Transfer device of reinforcement cage and reinforcement cage processing workshop

By designing a track and combined welding conveyor frame on the ground, and combining it with a rebar cage rolling machine, the problem of time-consuming, labor-intensive, and costly rebar cage transportation is solved, achieving efficient, safe, and low-cost transportation and processing, which is particularly suitable for construction sites.

CN223751735UActive Publication Date: 2026-01-02GUANGZHOU ZHONG COAL JIANGNANJICHU ENG CO
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Patent Information

Application Number
CN202520391216.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-06
Publication Date
2026-01-02
Estimated Expiration
2035-03-06

AI Technical Summary

Technical Problem

In the existing technology, the transfer of steel cages relies on manual handling, which is time-consuming and labor-intensive, or requires the installation of large mechanical equipment, resulting in high costs and strong dependence on site conditions. In particular, it is difficult to complete the transfer task efficiently in the absence of professional lifting equipment.

Method used

The system utilizes a track formed by steel bars fixed to the ground and a combined welded conveyor frame. Rollers work in conjunction with the track to form a crisscrossing conveyor frame for the transfer of steel cages. Combined with the design of the processing workshop, including processing tables and cage rolling machines, it enables the smooth transfer of steel cages between different workstations.

Benefits of technology

It reduces reliance on expensive lifting equipment, improves transfer efficiency, reduces manpower consumption, ensures the stability and safety of steel cages, is suitable for small or temporary processing sites, reduces production and transportation costs, and achieves seamless and efficient processing.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to a transfer device of a reinforcement cage and a reinforcement cage processing workshop, and relates to the technical field of reinforcement cage production and manufacturing. The transfer device for the reinforcement cage comprises a rail formed by fixedly arranging reinforcing steel bars on the ground and a conveying frame formed by combining and welding the reinforcing steel bars. Rolling wheels are arranged at the bottom of the conveying frame, grooves matched with the rails are formed in the peripheral surfaces of the rolling wheels, and the conveying frame can move on the rails through the rolling wheels; the conveying frame comprises a plurality of transverse steel bars and longitudinal steel bars which are arranged in a criss-cross mode. The transverse steel bars are arranged on the upper sides of the longitudinal steel bars at intervals, and the length direction of the transverse steel bars is perpendicular to the length direction of the track. The utility model further discloses a reinforcement cage machining workshop comprising the transfer device. According to the reinforcement cage machining workshop, transfer of reinforcement cages is facilitated, time and labor are saved, and the cost is low.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of steel reinforcement cage production and manufacturing, in particular to a steel reinforcement cage transfer device and a steel reinforcement cage processing workshop. BACKGROUND

[0002] A steel reinforcement cage is a cage-shaped structure formed by welding or binding steel bars, mainly used for reinforcing concrete structures and widely used in construction engineering. In civil construction, especially in bridge and high-rise building construction, it is often necessary to pile the foundation. After the pile hole reaches the designed depth, the steel reinforcement cage is lowered into the pile hole, and the guide pipe is inserted for concrete pouring to form a pile. The steel reinforcement cage mainly plays a role in resisting tension in the concrete pile body, and forms a constraint on the pile body concrete, so that it can withstand a certain axial tension, which is used to overcome the low tensile strength of concrete, and plays an important role in ensuring the safety and durability of buildings.

[0003] Generally, the steel reinforcement cage is pre-made, and the steel reinforcement cage processing requires rain protection, moisture protection, and convenient access. After selecting a suitable flat site, a shed is built according to the needs to form a processing workshop. According to the design drawing requirements, the steel bars are purchased and cut to the appropriate length, and then the steel bars are processed according to the design drawing requirements. The steel reinforcement cage of a cylindrical pile is usually composed of a plurality of main bars distributed along the circumference at intervals, hoop bars for fixing the main bars, and a plurality of reinforcing bars, connecting bars or winding bars. The steel reinforcement cage needs to be processed step by step. The main bars are first fixed with the hoop bars to distribute and fix the main bars, and then the reinforcing bars, connecting bars or winding bars are arranged. The weight of a large steel reinforcement cage can reach hundreds of kilograms. The finished steel reinforcement cage needs to be stacked according to the requirements, so as to facilitate the use in the later stage.

