Forming device for streamlined production of concrete accropode

By setting up a heat exchange channel on the outer surface of the concrete twill block mold, the steam heat is directly transferred to the mold surface, which solves the problems of high energy consumption and low utilization rate in steam curing, and achieves efficient steaming and curing process and concrete.

CN223115499UActive Publication Date: 2025-07-18WUHAN LONGQI INTELLIGENT AUTOMATION EQUIP CO LTD
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Patent Information

Application Number
CN202421699028.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-17
Publication Date
2025-07-18
Estimated Expiration
2034-07-17

AI Technical Summary

Technical Problem

During steam maintenance, the steam generation equipment consumes a high energy consumption and low steam heat utilization rate, resulting in low steam cooking efficiency.

Method used

A heat exchange channel is set up on the outer surface of the concrete twill block mold, and the heat of steam is directly transferred to the surface of the mold through the heat exchange channel, speeding up the transfer of heat to the inside of the concrete and improving the utilization rate of steam heat.

Benefits of technology

It improves the utilization rate of steam heat, shortens the steaming and cooking cycle, reduces the energy consumption of steam generation equipment, and improves the concrete curing quality and cooking efficiency.

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Abstract

The utility model relates to a forming device for streamlined production of concrete accropode blocks, and belongs to the technical field of precast concrete component production, the forming device comprises a movable base, and a sliding way parallel to the first direction is arranged on the movable base; the accropode mold comprises a pair of side molds which are symmetrically arranged, and a pair of mold bases which are arranged on the slide ways and can drive the pair of side molds to realize mold closing or mold opening in the first direction; the heat exchange channel is arranged on the outer surface of the side mold, and the heat exchange channel is used for being connected with a heat source so as to transfer heat to the side mold. Furthermore, the transfer efficiency of transferring the heat into the concrete can be improved, the utilization rate of the steam heat is improved, it is guaranteed that the steam heat effectively permeates into the concrete, the concrete curing process is accelerated, and therefore the steam curing efficiency and the concrete curing quality are improved, and the steam curing period can be shortened by adopting the forming device during steam curing; the energy consumption of the steam generating equipment is reduced, and the effect of saving energy and time is achieved.
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Description

Technical Field

[0001] This application relates to the technical field of precast concrete component production, and particularly relates to a forming device for the flow production of concrete king-sized twisted blocks. Background Art

[0002] The king-sized twisted block is a common type of precast concrete special-shaped block, which is used as the surface layer of a sloping breakwater and a protection project. It has the advantages of low wave run-up, good wave dissipation performance, stable block structure, and not being easily damaged, and is widely used in protection projects. It is placed on the outermost layer of the breakwater to protect the breakwater by weakening the impact force of the waves. The material of the king-sized twisted block is concrete and is completed by one-time casting through a precast template. The design and construction of the precast template for the king-sized twisted block are important links in the precast production of the king-sized twisted block.

[0003] In related technologies, the maintenance of precast concrete components has methods such as natural curing, steam curing, hot-mix concrete hot-mold curing, solar energy curing, and far-infrared curing. Usually, steam curing is adopted for precast concrete components of king-sized twisted blocks. Compared with natural curing, steam curing can shorten the curing time and improve the turnover rate of templates.

[0004] However, steam curing requires a curing chamber that occupies a large space. Since a large amount of steam is needed to fill the curing chamber during curing, the energy consumption of related steam generation equipment is relatively high. At the same time, the steam heat is dispersed in the air of the curing chamber, resulting in low utilization rate of steam heat. It is difficult for the temperature to quickly transfer to the interior of the concrete through the mold, resulting in low steam curing efficiency. Summary of the Invention

[0005] The embodiments of this application provide a forming device for the flow production of concrete king-sized twisted blocks to solve the problems of relatively high energy consumption of steam generation equipment and low utilization rate of steam heat when steam curing is adopted for precast concrete king-sized twisted blocks in related technologies.

