Fabricated building module manufacturing device

By designing a prefabricated building module manufacturing device and using an eccentric mechanism to drive the knocking mechanism to vibrate the building materials, the problems of low exhaust efficiency and waste of manpower in the prior art are solved, and efficient exhaust and manpower are achieved.

CN222904397UActive Publication Date: 2025-05-27CHINA RAILWAY 19TH BUREAU GRP FIFTH ENG CO LTD +1
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Patent Information

Application Number
CN202421349552.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-06-13
Publication Date
2025-05-27
Estimated Expiration
2034-06-13

AI Technical Summary

Technical Problem

The exhaust method in the prior art is inefficient, wastes manpower, and it is difficult to effectively discharge air bubbles from building materials.

Method used

A prefabricated building module manufacturing device is designed, including a forming mechanism, a knocking mechanism, a resetting mechanism and an eccentric mechanism. By driving the knocking mechanism to rotate relative to the forming mechanism, the knocking mechanism overcomes the movement trend of the resetting mechanism and realizes vibrating exhaust of building materials.

Benefits of technology

It improves exhaust efficiency, saves manpower, can effectively discharge bubbles from building materials, and improves the firmness and durability of building modules.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The utility model relates to the technical field of building equipment, and discloses an assembly type building module manufacturing device which comprises a forming mechanism, a knocking mechanism, a reset mechanism and an eccentric mechanism. A containing cavity for containing building materials is formed in the forming mechanism, the eccentric mechanism can intermittently drive the knocking mechanism, when the eccentric mechanism drives the knocking mechanism, the knocking mechanism overcomes the reset mechanism and rotates relative to the forming mechanism, so that the other end of the knocking mechanism is separated from the forming mechanism, and when the eccentric mechanism rotates till the knocking mechanism is not driven, the other end of the knocking mechanism is separated from the forming mechanism. And the reset mechanism drives the knocking mechanism to rotate relative to the forming mechanism, so that the other end of the knocking mechanism quickly abuts against the surface of the forming mechanism to complete one-time knocking, the process is repeated, the knocking mechanism can vibrate the building material in the containing cavity, and therefore bubble discharging in the building material is promoted. The technical problems that in the prior art, an exhaust method is low in efficiency, and manpower is wasted are solved, and the technical effects of being high in exhaust efficiency and saving manpower are achieved.
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Description

Technical Field

[0001] The utility model relates to the technical field of construction equipment, in particular to a manufacturing device for prefabricated building modules. Background Art

[0002] Prefabricated building is a modern construction technology, which is constructed by prefabricating building components in a factory and then transporting them to the construction site for rapid assembly. This method has the advantages of fast construction speed, easy quality control, and small environmental impact compared with the traditional construction method.

[0003] Prefabricated buildings are widely used in various building types such as residential buildings, office buildings, schools, and medical facilities. Through standardized and industrialized production, the construction cost and time can be effectively reduced, and at the same time, the waste and noise during on-site construction can be reduced, promoting the construction industry to develop in a more green and efficient direction.

[0004] During the process of manufacturing building components, whether it is yellow sand cement or other composite materials, air inside needs to be discharged during manufacturing to ensure that the constructed wall is strong and durable. The traditional method of exhausting air is that workers insert a vibration pump into the uncured building materials and stir to discharge the air through vibration. However, this exhaust method wastes time, resulting in low exhaust efficiency and wasting manpower at the same time. Summary of the Utility Model

[0005] The purpose of the utility model is to provide a manufacturing device for prefabricated building modules, which solves the technical problems of low efficiency and waste of manpower in the existing exhaust method.

[0006] To solve the above technical problems, the utility model provides a manufacturing device for prefabricated building modules, including a forming mechanism, a knocking mechanism, a reset mechanism, and an eccentric mechanism;

[0007] A receiving cavity is arranged inside the forming mechanism, and the receiving cavity is used for receiving building materials. The forming mechanism is connected to the eccentric mechanism and the reset mechanism;

[0008] One end of the knocking mechanism is rotatably connected to the forming mechanism, and the other end abuts against the forming mechanism. The eccentric mechanism is connected to the knocking mechanism, and the eccentric mechanism drives the knocking mechanism to rotate relative to the forming mechanism;

[0009] The reset mechanism is connected to the knocking mechanism, and the reset mechanism has a tendency of moving to press the knocking mechanism against the forming mechanism.