[0004] However, the heavy steel reinforcement cage is very inconvenient to carry. The traditional steel reinforcement cage transfer method is to rely on manual carrying, which is time-consuming and labor-intensive. The second is to install large mechanical equipment to assist in lifting, but this puts high requirements on the simple processing workshop near the civil construction site, and greatly increases the production cost.

[0005] The existing technology generally has problems such as high equipment cost, complicated operation and strong dependence on site conditions, especially in the absence of professional hoisting equipment, it is difficult to efficiently complete the steel reinforcement cage transfer task. CONTENT OF THE INVENTION

[0006] In order to more efficiently and labor-savingly process the steel reinforcement cage and save production cost, the present application provides a steel reinforcement cage transfer device and a steel reinforcement cage processing workshop.

[0007] In the first aspect, the steel reinforcement cage transfer device provided by the present application adopts the following technical scheme:

[0008] The application discloses a reinforced cage transfer device, which comprises a track formed by reinforcing bars fixed on the ground and a conveying frame formed by welding reinforcing bars.

[0009] The bottom of the conveying frame is provided with a plurality of rollers, and the outer circumferential surface of each roller is provided with a groove matched with the track.

[0010] The conveying frame comprises a plurality of transverse reinforcing bars and longitudinal reinforcing bars arranged in a crisscross manner, and the transverse reinforcing bars are arranged on the upper side of the longitudinal reinforcing bars in a spaced manner and the length direction of the transverse reinforcing bars is perpendicular to the length direction of the track.

[0011] By using the above technical scheme, the reinforced cage transfer device can be built on the construction site by using the reinforcing bars used for manufacturing the reinforced cage, so that the reinforced cage can be conveniently transferred; the track formed by the reinforcing bars fixed on the ground and the conveying frame formed by welding the reinforcing bars can effectively transfer the reinforced cage. The device has simple structure, low cost and easy implementation, and is particularly suitable for the construction site environment. The device can be used to transfer the finished reinforced cage along the track to a predetermined position for stacking, and can also be used to directly transfer the semi-finished reinforced cage manufactured at one position to another position for further processing, so that the work efficiency is improved and unnecessary troubles are reduced.

[0012] In the technical scheme, the rollers and the track are matched to enable the conveying frame to stably move on the track, so that the human consumption in the carrying process is greatly reduced; meanwhile, the conveying frame is composed of the transverse reinforcing bars and the longitudinal reinforcing bars arranged in a crisscross manner, so that the sufficient bearing capacity and stability are ensured, and the deformation or damage problems in the transfer process are effectively avoided, thereby significantly improving the work efficiency of the reinforced cage processing and transfer.

[0013] Optionally, the track comprises two parallel and spaced supporting reinforcing bars and a plurality of connecting reinforcing bars fixedly connected between the two supporting reinforcing bars, all the connecting reinforcing bars are arranged in parallel and at intervals, and the two ends of each connecting reinforcing bar are welded to the bottom side or the position close to the bottom side of the two supporting reinforcing bars.

[0014] By using the above technical scheme, the track is designed to comprise two parallel and spaced supporting reinforcing bars and a plurality of connecting reinforcing bars, so that the overall stability and bearing capacity of the track are significantly improved, thereby providing sufficient strength and rigidity to support the conveying frame and the load thereof; meanwhile, the reasonable arrangement of the connecting reinforcing bars can effectively disperse the stress and avoid local stress concentration, so that the track is not prone to deformation or damage in the long-term use, and the goal of building a stable and reliable reinforced cage transfer path at low cost is finally achieved.

[0015] Optionally, the conveying frame comprises an upper layer frame and a lower layer frame, the upper layer frame and the lower layer frame are arranged in a top-bottom manner, and the upper layer frame and the lower layer frame are fixedly connected and supported by a plurality of vertical steel bars; the upper layer frame and the lower layer frame each comprise a plurality of transverse steel bars and at least two longitudinal steel bars; and the two longitudinal steel bars are arranged at two ends of the transverse steel bars.