[0006] The embodiments of this application provide a forming device for the flow production of concrete king-sized twisted blocks, including:

[0007] A moving base, on which there is a slideway parallel to the first direction;

[0008] A king-sized twisted block mold, which includes a pair of symmetrically arranged side molds, and a pair of mold bases arranged on the slideway and capable of driving the pair of side molds to perform mold closing or mold opening in the first direction;

[0009] A heat exchange channel, which is arranged on the outer surface of the side mold, and the heat exchange channel is used to be connected to a heat source to transfer heat to the side mold.

[0010] In some embodiments, the heat exchange channel includes a plurality of U-shaped channels arranged on the outer surface of the side mold, and both ends of the U-shaped channel are open.

[0011] In some embodiments, the U-shaped channel includes an intermediate channel and two side channels respectively connected to both ends of the intermediate channel, and corners adapted to fit the outer surface of the side mold are provided on the side channels.

[0012] In some embodiments, the heat exchange channel further includes a main channel communicating with the end openings of a plurality of the U-shaped channels, and a plurality of air inlet and outlet openings are provided on the main channel at intervals along the second direction.

[0013] In some embodiments, a locking mechanism for locking the two side molds in the closed mold state is further included. The locking mechanism includes a hook and a clamping position. The hook is rotatably connected to one of the side molds, and the clamping position is arranged on the other side mold.

[0014] In some embodiments, the locking mechanism further includes a housing connected to one of the side molds. A rotating shaft for rotatably connecting the hook and an elastic member for pulling the hook tightly on the clamping position are installed on the housing.

[0015] In some embodiments, an adjusting member for adjusting the tension of the elastic member is connected between the elastic member and the housing. The adjusting member includes a screw rod connected to the hook and having one end penetrating through the housing, and a nut threadedly connected to the screw rod and having one end abutted against the surface of the housing.

[0016] In some embodiments, a precast base is further included. A guide rail parallel to the second direction and used for supporting the moving base is installed on the precast base, and a vibration damping traveling mechanism for cooperating with the guide rail is installed on the moving base.

[0017] In some embodiments, the vibration damping traveling mechanism includes an installation groove provided on the moving base. A movable seat is connected in the installation groove through a vibration damping spring, and a track wheel for cooperating with the guide rail is installed on the movable seat.

[0018] In some embodiments, a fixing plate parallel to the second direction is provided on the bottom surface of the moving base. The precast base is provided with a driving motor and a lifting seat capable of driving the driving motor to move along the third direction. A friction wheel for driving the fixing plate to move along the second direction is installed on the driving motor.

[0019] In some embodiments, a plurality of cavities with upper openings and used for forming twist blocks are formed by the cooperation of the two side molds, and the plurality of cavities are arranged in sequence along the second direction; a support frame connected to the side mold is provided on the mold base, and rollers cooperating with the slideway are installed on the mold base.

[0020] The beneficial effects brought by the technical solution provided by this application include:

[0021] An embodiment of the present application provides a forming device for the flow production of concrete king-sized blocks. The forming device includes a moving base provided with a slideway parallel to the first direction; a king-sized block mold including a pair of symmetrically arranged side molds and a pair of mold bases arranged on the slideway and capable of driving the pair of side molds to perform mold closing or mold opening in the first direction; and a heat exchange channel arranged on the outer surface of the side mold, where the heat exchange channel is used to be connected to a heat source to transfer heat to the side mold.

[0022] Therefore, the forming device of the present application can directly use the heat exchange channel to fill steam to heat the side mold of the king-sized block mold, accelerate the heat transfer efficiency to the interior of the concrete, thereby improving the utilization rate of steam heat, ensuring that the steam heat effectively penetrates into the interior of the concrete, accelerating the concrete curing process, achieving the improvement of steam curing efficiency and concrete curing quality. When using the forming device of the present application during steam curing, the steam curing cycle can also be shortened, the energy consumption of the steam generating equipment can be reduced, and the effects of saving energy and time can be achieved. BRIEF DESCRIPTION OF THE DRAWINGS

[0023] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the following will briefly introduce the drawings required for the description of the embodiments. Obviously, the following drawings are only some embodiments of the present application. For those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative efforts.

