opened inside the collar seat.
[0016] By adopting the above technical solution, the deep slot and the shallow slot are used to engage and position the rotating adapter cap, and the pull spring forms an axial preload on the rotating adapter cap, so that the rotating adapter cap can maintain the engagement state with the deep slot or the shallow slot after rotation adjustment, thereby improving the positioning stability of the support structure after adjustment.
[0017] In a further improvement to the present invention, the collar seat has a through hole in the center for the connecting cap post to pass through. The top of the connecting cap post is fixed to the rotating adapter cap. The bottom end of the pull-down spring is rotatably disposed inside the collar seat. The rotating adapter cap is rotatably confined within the collar seat. The pull-down spring provides axial preload during follow-up to achieve rotational adaptation of the rotating adapter cap. The rotating adapter cap engages with either the deep slot or the shallow slot.
[0018] By adopting the above technical solution, the top of the connecting cap post passes through the through hole of the collar seat and the inner cavity of the pull-down spring in sequence, and is fixed with the rotating adapter cap; during adjustment, the rotating adapter cap is moved axially by driving the connecting cap post to overcome the preload of the pull-down spring, thereby releasing the engagement with the deep or shallow slot and allowing for rotational adjustment; after adjustment, under the elastic action of the pull-down spring, the rotating adapter cap re-engages with the corresponding slot to lock the adjustment position.
[0019] In a further improvement to the present invention, the side auxiliary clamp includes a fixed base, a fixed shaft is mounted on the fixed base, a lower swing arm and an upper swing arm are respectively mounted on the fixed shaft, a top locking block is mounted on the top of the lower swing arm and the upper swing arm, and a hollow groove is opened on the lower swing arm and the upper swing arm, and a tension spring ear is fixed in the hollow groove.
[0020] By adopting the above technical solution, the lower swing arm and the upper swing arm are respectively connected to the tension spring through the tension spring lug in the hollow groove. Under the elastic action of the tension spring, the lower swing arm and the upper swing arm maintain the tendency to swing inward, thereby forming an elastic clamping of the equipment placed on the support frame.
[0021] In a further improvement to the present invention, the fixed shaft assists the lower swing arm and the upper swing arm in swinging, the tension spring is fixed in the tension spring lug on the lower swing arm and the upper swing arm, the lower swing arm and the upper swing arm are staggered, and the top locking block at the end of the lower swing arm and the upper swing arm can be oscillating and adjusted.
[0022] By adopting the above technical solution, the top clamping block swings inward with the lower and upper swing arms and contacts the side of the supported equipment, thereby forming an elastic clamping. The clamping action of the top clamping blocks on both sides improves the installation stability of the equipment on the support frame.
[0023] In a further improvement to the present invention, the transverse sliding table includes a crossbeam frame, an L-shaped carrier fixed at the rear of the crossbeam frame, side pulleys installed on both sides of the crossbeam frame, an integrated side locking block provided on the outer top of the L-shaped carrier, an anti-slip block fixed on the inner surface of the L-shaped carrier, a through rod fixing block fixed at the center below the crossbeam frame, a telescopic limiting rod passing through the through rod fixing block, a support pad fixed at the end of the telescopic limiting rod, and a top spring nested on the telescopic limiting rod.
[0024] By adopting the above technical solution, the side locking block set on the outer side of the top of the L-shaped carrier can assist in limiting the installation position of the supported equipment, and form a load-bearing and fixing structure with the L-shaped carrier, thereby improving the positioning and disassembly convenience during equipment installation.
[0025] In a further improvement to the present invention, the top spring is disposed between the support pad and the through rod fixing block, the crossbeam frame slides with the pulley track through the side pulleys on both sides, the anti-slip block is used for anti-slip during fixed clamping, and the L-shaped carrier frame cooperates with the crossbeam frame to complete the equipment bearing.
[0026] By adopting the above technical solution, the crossbeam frame slides with the pulley tracks on the nested frame and the extension frame respectively through the side pulleys installed on both sides, so that the transverse slide can be adjusted along the pulley tracks, thereby changing the bearing position of the L-shaped frame to adapt to the support requirements of different installation sizes and installation positions.