[0016] By adopting the above technical solution, the conveying frame has a certain height, can be matched with other processing stations, and facilitates the feeding and discharging of the steel cage. Meanwhile, the entire conveying frame forms a stable frame structure, which is not only light in weight but also improves the uniformity of load distribution, effectively enhances the overall stability of the conveying frame, can bear a heavy steel cage, and avoids overturning during transfer, thereby improving the safety and reliability during transfer.

[0017] Optionally, the transverse steel bars in the upper layer frame and the transverse steel bars in the lower layer frame are arranged in a one-to-one top-bottom correspondence, the middle positions of the transverse steel bars in the upper layer frame and the corresponding transverse steel bars in the lower layer frame are fixedly connected by two inclined steel bars, and the inclined directions of the two inclined steel bars are opposite.

[0018] By adopting the above technical solution, the design of the inclined steel bars forms a stable triangular structure inside the conveying frame, reasonably disperses the load stress, further enhances the overall stability of the conveying frame, and effectively prevents deformation caused by external impact or vibration during transfer. Meanwhile, the carrying capacity is improved, and the safety and reliability during transfer of the heavy steel cage are ensured.

[0019] Optionally, the conveying frame further comprises a support frame arranged on the upper layer frame, the support frame comprises a plurality of transverse steel bars and at least one longitudinal steel bar, the length of the transverse steel bars in the support frame is greater than the length of the transverse steel bars in the upper layer frame and the lower layer frame, and one side of the support frame protrudes outside the upper layer frame, the lower layer frame, and the track.

[0020] By adopting the above technical solution, the addition of the support frame effectively expands the carrying area and enhances the support capacity for the steel cage. Meanwhile, since one side of the support frame protrudes outside the upper layer frame, the lower layer frame, and the track, additional operation space is provided for the steel cage during transfer, facilitating the loading and unloading work of workers and improving work efficiency.

[0021] Optionally, the number of the rollers is at least four and the rollers are symmetrically distributed on both sides of the bottom of the lower layer frame; and the groove on the roller is an arc-shaped groove matched with the outer circumferential surface of the support steel bar.

[0022] By adopting the technical scheme, the number of the rollers is set to at least four and the rollers are symmetrically distributed on both sides of the bottom of the lower layer frame, so that the conveying frame is uniformly stressed when moving on the track, the stability is stronger, and the overturning is effectively prevented. Meanwhile, the groove on the roller is designed as an arc-shaped groove matched with the outer circumferential surface of the supporting steel bar, so that the close cooperation between the roller and the track is ensured, the risk of derailment is reduced, and the reliability in the transfer process is improved.

[0023] In a second aspect, the steel reinforcement cage processing workshop provided by the present application adopts the following technical scheme:

[0024] A steel reinforcement cage processing workshop comprises a processing table and a cage rolling machine; the cage rolling machine is arranged on one side of the processing table;

[0025] The processing table and the cage rolling machine are provided with the transfer device described above;

[0026] The processing table comprises a plurality of groups of support platforms built by steel bars, and the plurality of groups of support platforms are arranged at intervals along the length direction of the track;

[0027] The cage rolling machine comprises two rollers arranged in parallel at intervals and capable of rotating, and the length direction of the two rollers is arranged along the length direction of the track.

[0028] In use, the construction personnel first weld or bundle and fix the main bars and the stirrups in the steel reinforcement cage together on the workbench to form a semi-finished steel reinforcement cage, then move the semi-finished steel reinforcement cage to the cage rolling machine through the transfer device, set the steel reinforcement cage on the cage rolling machine, and then set the reinforcing bars on the steel reinforcement cage. Then, the finished steel reinforcement cage is moved to the predetermined position for stacking through the transfer device.

[0029] By adopting the technical scheme, a channel can be formed in the interval between the plurality of groups of support platforms, which facilitates the movement and construction of the operators; the steel reinforcement cage is arranged on the plurality of groups of support platforms and can roll on the platforms. In the present application, the transfer device is designed in combination of the track and the conveying frame, which realizes the stable transfer of the steel reinforcement cage between different stations, reduces the dependence on expensive hoisting equipment, and greatly reduces the production and transportation costs. The entire processing workshop not only has a simple structure and can be made of local materials, but also is stable and reliable; the layout can be flexibly adjusted according to actual needs to adapt to different production environments, the construction investment is maximally controlled on the premise of ensuring functionality, and the present application is particularly suitable for small construction sites or temporary processing sites with limited resources but high efficiency.