[0024] Figure 1 is a schematic structural diagram of the forming device according to the embodiment of the present application;

[0025] Figure 2 is a schematic cross-sectional view of the heat exchange channel according to the embodiment of the present application;

[0026] Figure 3 is a schematic structural diagram of the connection between the side mold and the mold base according to the embodiment of the present application;

[0027] Figure 4 is a schematic structural diagram of the prefabricated base according to the embodiment of the present application;

[0028] Figure 5 is a schematic structural diagram of the locking mechanism according to the embodiment of the present application;

[0029] Figure 6 is a schematic structural diagram of the vibration damping walking mechanism according to the embodiment of the present application.

[0030] In the drawings, the list of components represented by each reference numeral is as follows:

[0031] 1. Moving base; 11. Slideway; 12. Vibration damping walking mechanism; 121. Installation groove; 122. Vibration damping spring; 123. Movable seat; 124. Track wheel; 13. Fixed plate;

[0032] 2. King-sized block mold; 21. Side mold; 22. Mold base; 23. Cavity; 24. Support frame; 25. Roller

[0033] 3. Heat exchange channel; 31. U-shaped channel; 32. Main channel; 33. Air inlet and outlet

[0034] 4. Locking mechanism; 41. Hook; 42. Positioning; 43. Housing; 44. Rotating shaft; 45. Elastic member; 46. Screw; 47. Nut

[0035] 5. Prefabricated base; 6. Guide rail; 7. Driving motor; 8. Lifting seat; 9. Friction wheel Detailed implementation manners

[0036] To make the objectives, technical solutions and advantages of the embodiments of the present application clearer, the technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present application. Apparently, the described embodiments are some but not all of the embodiments of the present application. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present application without creative efforts shall fall within the protection scope of the present application.

[0037] The embodiments of the present application provide a forming device for the flow production of concrete king-sized blocks to solve the problems of high energy consumption of steam generation equipment and low utilization rate of steam heat in the related art when steam curing is used for concrete king-sized blocks.

[0038] See Figures 1 to 6 As shown, the embodiments of the present application provide a forming device for the flow production of concrete king-sized blocks, including:

[0039] A moving base 1, on which a slideway 11 parallel to the first direction is provided;

[0040] A king-sized block mold 2, which includes a pair of symmetrically arranged side molds 21 and a pair of mold bases 22 arranged on the slideway 11 and capable of driving the pair of side molds 21 to perform mold closing or mold opening in the first direction;

[0041] A heat exchange channel 3, which is arranged on the outer surface of the side mold 21, and the heat exchange channel 3 is used to connect to a heat source to transfer heat to the side mold 21.

[0042] In the forming device for the flow production of concrete king-sized blocks according to the embodiments of the present application, a heat exchange channel 3 is arranged on the king-sized block mold 2, and the heat exchange channel 3 extends to the outer surface of the side mold 21. By injecting steam into the heat exchange channel 3 through a steam generation device, the heat of the steam can directly heat the side mold 21, thereby accelerating the heat transfer efficiency to the interior of the concrete.

[0043] Thereby improving the utilization rate of steam heat, ensuring the effective penetration of steam heat into the interior of the concrete, accelerating the concrete curing process, and achieving the improvement of steam curing efficiency and concrete curing quality. When using the forming device of the present application during steam curing, the steam curing cycle can also be shortened, the energy consumption of steam generating equipment can be reduced, and the effects of saving energy and time can be achieved.

[0044] Specifically, independent heat exchange channels 3 are provided on both side molds 21 of the present application, which does not affect the opening and closing of the two side molds 21 on the moving base 1. When the two mold bases 22 drive the two side molds 21 to close and maintain the closed state, it is convenient to drive the side molds 21 in the closed state to rotate to the concrete pouring station or the steam curing station through the moving base 1.

[0045] There is no need to change the existing steam curing system, and it can be used in conjunction with the curing chamber of the existing steam curing system. First, steam is filled into the heat exchange channels 3 on the side molds 21 at the steam curing station to ensure the effective penetration of steam heat into the interior of the concrete. At the same time, the steam overflowing from the heat exchange channels 3 can be confined in the curing chamber to form a curing environment with a certain temperature and humidity, thereby shortening the steam curing cycle and reducing energy consumption.