[0027] Compared with the prior art, the present invention has the following beneficial effects;
[0028] 1. This invention uses a multi-stage telescopic rod and a Y-shaped support frame to form a support structure, which is then fixed by a dual-purpose fastener. Simultaneously, the connecting support rod, rotating block, and anti-deviation block on the auxiliary frame cooperate to achieve positioning and anti-deviation of the support structure. The lower and upper swing arms in the side auxiliary clamp, under the action of a tension spring, drive the top block for clamping and adjustment. Combined with the anti-slip slider on the L-shaped carrier and the inner top anti-slip slider on the dual-purpose fastener, this improves the anti-slip stability during support and clamping, thereby enhancing the support stability of the industrial power supply box after installation.
[0029] 2. This invention forms an adjustable support structure through the cooperation of nested frames and extension frames, and achieves lateral adjustment of the support position through the sliding cooperation of the transverse slide and the pulley track; at the same time, the rotating sleeve, auxiliary frame rod, first sleeve rod and second sleeve rod set under the support platform cooperate with each other to adjust the support range of the support structure, and limit the adjustment position through the limiting slot, thereby improving the adaptability of the support frame to different equipment sizes and different installation positions. Attached Figure Description
[0030] Figure 1 This is a schematic diagram of the assembly structure of an adjustable anti-slip support frame structure according to the present invention;
[0031] Figure 2 This is a three-dimensional top view of an adjustable anti-slip support frame structure according to the present invention;
[0032] Figure 3 This is a side view of the nested frame in an adjustable anti-slip support frame structure according to the present invention.
[0033] Figure 4 This is a top view of the lower support component in an adjustable anti-slip support frame structure according to the present invention.
[0034] Figure 5 For the present invention Figure 4 A magnified schematic diagram of the partial structure at point A in the middle;
[0035] Figure 6 This is a bottom view of the support platform in an adjustable anti-slip support frame structure according to the present invention.
[0036] Figure 7 This is a bottom view of the auxiliary support rod in an adjustable anti-slip support frame structure according to the present invention.
[0037] Figure 8 This is a side view of the dual-purpose fixing component in an adjustable anti-slip support frame structure according to the present invention.
[0038] In the diagram: Support frame main body-1, tension spring-2, nested frame-11, extension frame-12, lower support assembly-13, transverse slide-14, sleeve frame-111, limiting slide groove-112, insert groove-113, pulley track-114, frame-121, clearance groove-122, anti-detachment slider-123, side fixing block-131, carrier platform-132, torsion auxiliary sleeve-133, side Auxiliary clamp-134, crossbeam frame-141, L-shaped carrier-142, side locking block-143, anti-slip block-144, side pulley-145, rotating sleeve-1321, connecting cap post-1322, auxiliary frame rod-1323, limit slot-1324, first sleeve rod-1325, second sleeve rod-1326, collar seat-1331, pull spring-1332, rotating adapter cap-13 33. Deep slot - 1334, Shallow slot - 1335, Fixed seat - 1341, Lower swing arm - 1342, Upper swing arm - 1343, Top locking block - 1344, Fixed shaft - 1345, Hollowed-out groove - 1346, Tension spring lug - 1347, Through rod fixing block - 1411, Telescopic limit rod - 1412, Support pad - 1413, Top spring - 1414, Multi-stage telescopic rod - 13211 Y-shaped support frame - 13212, dual-purpose fastener - 13213, connecting support rod - 13231, rotating locking block - 13232, Y-shaped reinforcing frame - 13233, anti-deviation locking block - 13241, fixed crossbeam block - 132131, inner top anti-sliding block - 132132, reinforced locking bolt hole - 132133, beam with shaft groove - 132134, tilting lock frame - 132135. Detailed Implementation
[0039] To make the objectives, technical solutions, and advantages of this invention clearer, the invention will be further described in detail below with reference to specific embodiments. It should be understood that the specific embodiments described herein are merely illustrative of the invention and are not intended to limit the invention.