[0030] Optionally, each group of the support platforms comprises at least two long bars along the width direction of the track and a plurality of short bars, the plurality of long bars in each group of the support platforms are arranged at intervals in the up-down direction, and the short bars are vertically arranged between the plurality of long bars for fixing and supporting the long bars; the plurality of groups of the support platforms are fixed together by the fixed steel bars laid on the ground along the length direction of the track.

[0031] By adopting the above technical solution, the support platform is composed of long reinforcing bars along the width of the track and short reinforcing bars arranged vertically, which are fixed together to form a stable frame structure. This also increases the height of the workbench, facilitating operation by construction personnel in the gaps between multiple support platforms. The integrated structure formed by the various support platforms enhances the stability and load-bearing capacity of the entire processing table. This design not only meets the high load-bearing requirements during the processing of the reinforcing cage but also ensures safety and reliability during the processing.

[0032] Optionally, the rolling mill further includes mounting seats located at both ends of the drum and several support seats located between the two mounting seats. The two ends of the drum are rotatably mounted on the mounting seats through bearing seats and bearings, and one end of the drum is provided with a drive motor capable of driving the drum to rotate. The support seats are provided with rollers for rolling contact with the outer circumferential surface of the drum.

[0033] By adopting the above technical solution, the rebar cage is stably placed between two rollers. The automatic rotation of the rollers is achieved through a drive motor, allowing the rebar cage to rotate under the influence of the two rollers. This facilitates the winding of the rebar with steel wire, effectively improving the automation and efficiency of the rebar cage processing. Furthermore, the design of the rollers on the support base rolling against the outer circumference of the rollers not only ensures the stability of the rollers during operation but also reduces frictional resistance and extends the service life of the equipment.

[0034] Optionally, the support base has a V-shaped block, and a roller is installed on both sides of the V-shaped opening of each V-shaped block. The axis of the roller is set along the length direction of the roller. The roller is embedded in the V-shaped opening of the V-shaped block, and the two rollers on the V-shaped block abut against the two sides of the roller near the bottom.

[0035] By adopting the above technical solution, the roller can be stably embedded within the V-block and supported by the rolling motion of the rollers. This design effectively improves the stability of the roller during operation, increases its load-bearing capacity, reduces frictional resistance, and extends the service life of the equipment.

[0036] In summary, this application includes at least one of the following beneficial technical effects:

[0037] 1. The steel cage transfer device and processing workshop in this application can be made from local materials, with a simple structure, low cost and easy implementation, and is particularly suitable for construction site environments; the coordinated design of the track and conveyor frame makes the steel cage transfer more efficient and convenient, significantly reducing the dependence on expensive lifting equipment, and effectively solving the problems of high cost and cumbersome operation in traditional methods.

[0038] 2. The transfer device in the application can be used to transfer the finished steel reinforcement cage along the track to the predetermined position for stacking, and also can transfer the semi-finished steel reinforcement cage made in one station to another station for further processing, realizing seamless connection and effectively improving work efficiency and reducing unnecessary troubles.

[0039] 3. In the application, the rollers are matched with the track to enable the conveying frame to move stably on the track, realizing easy transfer of heavy steel reinforcement cage, reducing artificial burden and improving construction safety.

[0040] 4. The conveying frame in the application is composed of horizontal and vertical steel bars, which ensures sufficient bearing capacity and stability, effectively avoids deformation or damage problems in the transfer process, and thus significantly improves the work efficiency of steel reinforcement cage processing and transfer.

[0041] 5. The steel reinforcement cage transfer device and processing plant in the application are simple in structure and easy to build, which makes them particularly suitable for narrow or temporary processing places, greatly enhancing the applicability and flexibility of the device. BRIEF DESCRIPTION OF DRAWINGS

[0042] Figure 1 is a schematic view of the steel reinforcement cage processing plant in the application.