[0010] In an optional embodiment, the eccentric mechanism includes a driving member and an eccentric wheel;

[0011] The driving member is fixed on the forming mechanism, the driving member is connected to the eccentric wheel, and the driving member intermittently drives the knocking mechanism to rotate relative to the forming mechanism through the eccentric wheel.

[0012] In an alternative embodiment, the knocking mechanism includes a knocking hammer, a rotating plate, and a driving rod;

[0013] One end of the rotating plate is rotatably connected to the forming mechanism, the other end is connected to the knocking hammer, the knocking hammer abuts against the surface of the forming mechanism, the driving rod is vertically connected to the surface of the rotating plate, and the driving rod is connected to the eccentric mechanism.

[0014] In an alternative embodiment, a rubber block is provided on the knocking hammer, and the knocking hammer is connected to the surface of the forming mechanism through the rubber block.

[0015] In an alternative embodiment, the reset mechanism includes an elastic member, a housing, and a connecting member;

[0016] The elastic member is disposed in the housing, the housing is connected to the forming mechanism, one end of the connecting member extends into the housing and is connected to the elastic member, the other end of the connecting member is connected to the knocking mechanism, and the elastic member has a tendency to make the knocking mechanism close to the forming mechanism through the connecting member.

[0017] In an alternative embodiment, the connecting member includes a pull rod, a first baffle, and a second baffle;

[0018] Both ends of the pull rod are respectively connected to the first baffle and the second baffle, the first baffle is disposed in the housing, and the first baffle abuts against one end of the elastic member away from the knocking mechanism;

[0019] A connection hole is provided on the knocking mechanism, and the pull rod passes through the connection hole so that the second baffle abuts against one end of the knocking mechanism away from the elastic member.

[0020] In an alternative embodiment, the forming mechanism includes a support leg and a forming bin;

[0021] The support leg is disposed on one side of the forming bin and connected, and a receiving cavity is provided in the forming bin.

[0022] In an alternative embodiment, a door plate detachably connected to the forming bin is provided on one side of the forming bin, and the door plate covers the opening of the receiving cavity.

[0023] In an alternative embodiment, a turntable, a hinge rod, a limiting component, and a bolt are provided on the door plate, and a connecting ear is provided on the forming bin;

[0024] The turntable is rotatably connected to the door panel, the bolt is slidably connected to the door panel, the limiting component is used to limit the moving path of the bolt, and both ends of the hinge rod are respectively hinged to the turntable and the bolt;

[0025] The connecting ear is arranged through the door panel, and the bolt is inserted into the connecting ear.

[0026] In an alternative embodiment, the limiting component includes a limiting sleeve and a limiting baffle;

[0027] The limiting sleeve is sleeved on the bolt and is slidably connected to the bolt, and the limiting baffle is arranged on one side of the bolt close to the turntable and abuts against the bolt.

[0028] A manufacturing device for prefabricated building modules provided by the present utility model includes a forming mechanism, a knocking mechanism, a reset mechanism and an eccentric mechanism; a receiving cavity is arranged in the forming mechanism, and the receiving cavity is used to receive building materials. The forming mechanism is connected to the eccentric mechanism and the reset mechanism; one end of the knocking mechanism is rotatably connected to the forming mechanism, and the other end abuts against the forming mechanism. The eccentric mechanism is connected to the knocking mechanism, and the eccentric mechanism drives the knocking mechanism to rotate relative to the forming mechanism; the reset mechanism is connected to the knocking mechanism, and the reset mechanism has a movement tendency to press the knocking mechanism against the forming mechanism, so that the eccentric mechanism can intermittently drive the knocking mechanism. When the eccentric mechanism drives the knocking mechanism, the knocking mechanism overcomes the reset mechanism and rotates relative to the forming mechanism through one end of the knocking mechanism, so that the other end of the knocking mechanism is separated from the forming mechanism. When the eccentric mechanism rotates to not drive the knocking mechanism, the reset mechanism drives the knocking mechanism to rotate relative to the forming mechanism, so that the other end of the knocking mechanism quickly abuts against the surface of the forming mechanism to complete a knocking. This process is repeated, so that the knocking mechanism can vibrate the building materials in the receiving cavity, thereby promoting the discharge of air bubbles in the building materials. The technical problems of low efficiency and waste of manpower in the existing exhaust method are solved, and the technical effects of high exhaust efficiency and labor saving are achieved. Description of the Drawings