[0040] Furthermore, in the description of this invention, it should be understood that the terms "center," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," "outer," "axial," "radial," and "circumferential" indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this invention.
[0041] In this invention, unless otherwise explicitly specified and limited, the terms "installation," "connection," "linking," and "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral unit; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components. However, specifying a direct connection indicates that the two main bodies are not connected through a transitional structure, but rather formed as a whole through a connecting structure. Those skilled in the art can understand the specific meaning of the above terms in this invention according to the specific circumstances.
[0042] In this invention, unless otherwise expressly specified and limited, the first feature "on" or "below" the second feature may be in direct contact with the first and second features, or indirect contact through an intermediate medium. In the description of this specification, references to terms such as "one embodiment," "some embodiments," "example," "specific example," or "some examples," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of the invention. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.
[0043] The present invention will be further described below with reference to the accompanying drawings:
[0044] Example 1
[0045] As attached Figure 1 To be continued Figure 8 As shown:
[0046] This embodiment provides an adjustable anti-slip support frame structure, including a support frame body 1, an even number of tension springs 2 installed on the support frame body 1, a nested frame 11 inside the support frame body 1, an extension frame 12 connected to the side of the nested frame 11, a lower support assembly 13 fixed on the nested frame 11, and a transverse sliding table 14 installed on both the nested frame 11 and the extension frame 12.
[0047] Furthermore, at least two tension springs 2 are provided, both of which are installed on the lower support assembly 13 and connected to the side auxiliary clamps 134 respectively. Under the elastic action of the tension springs 2, the side auxiliary clamps 134 tend to clamp inward, thereby assisting in clamping the equipment placed on the support frame and improving the stability of the equipment during the support process.
[0048] Furthermore, at least two sets of transverse sliding tables 14 are provided, which are respectively installed on the extension frame 12 and the nesting frame 11, for adjusting the support position so that the support frame can adapt to the equipment of different sizes and installation positions for support.
[0049] The nested frame 11 includes a frame body 111, and the inner wall of the frame body 111 is provided with an even number of parallel limiting grooves 112. The top of the frame body 111 is provided with a frame groove 113. A pulley track 114 is formed inside the frame body 111. The extension frame 12 includes a frame body 121, and the inner wall of the frame body 121 is provided with a clearance groove 122. An anti-detachment slider 123 is fixed to the outer wall of the frame body 121.
[0050] Furthermore, the interior of the sleeve body 111 is hollow, and the frame body 121 is nested in the frame groove 113; the side wall of the frame body 121 is provided with a clearance groove 122 to provide clearance space when the frame body 121 shrinks or expands relative to the sleeve body 111, thereby ensuring the adjustment and coordination between the two.
[0051] Furthermore, the anti-detachment slider 123 is fixed to the outer wall of the frame 121 and slides in cooperation with the limiting groove 112 on the sleeve frame 111 to limit the sliding range of the frame 121 relative to the sleeve frame 111, while preventing the frame 121 from detaching from the sleeve frame 111 during the expansion process.
[0052] The lower support assembly 13 includes an even number of side fixing blocks 131, and a carrier platform 132 is connected between the even number of side fixing blocks 131. A torsion auxiliary sleeve 133 is installed in the center of the surface of the carrier platform 132, and side auxiliary clamps 134 are provided on both sides of the torsion auxiliary sleeve 133.
[0053] Furthermore, at least two sets of side auxiliary clamps 134 are provided and installed opposite each other on both sides of the carrier platform 132, so that the equipment placed between the two sets of side auxiliary clamps 134 can be clamped in opposite directions, thereby improving the clamping stability of the equipment on the support frame.
[0054] The transverse slide 14 includes a crossbeam frame 141, an L-shaped carrier frame 142 fixed behind the crossbeam frame 141, side pulleys 145 installed on both sides of the crossbeam frame 141, an integrated side locking block 143 is provided on the outer side of the top of the L-shaped carrier frame 142, and an anti-slip block 144 is fixed on the inner surface of the L-shaped carrier frame 142.