[0046] It should be noted that the first direction mentioned in the present application is the X-axis direction shown in the figure, the second direction is the Y-axis direction shown in the figure, and the third direction is the Z-axis direction shown in the figure.

[0047] In some alternative embodiments: Refer to Figure 1 and Figure 2 As shown, the embodiment of the present application provides a forming device for the flow production of concrete twisted king blocks. The heat exchange channels 3 of the forming device for the flow production of concrete twisted king blocks include a plurality of U-shaped channels 31 provided on the outer surface of the side mold 21, and both ends of the U-shaped channels 31 are open.

[0048] The heat exchange channels 3 of the embodiment of the present application include a plurality of U-shaped channels 31. The U-shaped channels 31 are fixedly attached to the outer surface of the side mold 21 and both ends of the U-shaped channels 31 are open, which is convenient for the steam nozzles of external steam equipment to face the end openings of the U-shaped channels 31 to blow in steam, so as to directly heat the side mold 21 with steam and accelerate the heat transfer efficiency to the interior of the concrete.

[0049] In some alternative embodiments: Refer to Figure 1 and Figure 2 As shown, the embodiment of the present application provides a forming device for the flow production of concrete twisted king blocks. The U-shaped channels 31 of the forming device for the flow production of concrete twisted king blocks include an intermediate channel and two side channels respectively connected to both ends of the intermediate channel. Corners adapted to the outer surface of the side mold 21 are provided on the side channels.

[0050] The U-shaped channel 31 of the embodiment of the present application includes two symmetrically arranged side channels and an intermediate channel connecting the two side channels. The intermediate channel and the side channels are both attached to the outer surface of the side mold 21, facilitating the steam in the U-shaped channel 31 to travel along the outer surface of the side mold 21, ensuring the heat exchange time and heat transfer efficiency. Further, there are corners on the side channels, enabling the side channels to conform to the bent surface of the outer surface of the side mold 21, which can effectively restrict the steam flow direction and ensure the heat exchange efficiency between the steam and the side mold 21.

[0051] In some alternative embodiments: Refer to Figure 1 and Figure 2 As shown, the embodiment of the present application provides a forming device for the flow production of concrete twisted prism blocks. The heat exchange channel 3 of the forming device for the flow production of concrete twisted prism blocks further includes a main channel 32 connecting the end openings of multiple U-shaped channels 31. A plurality of air inlet and outlet openings 33 are provided on the main channel 32 at intervals in the second direction.

[0052] The main channel 32 of the embodiment of the present application is simultaneously connected to the end openings of multiple U-shaped channels 31, and a plurality of air inlet and outlet openings 33 are provided on the main channel 32 at intervals in the second direction, facilitating the steam spray head group on the external steam device to simultaneously blow steam into multiple air inlet and outlet openings 33.

[0053] It should be noted that in this embodiment, the air inlet and outlet openings 33 can serve as both air inlet openings and air outlet openings. That is, when performing the steam blowing operation, the steam spray head does not block the air inlet and outlet openings 33, and there is a certain gap between the steam spray head and the air inlet and outlet openings 33. When the steam in the main channel 32 and the U-shaped channels 31 is full, it can overflow from the air inlet and outlet openings 33.

[0054] In some other embodiments, the steam spray head can be docked to some of the air inlet and outlet openings 33 for the steam blowing operation. That is, when performing the steam blowing operation, some of the air inlet and outlet openings 33 are used as air inlet openings, and some of the air inlet and outlet openings 33 are used as air outlet openings.

[0055] In some alternative embodiments: Refer to Figure 4 and Figure 5 As shown, the embodiment of the present application provides a forming device for the flow production of concrete twisted prism blocks. The forming device for the flow production of concrete twisted prism blocks further includes a locking mechanism 4 for locking the two side molds 21 in the closed mold state. The locking mechanism 4 includes a hook 41 and a locking position 42. The hook 41 is rotatably connected to one side mold 21, and the locking position 42 is arranged on the other side mold 21.