[0043] Figure 2 is a schematic view of the transfer device in the application.

[0044] Figure 3 is Figure 2 a schematic view of the enlarged structure at A in the application.

[0045] Figure 4 is a schematic view of the installation structure of the roller in the application.

[0046] In the figure:

[0047] 10, processing table; 11, support platform; 111, long bar; 112, short bar; 12, fixed steel bar;

[0048] 20, transfer device; 21, track; 211, support steel bar; 212, connecting steel bar; 22, conveying frame; 221, horizontal steel bar; 222, vertical steel bar; 223, upper frame; 224, lower frame; 225, vertical steel bar; 226, inclined steel bar; 227, support frame; 23, roller; 231, groove;

[0049] 30, rolling cage machine; 31, roller; 32, mounting seat; 33, support seat; 34, bearing seat; 35, driving motor; 36, roller shaft; 37, V-shaped block. DETAILED DESCRIPTION

[0050] The technical solutions in the embodiments of the present application will be described in detail below with reference to the drawings. Figure 1 - The drawings Figure 4 The technical solutions in the embodiments of the present application will be described in detail below with reference to the drawings.

[0051] Referring to Figure 1 The steel bar cage processing workshop provided by the embodiments of the present application includes a processing table 10, a cage rolling machine 30 and a transfer device 20. The cage rolling machine 30 is arranged on one side of the processing table 10. The transfer device 20 is arranged between the processing table 10 and the cage rolling machine 30. The processing table 10 includes a plurality of groups of support platforms 11 built by steel bars. The plurality of groups of support platforms 11 are arranged in parallel and at intervals. Each group of support platforms 11 includes at least two long bars 111 and a plurality of short bars 112. The plurality of long bars 111 in each group of support platforms 11 are arranged at intervals in the up-down direction, and the short bars 112 are arranged vertically between the plurality of long bars 111 to fix and support the long bars 111. The plurality of groups of support platforms 11 are fixed together by the fixed steel bars 12 laid on the ground, thereby forming a stable frame structure. The entire worktable has a certain height, which not only avoids the long-time bending of the construction personnel during the construction operation, but also facilitates the unloading and transfer of the steel bar cage. The construction personnel can walk or operate in the gaps between the plurality of groups of support platforms 11. The integrated structure formed between the support platforms 11 ensures the stability and load-bearing capacity of the entire processing table 10.

[0052] Referring to Figure 1 , Figure 2 and Figure 3 The transfer device 20 in the present application includes a track 21 formed by the steel bars fixed on the ground and a conveying frame 22 formed by the combination and welding of steel bars. The length direction of the track 21 is consistent with the length direction of the fixed steel bars 12 in the processing table 10, and the length direction of the track 21 is perpendicular to the length direction of the long bars 111 in the support platforms 11. The conveying frame 22 is arranged on the track 21 and can move on the track 21. The track 21 includes two support steel bars 211 arranged in parallel and at intervals and a plurality of connecting steel bars 212 fixed to the two support steel bars 211. All the connecting steel bars 212 are arranged in parallel and at intervals, and the two ends of the connecting steel bars 212 are respectively welded to the bottom side or the position close to the bottom side of the two support steel bars 211. In this way, the overall stability and load-bearing capacity of the track 21 are enhanced, thereby providing sufficient strength and rigidity to support the conveying frame 22 and its load.