[0055] Furthermore, the crossbeam frame 141 drives the L-shaped carrier frame 142 connected to it to move along the pulley track 114 through the side pulleys 145 installed on both sides, thereby adjusting the bearing spacing of the L-shaped carrier frame 142 to adapt to the support requirements of equipment of different sizes.
[0056] Furthermore, the side locking block 143 on the L-shaped carrier 142 is used to assist in limiting the installation position of the supported equipment, and can be used in conjunction with the corresponding fixing structure to achieve installation positioning, thereby improving the anti-detachment stability and ease of disassembly and assembly of the equipment after installation.
[0057] The platform 132 has a rotating sleeve 1321 installed below it. A cap post 1322 is connected to the rotating sleeve 1321. Auxiliary support rods 1323 are connected to both sides of the rotating sleeve 1321. An even number of limiting slots 1324 are opened on the platform 132. A first sleeve rod 1325 is nested at one end of the auxiliary support rod 1323, and a second sleeve rod 1326 is nested at the other end of the auxiliary support rod 1323.
[0058] Furthermore, the connecting cap 1322 connected to the rotating sleeve 1321 is connected to the torsion auxiliary sleeve 133, and the rotation positioning is achieved by the cooperation of the rotating adapter cap 1333 with the deep slot 1334 or the shallow slot 1335, so that the support structure can adjust the support direction according to different installation positions.
[0059] Furthermore, one end of the auxiliary frame rod 1323 is nested with a first sleeve rod 1325, and the other end is nested with a second sleeve rod 1326. The first sleeve rod 1325 and the second sleeve rod 1326 can be retracted and nested relative to the auxiliary frame rod 1323, so that the support structure reduces the overall space occupied in the retracted state, thereby facilitating the adjustment and storage of the support frame.
[0060] The torsion auxiliary sleeve 133 includes a collar seat 1331, a pull-down spring 1332 is rotatably housed in the collar seat 1331, a rotating adapter cap 1333 is linked to the top of the pull-down spring 1332, and a deep groove 1334 and a shallow groove 1335 are respectively opened inside the collar seat 1331.
[0061] Furthermore, the collar seat 1331 is located at the center of the carrier platform 132. The deep groove 1334 and the shallow groove 1335 are alternately arranged inside the collar seat 1331 and respectively cooperate with the locking parts at both ends of the rotating adapter cap 1333, so that the rotating adapter cap 1333 can be locked and positioned with the deep groove 1334 or the shallow groove 1335 according to the rotation position, thereby realizing the adjustment and locking of the rotation position of the support structure.
[0062] Furthermore, the deep groove 1334 and the shallow groove 1335 have different depths. By rotating the adapter cap 1333 and switching between grooves of different depths, the connecting cap post 1322 and the rotating sleeve 1321 can be in different positioning states, thereby realizing the rotation reversal and position locking of the support structure.
[0063] Among them, the rotating sleeve 1321 is equipped with multi-stage telescopic rods 13211 at both ends, and Y-shaped support 13212 is fixed at the end of the multi-stage telescopic rod 13211. A dual-purpose fastener 13213 is fixed on the Y-shaped support 13212. A connecting support rod 13231 is connected to the auxiliary frame rod 1323. A rotating block 13232 is fixed at the end of the connecting support rod 13231. A Y-shaped reinforcing frame 13233 is fixed on the inner side of the auxiliary frame rod 1323. Anti-displacement blocks 13241 are installed on the inner wall of the even-numbered limit slots 1324.
[0064] Furthermore, the Y-shaped support 13212 is fixed to the end of the multi-stage telescopic rod 13211, and the extension position of the Y-shaped support 13212 is changed by the extension and retraction of the multi-stage telescopic rod 13211, thereby adjusting the overall length of the support part to adapt to the support requirements of different installation spaces.
[0065] Furthermore, the anti-offset locking block 13241 is fixed to the inner wall of the limiting slot 1324 and cooperates with the rotating locking block 13232 to lock and limit the rotation of the rotating locking block 13232 after rotation adjustment, thereby limiting the rotation position of the auxiliary frame rod 1323 and reducing the possibility of the support structure being offset.