[0056] The locking mechanism 4 of the embodiment of the present application can lock the two side molds 21 in the closed mold state. Specifically, in this embodiment, the locking mechanism 4 includes a hook 41 and a clamping position 42. The hook 41 is a plate member rotatably connected to the end face of one of the side molds 21, and a clamping groove is formed on the plate member. The clamping position 42 is a clamping rod fixed to the end face of the other side mold 21.

[0057] By rotating the plate member, the clamping groove on the plate member can be clamped on the clamping rod, thereby locking the two side molds 21 in the closed mold state. Further, a short handle for facilitating the rotation of the plate member is fixed to the end of the plate member. It should be noted that in this embodiment, to ensure the locking reliability, two locking mechanisms 4 are installed at both ends of the acropode mold 2.

[0058] In some alternative embodiments: Refer to Figure 4 and Figure 5 As shown, the embodiment of the present application provides a molding device for the flow production of concrete acropodes. The locking mechanism 4 of the molding device for the flow production of concrete acropodes further includes a housing 43 connected to one of the side molds 21. A rotating shaft 44 for rotatably connecting the hook 41 and an elastic member 45 for pulling the hook 41 tightly on the clamping position 42 are installed on the housing 43.

[0059] The housing 43 of the embodiment of the present application is welded to the end face of one of the side molds 21. The rotating shaft 44 is installed on the housing 43, the hook 41 is rotatably connected to the rotating shaft 44, and the elastic member 45 is installed on the housing 43 and one end is fixedly connected to the hook 41. When the two side molds 21 are in the closed mold state, the elastic force of the elastic member 45 can pull the hook 41 tightly on the clamping position 42 to prevent the hook 41 from disengaging from the clamping position 42.

[0060] In some alternative embodiments: Refer to Figure 4 and Figure 5 As shown, the embodiment of the present application provides a molding device for the flow production of concrete acropodes. An adjusting member for adjusting the pulling force of the elastic member 45 is connected between the elastic member 45 and the housing 43 of the molding device for the flow production of concrete acropodes. The adjusting member includes a screw rod 46 connected to the hook 41 and having one end passing through the housing 43, and a nut 47 threadedly connected to the screw rod 46 and having one end abutted against the surface of the housing 43.

[0061] The elastic member 45 of the embodiment of the present application uses a tension spring. One end of the tension spring is hooked on the hook 41, and the other end is hooked on the upper end of the screw rod 46. By rotating the nut 47 located at the lower end of the screw rod 46, the length of the screw rod 46 located inside the housing 43 can be changed, thereby adjusting the stretching deformation amount of the tension spring. When the two side molds 21 are in the closed mold state, by adjusting the stretching deformation amount of the tension spring, it can be ensured that the elastic force of the tension spring can reliably pull the hook 41 tightly on the clamping position 42, effectively preventing the hook 41 from disengaging from the clamping position 42.

[0062] In some alternative embodiments: Refer to Figure 4 and Figure 6 As shown, the embodiment of the present application provides a forming device for the flow production of concrete king-sized blocks. The forming device for the flow production of concrete king-sized blocks further includes a precast base 5. A guide rail 6 parallel to the second direction and used to support the moving base 1 is installed on the precast base 5, and a vibration damping walking mechanism 12 for cooperating with the guide rail 6 is installed on the moving base 1.

[0063] The precast base 5 of the embodiment of the present application can be made by in-situ concrete casting. Two parallel guide rails 6 are installed on the precast base 5. The moving base 1 realizes walking on the guide rail 6 through the vibration damping walking mechanism 12 installed thereon. The vibration damping walking mechanism 12 can improve the stability of the king-sized block mold 2 during walking, so that the king-sized block mold 2 can be moved in the initial setting stage of concrete and enter the steam curing station for steam curing, shortening the steam curing cycle.

[0064] It should be noted that the initial setting stage of concrete refers to that after the concrete is static for about one hour before steam curing to wait for the surface to set, and then it is moved to the steam curing chamber for steam curing.