[0053] Referring to Figure 2 and Figure 3As shown, the conveying frame 22 comprises an upper layer frame 223, a lower layer frame 224 and a support frame 227, the upper layer frame 223 and the lower layer frame 224 are arranged in an upper-lower spaced manner, and the upper layer frame 223 and the lower layer frame 224 are fixedly connected by a plurality of vertical steel bars 225; the upper layer frame 223 and the lower layer frame 224 each comprise a plurality of transverse steel bars 221 and at least two longitudinal steel bars 222; the two longitudinal steel bars 222 are arranged at two ends of the transverse steel bars 221 respectively; the support frame 227 is fixedly arranged on the upper layer frame 223, and the support frame 227 comprises a plurality of transverse steel bars 221 and at least one longitudinal steel bar 222; the length of the transverse steel bars 221 in the support frame 227 is greater than the length of the transverse steel bars 221 in the upper layer frame 223 and the lower layer frame 224, and one side of the support frame 227 protrudes outward from the upper layer frame 223, the lower layer frame 224 and the track 21. The transverse steel bars 221 in the support frame 227 are arranged in a spaced manner on the upper side of the longitudinal steel bars 222 and the length direction of the transverse steel bars 221 is perpendicular to the length direction of the track 21. In this way, the conveying frame 22 has a certain height, can be matched with other processing stations, and facilitates the feeding and discharging of the steel reinforcement cage. At the same time, the entire conveying frame 22 forms a stable frame structure, which not only is light in weight, but also improves the uniformity of load distribution, effectively enhances the overall stability of the conveying frame 22, can bear a heavy steel reinforcement cage, and avoids overturning during the transfer process, thereby improving the safety and reliability during the transfer process. The added support frame 227 effectively increases the bearing area and enhances the supporting capacity of the steel reinforcement cage. At the same time, since one side of the support frame 227 protrudes outward from the upper layer frame 223, the lower layer frame 224 and the track 21, it provides additional operation space for the steel reinforcement cage during the transfer process, facilitates the loading and unloading work of workers, and improves the work efficiency.

[0054] Further, referring to Figure 2 As shown, the transverse steel bars 221 in the upper layer frame 223 and the transverse steel bars 221 in the lower layer frame 224 are arranged in a one-to-one upper-lower corresponding manner, the middle positions of the transverse steel bars 221 in the upper layer frame 223 and the corresponding transverse steel bars 221 in the lower layer frame 224 are fixedly connected by two inclined steel bars 226, and the inclined directions of the two inclined steel bars 226 are opposite. The design of the inclined steel bars 226 forms a stable triangular structure inside the conveying frame 22, reasonably disperses the load stress, further enhances the overall stability of the conveying frame 22, and effectively prevents deformation caused by external impact or vibration during the transfer process. At the same time, the carrying capacity is improved, and the safety and reliability during the transfer of heavy steel reinforcement cages are ensured.

[0055] Referring to Figure 2 and Figure 3As shown, the bottom of the conveying frame 22 is provided with rollers 23, the outer circumferential surface of the rollers 23 is provided with grooves 231 matched with the track 21, and the conveying frame 22 can move on the track 21 through the rollers 23; the number of the rollers 23 is at least four, and the rollers 23 are symmetrically distributed on both sides of the bottom of the lower frame 224; the grooves 231 on the rollers 23 are arc-shaped grooves 231 matched with the outer circumferential surface of the supporting steel bars 211. In this way, the conveying frame 22 is uniformly stressed when moving on the track 21, and is more stable and effectively prevents overturning. At the same time, the grooves 231 on the rollers 23 are designed as arc-shaped grooves 231 matched with the outer circumferential surface of the supporting steel bars 211, which ensures the close match between the rollers 23 and the track 21, reduces the risk of derailment, and improves the reliability during the transfer process.

[0056] Referring to Figure 1 and Figure 4 As shown, the cage rolling machine 30 comprises two parallel and spaced rollers 31, mounting seats 32 located at both ends of the rollers 31, and a plurality of support seats 33 located between the two mounting seats 32; the length direction of the two rollers 31 is arranged along the length direction of the track 21. The two ends of the roller 31 are rotatably mounted on the mounting seat 32 through a bearing seat 34 and a bearing, and one end of the roller 31 is provided with a driving motor 35 capable of driving the roller 31 to rotate; specifically, the output shaft of the driving motor 35 can be fixedly connected with the end portion of one of the rollers 31, and the two rollers 31 are connected through a belt or a chain, so that the two rollers 31 are synchronously and synchronously rotated. The support seat 33 is provided with a V-shaped block 37, and a roller shaft 36 is arranged on both sides of the V-shaped opening of each V-shaped block 37. The axis of the roller shaft 36 is arranged along the length direction of the roller 31, the roller 31 is embedded in the V-shaped opening of the V-shaped block 37, and the two roller shafts 36 on the V-shaped block 37 abut against the two sides of the roller 31 close to the bottom. The reinforcement cage can be stably placed between the two rollers 31, and the roller 31 can be automatically rotated by the driving motor 35, so that the reinforcement cage can be rotated under the driving of the two rollers 31, thereby facilitating the use of steel wire for reinforcing processing.