[0066] The dual-purpose fastener 13213 includes a fixed crossbeam block 132131, which has a shaft groove 132134. A swing lock frame 132135 is installed on the shaft of the shaft groove 132134. Both ends of the surface of the fixed crossbeam block 132131 are fixed with inner top anti-slip blocks 132132. Both the swing lock frame 132135 and the fixed crossbeam block 132131 have several reinforcing bolt holes 132133.
[0067] Furthermore, the tilting lock frame 132135 installed in the shaft groove 132134 on the beam can be hinged and swung around its axis. After the tilting lock frame 132135 swings, it cooperates with the fixed crossbeam block 132131 and the support part is fixed through the reinforced bolt hole 132133. At the same time, the inner top anti-slip block 132132 fits against the corresponding bearing contact part to increase the frictional resistance during the fixing process, thereby improving the anti-slip stability of the support frame after installation.
[0068] The specific working principle is as follows:
[0069] In use, the supported equipment is placed on the bearing portion formed by the crossbeam frame 141 and the L-shaped carrier frame 142, and the support frame body 1 is adjusted according to the size of the supported equipment. When the size of the supported equipment is larger than the current support range, the frame body 121 is pulled outward along the mounting groove 113 of the sleeve frame body 111, causing the anti-detachment slider 123 to slide along the limiting slide groove 112 and limit the extension stroke of the frame body 121. At the same time, the transverse slide table 14 moves synchronously along the pulley track 114 via the side pulley 145, adjusting the bearing position of the L-shaped carrier frame 142 outward to expand the support range. After adjustment, the supported equipment... The support device is supported by an L-shaped carrier 142, and the frictional resistance of the bearing contact surface is increased by the anti-slip block 144. Simultaneously, the side auxiliary clamp 134, under the elastic action of the tension spring 2, drives the lower swing arm 1342 and the upper swing arm 1343 to swing inward, causing the top clamping block 1344 to elastically clamp the two sides of the supported device. Subsequently, the rotating sleeve 1321 is adjusted according to the support direction of the installation position. By pushing the connecting cap column 1322 upward, the rotating adapter cap 1333 is disengaged from the current slot and rotates, switching the rotating adapter cap 1333 from one of the deep slot 1334 or the shallow slot 1335 to the other. The other component re-engages and repositions, thereby causing the auxiliary support rod 1323 to change its support direction. Simultaneously, the connecting strut 13231 drives the rotating block 13232 to engage with the anti-deviation block 13241 within the limiting slot 1324, limiting the direction of the reversed auxiliary support rod 1323. After the reversal is complete, the first set of rods 1325 and the second set of rods 1326 are pulled according to the support span of the installation space, adjusting the support length of the auxiliary support rod 1323. The extension and retraction of the multi-stage telescopic rod 13211 then adjusts the Y-shaped support frame 13212 to the corresponding support position. Finally, the Y-shaped support frame 13212... The dual-purpose fastener 13213 is used to fix the support frame. During the fixing process, the swing lock 132135 can cooperate with the fixed crossbeam block 132131 and be fixed by using the reinforced bolt hole 132133. At the same time, the inner top anti-slip block 132132 is made to fit with the bearing contact part to improve the anti-slip stability after fixing. When the size of the supported equipment is small, the above adjustment process is reversed to make the frame 121, the transverse slide 14, the auxiliary frame rod 1323 and the Y-shaped support 13212 shrink inward, thereby reducing the support range and completing the adaptation to the supported equipment of different sizes and installation positions.
[0070] Example 2:
[0071] As attached Figure 1 Appendix Figure 3 To be continued Figure 5 Appendix Figure 8 As shown:
[0072] The nested frame 11 includes a frame body 111, and the inner wall of the frame body 111 is provided with an even number of parallel limiting grooves 112. The top of the frame body 111 is provided with a frame groove 113. A pulley track 114 is formed inside the frame body 111. The extension frame 12 includes a frame body 121, and the inner wall of the frame body 121 is provided with a clearance groove 122. An anti-detachment slider 123 is fixed to the outer wall of the frame body 121.