[0029] Figure 1 It is a schematic structural diagram of the manufacturing device for prefabricated building modules mentioned in the embodiment of the present utility model;

[0030] Figure 2 It is another schematic structural diagram of the manufacturing device for prefabricated building modules mentioned in the embodiment of the present utility model;

[0031] Figure 3 It is a sectional view of the manufacturing device for prefabricated building modules mentioned in the embodiment of the present utility model;

[0032] Figure 4This is a partial sectional view of the fabricated building module manufacturing device mentioned in the embodiments of the present utility model.

[0033] In the figure, 1 - driving member; 2 - eccentric wheel; 3 - knocking hammer; 4 - rotating plate; 5 - driving rod; 6 - rubber block; 7 - elastic member; 8 - housing; 9 - pull rod; 10 - first baffle; 11 - second baffle; 12 - support leg; 13 - forming bin; 14 - door panel; 15 - turntable; 16 - hinged rod; 17 - bolt; 18 - connecting ear; 19 - limit sleeve; 20 - limit baffle. Detailed implementation manners

[0034] The following combines the accompanying drawings and embodiments to further describe in detail the specific implementation manners of the present utility model. The following examples are used to illustrate the present utility model, but are not used to limit the scope of the present utility model.

[0035] In the description of the present utility model, it should be noted that unless otherwise clearly defined and limited, 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 components. For those of ordinary skill in the art, the specific meanings of the above terms in the present utility model can be understood according to specific situations.

[0036] In related technologies, whether the building module is made of yellow sand cement or other composite materials, it is necessary to discharge the air inside the material during manufacturing to ensure that the fabricated module is strong and durable. The traditional method of discharging air is that workers insert a vibration pump into the unhardened building material and stir it to discharge the air through vibration. However, this air discharge method requires workers to keep stirring, and at the same time, the vibration range is limited, wasting operation time, resulting in low air discharge efficiency and also wasting manpower.

[0037] In view of this, as Figures 1-4 shown, some embodiments of the present utility model provide a fabricated building module manufacturing device, including a forming mechanism, a knocking mechanism, a reset mechanism, and an eccentric mechanism; a receiving cavity is provided inside the forming mechanism, and the receiving cavity is used to receive building materials. The forming mechanism is connected to the eccentric mechanism and the reset mechanism; one end of the knocking mechanism is rotatably connected to the forming mechanism, and the other end abuts against the forming mechanism. The eccentric mechanism is connected to the knocking mechanism, and the eccentric mechanism drives the knocking mechanism to rotate relative to the forming mechanism; the reset mechanism is connected to the knocking mechanism, and the reset mechanism has a movement tendency to press the knocking mechanism against the forming mechanism.

[0038] In the above embodiments, the forming mechanism can be made of metal material. The forming mechanism can be arranged on the ground. A receiving cavity for accommodating building materials is arranged inside the forming mechanism, and the building materials can include cement mortar. An opening is arranged on one side of the receiving cavity, and the shape of the receiving cavity is the shape required for the building module. The building materials can be added into the receiving cavity through the opening. A knocking mechanism, a reset mechanism and an eccentric mechanism are respectively arranged on the forming mechanism. The reset mechanism is fixedly connected to the forming mechanism. Among the two ends of the knocking mechanism that are far away from each other, one end is hinged to the forming mechanism. The hinged manner can use a hinge shaft and a hinge hole, and the other end abuts against the surface of the forming mechanism. The reset mechanism is fixed on the forming mechanism and is connected to the knocking mechanism. The reset mechanism can pull the knocking mechanism to press the knocking mechanism against the surface of the forming mechanism. The eccentric mechanism can intermittently drive the knocking mechanism through its eccentric characteristics. When the eccentric mechanism drives the knocking mechanism, one end of the knocking mechanism can overcome the reset mechanism and rotate relative to the forming mechanism, so that the other end of the knocking mechanism is separated from the surface of the forming mechanism. Then when the eccentric mechanism does not drive the knocking mechanism, under the action of the reset mechanism, one end of the knocking mechanism rotates relative to the forming mechanism, and the other end quickly knocks on the surface of the forming mechanism to complete one knocking. By continuously and intermittently driving the knocking mechanism by the eccentric mechanism, the intermittent knocking on the surface of the forming mechanism is completed, so that the building materials in the receiving cavity are vibrated, and the air bubbles inside the building materials can be discharged in time, saving manpower and improving the exhaust efficiency at the same time.