[0057] The implementation principle of the embodiment is as follows: in use, the construction personnel first weld or bundle and fix the main reinforcement and the stirrup in the reinforcement cage together on the workbench to form a semi-finished reinforcement cage, then move the semi-finished reinforcement cage to the cage rolling machine 30 through the transfer device 20, and set the reinforcement cage on the cage rolling machine 30. Then, the finished reinforcement cage is made and moved to the predetermined position for stacking through the transfer device 20.

[0058] The spacing gap between the plurality of groups of support platforms 11 can form a passageway in the middle, facilitating the movement of the operators and construction; the reinforcement cage is erected on the plurality of groups of support platforms 11 and can roll on the platforms. The transfer device 20 in the application utilizes the design of the combination of the track 21 and the conveying frame 22, realizes the smooth transfer of the reinforcement cage between different stations, reduces the dependence on expensive hoisting equipment, and greatly reduces the production and transportation costs. Moreover, the entire processing workshop not only has a simple structure and can be locally sourced, but also is stable and reliable; the layout can be flexibly adjusted according to actual needs, adapts to different production environments, maximizes the control of construction investment under the premise of ensuring functionality, and is particularly suitable for small sites or temporary processing sites with limited resources but high efficiency.

[0059] The transfer device 20 in the application can be used to transfer the finished product reinforcement cage along the track 21 to the predetermined position for stacking, and can also directly transfer the semi-finished product reinforcement cage made in one station to another station for further processing through the transfer device 20, realizing seamless connection, effectively improving the work efficiency, and reducing unnecessary troubles.

[0060] In the application, the cooperation of the roller 23 and the track 21 enables the conveying frame 22 to move stably on the track 21, greatly reducing the human consumption in the carrying process; at the same time, the conveying frame 22 is composed of the horizontal steel bars 221 and the vertical steel bars 222, which ensures sufficient carrying capacity and stability, effectively avoids the deformation or damage problem in the transfer process, and thus significantly improves the work efficiency of the reinforcement cage processing and transfer.

[0061] The embodiments of the specific embodiment are the preferred embodiments of the application, and do not limit the protection scope of the application, wherein the same parts are indicated by the same reference numerals. Therefore: any equivalent changes made according to the structure, shape, principle of the application should be covered within the protection scope of the application.

Claims

1. A transfer device for reinforcement cages, characterised in that, The track (21) is formed by reinforcing bars fixed on the ground, and the conveying frame (22) is formed by reinforcing bars combined and welded; The bottom of the conveying frame (22) is provided with rollers (23), the outer circumferential surface of the rollers (23) is provided with grooves (231) matched with the track (21), and the conveying frame (22) can move on the track (21) through the rollers (23); The conveying frame (22) comprises a plurality of transverse reinforcing bars (221) and longitudinal reinforcing bars (222) arranged in a crisscross manner; a plurality of the transverse reinforcing bars (221) are arranged at the upper side of the longitudinal reinforcing bars (222) in a spaced manner, and the length direction of the transverse reinforcing bars (221) is perpendicular to the length direction of the track (21).

2. A steel cage transfer device according to claim 1, characterised in that, The track (21) comprises two parallel and spaced support reinforcing bars (211) and a plurality of connecting reinforcing bars (212) fixedly connected with the two support reinforcing bars (211), all the connecting reinforcing bars (212) are arranged in parallel and in a spaced manner, and the two ends of the connecting reinforcing bars (212) are welded to the bottom side or the position close to the bottom side of the two support reinforcing bars (211) respectively.