[0073] The support frame body 1 is equipped with an even number of tension springs 2. The lower support assembly 13 includes an even number of side fixing blocks 131. A carrier platform 132 is connected between the even number of side fixing blocks 131. A torsion auxiliary sleeve 133 is installed in the center of the surface of the carrier platform 132. Side auxiliary clamps 134 are provided on both sides of the torsion auxiliary sleeve 133.
[0074] The transverse slide 14 includes a crossbeam frame 141, an L-shaped carrier frame 142 fixed behind the crossbeam frame 141, side pulleys 145 installed on both sides of the crossbeam frame 141, an integrated side locking block 143 is provided on the outer side of the top of the L-shaped carrier frame 142, and an anti-slip block 144 is fixed on the inner surface of the L-shaped carrier frame 142.
[0075] The side auxiliary clamp 134 includes a fixed base 1341, a fixed shaft 1345 is mounted on the fixed base 1341, a lower swing arm 1342 and an upper swing arm 1343 are respectively mounted on the fixed shaft 1345, a top locking block 1344 is mounted on the top of the lower swing arm 1342 and the upper swing arm 1343, and a hollow groove 1346 is opened on the lower swing arm 1342 and the upper swing arm 1343, and a tension spring ear 1347 is fixed in the hollow groove 1346.
[0076] Furthermore, the lower swing arm 1342 and the upper swing arm 1343 are structurally compatible and installed in opposite directions, and are arranged in a staggered manner. The two are clamped on both sides of the supported equipment by the top clamping block 1344 at their ends, thereby forming a relatively elastic clamping structure.
[0077] Furthermore, tension spring ears 1347 are respectively provided in the hollowed-out grooves 1346 on the lower swing arm 1342 and the upper swing arm 1343. The installation directions of the tension spring ears 1347 on both sides are opposite, and they are connected to each other by tension springs 2, so that the lower swing arm 1342 and the upper swing arm 1343 form a continuous inward elastic force, thereby maintaining the clamping force on the supported equipment.
[0078] Among them, a through rod fixing block 1411 is fixed in the center below the crossbeam frame 141, a telescopic limiting rod 1412 passes through the through rod fixing block 1411, a support pad 1413 is fixed at the end of the telescopic limiting rod 1412, and a top spring 1414 is nested on the telescopic limiting rod 1412.
[0079] Furthermore, the support pad 1413 is connected to the telescopic limit rod 1412 and provides elastic support through the top spring 1414; when the crossbeam frame 141 moves to the corresponding position along the pulley track 114, the support pad 1413 can contact the inner wall of the frame 121, thereby providing auxiliary support and buffer for the transverse slide table 14 and reducing the impact during the adjustment of the support structure.
[0080] The specific working principle is as follows:
[0081] In use, the nested frame 111 and frame 121 within the nested frame 11 interlock to adjust the overall support range of the support frame body 1, accommodating equipment of different sizes. The equipment is then placed on the bearing portion formed by the crossbeam frame 141 and the L-shaped carrier 142 connected behind it. Anti-slip blocks 144 on the L-shaped carrier 142 contact the equipment to increase frictional resistance on the bearing contact surface. Once the bearing position of the equipment is determined, the side pulleys 145 on both sides of the crossbeam frame 141 stop moving, and the relative contraction of the nested frame 111 and frame 121 further adjusts the position of the support frame body 1. At this time, the through-rod fixing block 1411 below the crossbeam frame 141 cooperates with the telescopic limiting rod 1412, causing the support pad 1413 to abut against the inner wall of the corresponding frame. A top spring 1, located between the through-rod fixing block 1411 and the support pad 1413, further adjusts the position. 414 provides elastic support, thereby forming auxiliary support for the transverse slide table 14 and improving the stability of the L-shaped carrier 142 during the load-bearing process; at the same time, the side auxiliary clamps 134 provided on both sides connect the tension spring 2 between the tension spring ears 1347 arranged oppositely in the hollow groove 1346 of the lower swing arm 1342 and the upper swing arm 1343, so that the lower swing arm 1342 and the upper swing arm 1343 are subjected to a continuous inward elastic force, and in conjunction with the fixed seat 1341 and the fixed shaft 1345, the lower swing arm 1342 and the upper swing arm 1343 swing inward around the fixed shaft 1345. Then, the top clamps 1344 provided at the top of the two provide elastic clamping for both sides of the supported equipment, thereby forming a load-bearing and clamping effect together with the anti-slip block 144 on the L-shaped carrier 142, reducing the possibility of slippage of the supported equipment when subjected to external force or vibration, and facilitating the installation and disassembly of the supported equipment while ensuring the stability of the support.