[0065] In some alternative embodiments: Refer to Figure 4 and Figure 6 As shown, the embodiment of the present application provides a forming device for the flow production of concrete king-sized blocks. The vibration damping walking mechanism 12 of the forming device for the flow production of concrete king-sized blocks includes an installation groove 121 provided on the moving base 1. A movable seat 123 is connected in the installation groove 121 through a vibration damping spring 122, and a track wheel 124 for cooperating with the guide rail 6 is installed on the movable seat 123.

[0066] The movable seat 123 of the embodiment of the present application can slide up and down along the inner wall of the installation groove 121. A vibration damping spring 122 for achieving vibration isolation effect is connected between the top surface of the movable seat 123 and the bottom wall of the installation groove 121, and a track wheel 124 supported on the guide rail 6 is installed at the lower end of the movable seat 123.

[0067] In some alternative embodiments: Refer to Figure 4 As shown, the embodiment of the present application provides a forming device for the flow production of concrete king-sized blocks. A fixing plate 13 parallel to the second direction is provided on the bottom surface of the moving base 1 of the forming device for the flow production of concrete king-sized blocks. The precast base 5 is provided with a driving motor 7 and a lifting seat 8 capable of driving the driving motor 7 to move in the third direction. A friction wheel 9 for driving the fixing plate 13 to move in the second direction is installed on the driving motor 7.

[0068] The lifting seat 8 of the embodiment of the present application is fixedly installed in the groove reserved on the precast base 5. The driving motor 7 is installed on the lifting seat 8. Exemplarily, the lifting seat 8 can adopt a small lifting platform, the driving motor 7 adopts a reduction motor, and the friction wheel 9 adopts a wheel body with a rubber surface layer. The driving motor 7 can be lifted by the lifting seat 8, so that the friction wheel 9 connected to the driving motor 7 presses tightly against the fixing plate 13 on the bottom surface of the moving base 1. Then, the driving motor 7 is started to drive the friction wheel 9 to rotate, so that the friction wheel 9 drives the fixing plate 13 to move through friction, and further drives the moving base 1 to move on the guide rail 6.

[0069] In some alternative embodiments: Refer to Figures 1 to 4 As shown, the embodiment of the present application provides a molding device for the flow production of concrete twisted prism blocks. Cavities 23 that are open at the upper end and used for molding twisted prism blocks are formed by the cooperation of the two side molds 21 on both sides of the molding device for the flow production of concrete twisted prism blocks. The multiple cavities 23 are arranged in sequence along the second direction; a support frame 24 connected to the side mold 21 is provided on the mold base 22, and rollers 25 that cooperate with the slideway 11 are installed on the mold base 22.

[0070] The twisted prism block mold 2 of the embodiment of the present application has multiple cavities 23 for injecting concrete, and multiple twisted prism blocks can be molded at one time. A support frame 24 is welded between the mold base 22 and the side mold 21 to stably support the side mold 21 on the mold base 22. Rollers 25 that cooperate with the slideway 11 on the moving base 1 are installed on the mold base 22, which facilitates the opening or closing of the twisted prism block mold 2 on the moving base 1.

[0071] In the description of the present application, it should be noted that the orientation or positional relationship indicated by terms such as "upper" and "lower" is based on the orientation or positional relationship shown in the drawings. It is only for the convenience of describing the present application and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation. Therefore, it should not be construed as a limitation to the present application. Unless otherwise clearly specified and defined, the terms "installation", "connection", and "connection" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be directly connected, or indirectly connected through an intermediate medium, and it can be the communication inside two elements. For those of ordinary skill in the art, the specific meanings of the above terms in the present application can be understood according to specific circumstances.

[0072] It should be noted that in this application, relational terms such as "first" and "second" are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the term "comprising", "including" or any other variant thereof is intended to cover non-exclusive inclusion, such that a process, method, article or device comprising a series of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article or device. Without further limitation, an element defined by the phrase "comprising an..." does not exclude the presence of additional identical elements in the process, method, article or device comprising the element.