[0039] An assembly-type building module manufacturing device provided by some embodiments of the present invention includes a forming mechanism, a knocking mechanism, a reset mechanism and an eccentric mechanism, so that the eccentric mechanism can intermittently drive the knocking mechanism. When the eccentric mechanism drives the knocking mechanism, the knocking mechanism overcomes the reset mechanism and rotates relative to the forming mechanism through one end of the knocking mechanism, so that the other end of the knocking mechanism is separated from the forming mechanism. When the eccentric mechanism rotates to not drive the knocking mechanism, the reset mechanism drives the knocking mechanism to rotate relative to the forming mechanism, so that the other end of the knocking mechanism quickly abuts against the surface of the forming mechanism to complete one knocking. Repeating this way, the knocking mechanism can vibrate the building materials in the receiving cavity, thereby promoting the discharge of air bubbles in the building materials. It solves the technical problems of low efficiency and waste of manpower in the existing exhaust methods, and achieves the technical effects of high exhaust efficiency and manpower saving.

[0040] In an alternative embodiment, the eccentric mechanism includes a driving member 1 and an eccentric wheel 2. The driving member 1 is fixed on the forming mechanism. The driving member 1 is connected to the eccentric wheel 2. The driving member 1 intermittently drives the knocking mechanism to rotate relative to the forming mechanism through the eccentric wheel 2.

[0041] In the above embodiments, the driving member 1 may include a motor. The driving member 1 is fixed on the forming mechanism, and the output end of the driving member 1 is connected to the eccentric wheel 2, so that the axis of the eccentric wheel 2 is arranged at an interval from the axis of the driving member 1. Thus, when the driving member 1 drives the eccentric wheel 2 to rotate, the eccentric wheel 2 can intermittently contact the knocking mechanism. When the eccentric wheel 2 contacts the knocking mechanism, the eccentric wheel 2 can change from sticking to the knocking mechanism to pressing the knocking mechanism, causing the knocking mechanism to overcome the reset mechanism and start to rotate relative to the forming mechanism. Then, after the eccentric wheel 2 pushes the knocking mechanism to reach the maximum rotation distance, the eccentric wheel 2 is driven by the driving member 1 to rotate rapidly, so that after the knocking mechanism rotates a certain angle, it is suddenly not supported by the eccentric wheel 2. At this time, the reset mechanism drives the knocking mechanism to quickly reset, causing the knocking mechanism to quickly knock on the surface of the forming mechanism to complete one knocking, and then the next knocking is carried out under the drive of the driving member 1 to drive the eccentric wheel 2 to rotate. Among them, when the knocking mechanism completes knocking on the forming mechanism, the eccentric wheel 2 has not completed the next contact with the knocking mechanism, avoiding the knocking action of the knocking mechanism being too slow, resulting in the knocking mechanism being continuously abutted by the rapidly rotating eccentric wheel 2 and unable to knock on the surface of the forming mechanism.

[0042] Optionally, the shape of the eccentric wheel 2 can be semi-circular. During the rotation of the eccentric wheel 2, the arc surface side of the eccentric wheel 2 continuously abuts against the knocking mechanism, so that the process of the eccentric wheel 2 pushing the knocking mechanism is smoother. And the flat surface on the other side can avoid continuously abutting against the knocking mechanism when the knocking mechanism is reset under the drive of the reset mechanism after the arc surface has completed the pushing, providing space for the reset of the knocking mechanism and making the knocking more powerful.