[0082] It should be understood that the embodiments disclosed herein are not limited to the specific processing steps or materials disclosed herein, but should be extended to equivalent substitutions of such features as understood by those skilled in the art. It should also be understood that the terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting.
[0083] The term "embodiment" in this specification means that a specific feature or characteristic described in connection with an embodiment is included in at least one embodiment of the invention. Therefore, phrases or "embodiments" appearing in various places throughout the specification do not necessarily refer to the same embodiment.
[0084] Furthermore, the described features or characteristics can be incorporated into one or more embodiments in any other suitable manner. In the above description, specific details, such as thickness, quantity, etc., are provided to provide a comprehensive understanding of embodiments of the invention. However, those skilled in the art will understand that the invention can be implemented without the aforementioned specific details or may be implemented using other methods, components, materials, etc.
Claims
1. An adjustable anti-slip support frame structure, characterized in that, The system includes a support frame body (1), on which an even number of tension springs (2) are installed. The support frame body (1) includes a nested frame (11), and an extension frame (12) is connected to the side of the nested frame (11). A lower support assembly (13) is fixed on the nested frame (11). A transverse sliding table (14) is installed on both the nested frame (11) and the extension frame (12). The nested frame (11) includes a sleeve frame body (111), and the inner wall of the sleeve frame body (111) is provided with an even number of parallel limiting grooves (112). The top of the sleeve frame body (111) is provided with a frame groove (113). A pulley track (114) is formed inside the sleeve frame body (111). The extension frame (12) includes a frame body (121), and the inner wall of the frame body (121) is provided with a clearance groove (122). An anti-detachment slider (123) is fixed on the outer wall of the frame body (121). The lower support assembly (13) includes an even number of side fixing blocks (131), and a carrier platform (132) is connected between the lower parts of the even number of side fixing blocks (131). A torsion auxiliary sleeve (133) is installed in the center of the surface of the carrier platform (132), and side auxiliary clamps (134) are provided on both sides of the torsion auxiliary sleeve (133). A rotating sleeve (1321) is installed below the carrier platform (132). A cap post (1322) is connected to the rotating sleeve (1321). Auxiliary support rods (1323) are connected to both sides of the rotating sleeve (1321). An even number of limiting slots (1324) are opened on the carrier platform (132). A first sleeve rod (1325) is nested at one end of the auxiliary support rod (1323), and a second sleeve rod (1326) is nested at the other end of the auxiliary support rod (1323).
2. The adjustable anti-slip support frame structure according to claim 1, characterized in that: The rotating sleeve (1321) is equipped with multi-stage telescopic rods (13211) at both ends. A Y-shaped support (13212) is fixed at the end of the multi-stage telescopic rod (13211). A dual-purpose fastener (13213) is fixed on the Y-shaped support (13212). A connecting support rod (13231) is connected to the auxiliary frame rod (1323). A rotating locking block (13232) is fixed at the end of the connecting support rod (13231). A Y-shaped reinforcing frame (13233) is fixed on the inner side of the auxiliary frame rod (1323). Anti-deviation locking blocks (13241) are installed on the inner wall of the even-numbered limiting slots (1324).
3. The adjustable anti-slip support frame structure according to claim 2, characterized in that: The anti-offset locking block (13241) is used to engage the rotating locking block (13232). The Y-shaped reinforcing frame (13233) is connected between the auxiliary frame rod (1323) and the rotating sleeve (1321). The even-numbered limiting slots (1324) are evenly distributed in a ring. The frame body (121) is embedded in the frame groove (113) through the anti-detachment slider (123). The clearance groove (122) is used to avoid the anti-detachment slider (123). The pulley track (114) is respectively opened in the nested frame (11) and the extension frame (12).