[0073] The above are only specific embodiments of this application, enabling those skilled in the art to understand or implement this application. Various modifications to these embodiments will be obvious to those skilled in the art, and the general principles defined herein can be implemented in other embodiments without departing from the spirit or scope of this application. Therefore, this application will not be limited to these embodiments shown herein, but rather will conform to the broadest scope consistent with the principles and novel features claimed herein.

Claims

1. A forming device for the flow production of concrete king-sized twisted blocks, characterized in that, Comprising: A mobile base (1) provided with a slideway (11) parallel to the first direction; A dolosse mold (2) including a pair of symmetrically arranged side molds (21), and a pair of mold bases (22) arranged on the slideway (11) and capable of driving the pair of side molds (21) to perform mold closing or mold opening in the first direction; A heat exchange channel (3) arranged on the outer surface of the side mold (21), and the heat exchange channel (3) is used to be connected to a heat source to transfer heat to the side mold (21).

2. The forming device for the flow production of concrete dolosse according to claim 1, characterized in that: The heat exchange channel (3) includes a plurality of U-shaped channels (31) arranged on the outer surface of the side mold (21), and both ends of the U-shaped channel (31) are open.

3. The forming device for the flow production of concrete dolosse according to claim 2, characterized in that: The U-shaped channel (31) includes a middle channel and two side channels respectively connected to both ends of the middle channel, and corners adapted to fit the outer surface of the side mold (21) are arranged on the side channels.

4. The forming device for the flow production of concrete dolosse according to claim 2, characterized in that: The heat exchange channel (3) further includes a main channel (32) communicating with the end openings of the plurality of U-shaped channels (31), and a plurality of air inlet and outlet openings (33) are arranged on the main channel (32) at intervals in the second direction.

5. The forming device for the flow production of concrete dolosse according to claim 1, characterized in that: It further includes a locking mechanism (4) for locking the two side molds (21) in the mold closed state, and the locking mechanism (4) includes a hook (41) and a clamping position (42), the hook (41) is rotatably connected to one side of the side mold (21), and the clamping position (42) is arranged on the other side of the side mold (21).

6. The forming device for the flow production of concrete dolosse according to claim 5, characterized in that: The locking mechanism (4) further includes a housing (43) connected to one side of the side mold (21), a rotating shaft (44) for rotatably connecting the hook (41) is installed on the housing (43), and an elastic member (45) for pulling the hook (41) onto the clamping position (42).

7. The forming device for the flow production of concrete dolosse according to claim 6, characterized in that: An adjusting member for adjusting the tension of the elastic member (45) is connected between the elastic member (45) and the housing (43), and the adjusting member includes a screw rod (46) connected to the hook (41) and having one end passing through the housing (43), and a nut (47) threadedly connected to the screw rod (46) and having one end abutted against the surface of the housing (43).

8. The forming device for the flow production of concrete dolosse according to claim 1, characterized in that: It further includes a precast base (5), on which a guide rail (6) parallel to the second direction and used for supporting the moving base (1) is installed, and a vibration damping walking mechanism (12) for cooperating with the guide rail (6) is installed on the moving base (1); The vibration damping walking mechanism (12) includes an installation groove (121) provided on the moving base (1), a movable seat (123) is connected in the installation groove (121) through a vibration damping spring (122), and a track wheel (124) for cooperating with the guide rail (6) is installed on the movable seat (123).

9. The molding device for the flow production of concrete king-sized twister blocks according to claim 8, wherein: A fixing plate (13) parallel to the second direction is provided on the bottom surface of the moving base (1), a driving motor (7) is provided on the precast base (5), and a lifting seat (8) capable of driving the driving motor (7) to move in the third direction, and a friction wheel (9) for driving the fixing plate (13) to move in the second direction is installed on the driving motor (7).

10. The molding device for the flow production of concrete king-sized twister blocks according to claim 1, wherein: A plurality of cavities (23) with upper openings and used for molding king-sized twister blocks are formed by the cooperation of the side molds (21) on both sides, and the plurality of cavities (23) are arranged in sequence along the second direction; a support frame (24) connected to the side mold (21) is provided on the mold base (22), and rollers (25) cooperating with the slideway (11) are installed on the mold base (22).