3. A transfer device for reinforcement cages according to claim 1 or 2, characterised in that, The conveying frame (22) comprises an upper layer frame (223) and a lower layer frame (224), the upper layer frame (223) and the lower layer frame (224) are arranged in a spaced manner, and the upper layer frame (223) and the lower layer frame (224) are fixedly connected and supported through a plurality of vertical reinforcing bars (225); the upper layer frame (223) and the lower layer frame (224) each comprise a plurality of transverse reinforcing bars (221) and at least two longitudinal reinforcing bars (222); and the two longitudinal reinforcing bars (222) are arranged at the two ends of the transverse reinforcing bars (221) respectively.

4. A steel cage transfer device according to claim 3, wherein, The transverse reinforcing bars (221) in the upper layer frame (223) are arranged in a one-to-one and up-and-down corresponding manner with the transverse reinforcing bars (221) in the lower layer frame (224), the middle positions of the transverse reinforcing bars (221) in the upper layer frame (223) and the corresponding transverse reinforcing bars (221) in the lower layer frame (224) are fixedly connected through two inclined reinforcing bars (226), and the inclined directions of the two inclined reinforcing bars (226) are opposite.

5. The steel cage transfer device of claim 3, wherein, The conveying frame (22) further comprises a support frame (227) arranged on the upper layer frame (223), the support frame (227) comprises a plurality of transverse reinforcing bars (221) and at least one longitudinal reinforcing bar (222); the length of the transverse reinforcing bars (221) in the support frame (227) is greater than the length of the transverse reinforcing bars (221) in the upper layer frame (223) and the lower layer frame (224), and one side of the support frame (227) protrudes outward from the upper layer frame (223), the lower layer frame (224) and the track (21).

6. A steel cage transfer device according to claim 5, wherein, The number of the rollers (23) is at least four, and the rollers (23) are symmetrically distributed on both sides of the bottom of the lower layer frame (224); the grooves (231) on the rollers (23) are arc-shaped grooves matched with the outer circumferential surface of the support reinforcing bars (211).

7. A reinforcement cage fabrication plant comprising the transfer device according to any one of the preceding claims 1 to 6, characterized in that, The reinforcing cage processing workshop further comprises a processing table (10) and a cage rolling machine (30); the cage rolling machine (30) is arranged on one side of the processing table (10). The transfer device (20) is located between the processing table (10) and the rolling cage machine (30); The processing table (10) comprises a plurality of groups of support platforms (11) built by reinforcing bars, and the groups of support platforms (11) are arranged at intervals along the length direction of the track (21); The rolling cage machine (30) comprises two parallel and spaced rotating rollers (31), and the length direction of the two rollers (31) is arranged along the length direction of the track (21).

8. Reinforcement cage fabrication hall according to claim 7, characterized in that Each group of support platforms (11) comprises at least two long reinforcing bars (111) arranged along the width direction of the track (21) and a plurality of short reinforcing bars (112), and the long reinforcing bars (111) in each group of support platforms (11) are arranged at intervals in the up-down direction, and the short reinforcing bars (112) are arranged vertically between the long reinforcing bars (111) to fix and support the long reinforcing bars (111); and the groups of support platforms (11) are fixed together by fixed reinforcing bars (12) laid on the ground and arranged along the length direction of the track (21).

9. The reinforcement cage fabrication plant of claim 7, wherein, The rolling cage machine (30) further comprises mounting seats (32) located at both ends of the roller (31) and a plurality of support seats (33) located between the two mounting seats (32), both ends of the roller (31) are rotatably mounted on the mounting seats (32) through bearing seats (34) and bearings, and one end of the roller (31) is provided with a driving motor (35) capable of driving the roller (31) to rotate; the support seat (33) is provided with a roller shaft (36) for rolling abutting with the outer circumferential surface of the roller (31).

10. Reinforcement cage fabrication hall according to claim 9, characterized in that The support seat (33) has a V-shaped block (37), and one roller shaft (36) is mounted on each side of the V-shaped opening of the V-shaped block (37), the axis of the roller shaft (36) is arranged along the length direction of the roller (31), the roller (31) is embedded in the V-shaped opening of the V-shaped block (37), and the two roller shafts (36) on the V-shaped block (37) are respectively abutted on both sides of the roller (31) close to the bottom.