4. The adjustable anti-slip support frame structure according to claim 2, characterized in that: The dual-purpose fastener (13213) includes a fixed crossbeam block (132131), on which a shaft groove (132134) is provided. A swing lock frame (132135) is installed on the shaft of the shaft groove (132134). Both ends of the surface of the fixed crossbeam block (132131) are fixed with inner top anti-slip blocks (132132). Both the swing lock frame (132135) and the fixed crossbeam block (132131) are provided with a number of reinforcing bolt holes (132133). The swing lock frame (132135) cooperates with the fixed crossbeam block (132131). The outer surface of the fixed crossbeam block (132131) is fixed to the top of the Y-shaped support frame (13212).
5. The adjustable anti-slip support frame structure according to claim 1, characterized in that: The torsion auxiliary sleeve (133) includes a collar seat (1331), in which a pull spring (1332) is rotatably housed. A rotating adapter cap (1333) is linked to the top of the pull spring (1332). The collar seat (1331) has a deep groove (1334) and a shallow groove (1335) respectively.
6. The adjustable anti-slip support frame structure according to claim 5, characterized in that: The collar seat (1331) has a through hole in the center for the connecting cap post (1322) to pass through. The top of the connecting cap post (1322) is fixed to the rotating adapter cap (1333). The bottom end of the pull spring (1332) is rotatably disposed inside the collar seat (1331). The rotating adapter cap (1333) is rotatably confined within the collar seat (1331). The pull spring (1332) provides axial preload during follow-up to achieve rotational adaptation of the rotating adapter cap (1333). The rotating adapter cap (1333) engages with either the deep slot (1334) or the shallow slot (1335).
7. The adjustable anti-slip support frame structure according to claim 1, characterized in that: The side auxiliary clamp (134) includes a fixed base (1341), a fixed shaft (1345) is installed on the fixed base (1341), a lower swing arm (1342) and an upper swing arm (1343) are respectively installed on the fixed shaft (1345), a top locking block (1344) is installed at the top of the lower swing arm (1342) and the upper swing arm (1343), and a hollow groove (1346) is opened on the lower swing arm (1342) and the upper swing arm (1343), and a tension spring ear (1347) is fixed in the hollow groove (1346).
8. The adjustable anti-slip support frame structure according to claim 7, characterized in that: The fixed shaft (1345) assists the lower swing arm (1342) and the upper swing arm (1343) in swinging. The tension spring (2) is fixed in the tension spring lug (1347) on the lower swing arm (1342) and the upper swing arm (1343). The lower swing arm (1342) and the upper swing arm (1343) are staggered. The top locking block (1344) at the end of the lower swing arm (1342) and the upper swing arm (1343) can be adjusted by swinging.
9. The adjustable anti-slip support frame structure according to claim 1, characterized in that: The transverse sliding table (14) includes a crossbeam frame (141), an L-shaped carrier frame (142) is fixed behind the crossbeam frame (141), side pulleys (145) are installed on both sides of the crossbeam frame (141), an integrated side locking block (143) is provided on the outer side of the top of the L-shaped carrier frame (142), an anti-slip block (144) is fixed on the inner surface of the L-shaped carrier frame (142), a through rod fixing block (1411) is fixed in the center below the crossbeam frame (141), a telescopic limiting rod (1412) passes through the through rod fixing block (1411), a support pad (1413) is fixed at the end of the telescopic limiting rod (1412), and a top spring (1414) is nested on the telescopic limiting rod (1412).
10. The adjustable anti-slip support frame structure according to claim 9, characterized in that: The top spring (1414) is disposed between the support pad (1413) and the through rod fixing block (1411). The crossbeam frame (141) is slidably engaged with the pulley track (114) through the side pulleys (145) on both sides. The anti-slip block (144) is used for anti-slip during fixed clamping. The L-shaped carrier (142) cooperates with the crossbeam frame (141) to complete the equipment bearing.