[0043] In an alternative embodiment, the knocking mechanism includes a knocking hammer 3, a rotating plate 4 and a driving rod 5; one end of the rotating plate 4 is rotatably connected to the forming mechanism, the other end is connected to the knocking hammer 3, the knocking hammer 3 abuts against the surface of the forming mechanism, the driving rod 5 is perpendicularly connected to the surface of the rotating plate 4, and the driving rod 5 is connected to the eccentric mechanism.

[0044] In the above embodiments, the rotating plate 4 is rectangular. One end of the rotating plate 4 is rotatably connected to the forming mechanism. The rotation mode can include pin rotation, hinge rotation, etc. The other end of the rotating plate 4 can be connected with a plurality of knocking hammers 3. The knocking hammers 3 can be columnar, and the cross-section of the knocking hammers 3 can be rectangular or circular. The plurality of knocking hammers 3 are arranged at intervals along the length direction of the rotating plate 4, and each knocking hammer 3 is correspondingly arranged with the accommodating cavity of the forming mechanism, so that each knocking hammer 3 can knock at the position of the accommodating cavity. Thus, when the rotating plate 4 drives the plurality of knocking hammers 3 to approach and knock on the surface of the forming mechanism, the plurality of knocking hammers 3 can respectively vibrate the building materials in the accommodating cavity, enabling the air bubbles in the building materials to be excluded. The efficiency of air bubble exclusion can also be improved by the plurality of knocking hammers 3. Further, the driving rod 5 can be metallic. The driving rod 5 is arranged perpendicular to the rotating plate 4 and is arranged between the rotating plate 4 and the eccentric wheel 2, so that the eccentric wheel 2 can intermittently and fixedly squeeze the driving rod 5 under the drive of the driving member 1, and thus drive the rotating plate 4 to rotate relative to the forming mechanism through the driving rod 5.

[0045] Further, an inclined surface can also be provided on the driving rod 5. The inclined surface is arranged at one end of the driving rod 5 close to the eccentric wheel 2 and abuts against the eccentric wheel 2. The inclined surface can make the thickness of the driving rod 5 increase along the direction away from the eccentric wheel 2, so that when the arc surface on the eccentric wheel 2 abuts against the inclined surface, the abutment is smoother.

[0046] In an alternative embodiment, a rubber block 6 is provided on the knocking hammer 3, and the knocking hammer 3 is connected to the surface of the forming mechanism through the rubber block 6.

[0047] In the above embodiments, a plurality of rubber blocks 6 are provided. A rubber block 6 is provided between each knocking hammer 3 and the forming mechanism. Each rubber block 6 can be connected to the knocking hammer 3 by gluing or by bolts, so that when each knocking hammer 3 knocks on the surface of the forming mechanism, it can knock through the rubber block 6, which not only reduces noise but also reduces damage to the surface of the forming mechanism, thereby improving the service life.

[0048] In an alternative embodiment, the reset mechanism includes an elastic member 7, a housing 8 and a connecting member; an elastic member 7 is provided in the housing 8. The housing 8 is connected to the forming mechanism. One end of the connecting member extends into the housing 8 and is connected to the elastic member 7, and the other end of the connecting member is connected to the knocking mechanism. The elastic member 7 has a tendency of moving the knocking mechanism to closely adhere to the forming mechanism through the connecting member.

[0049] In the above embodiments, the housing 8 can be circular and hollow inside. An elastic member 7 is arranged inside the housing 8 with its axis coinciding with the axis of the housing 8. The elastic member 7 can be set as a spring. One end of the connecting member extends into the housing 8 and is connected to the end of the elastic member 7 away from the rotating plate 4, and the other end of the connecting member can be connected to the end of the rotating plate 4 away from the elastic member 7. When the eccentric wheel 2 drives the rotating plate 4 to rotate, the rotating plate 4 rotates relative to the forming mechanism. At this time, the rotating plate 4 pulls the connecting member, and the connecting member starts to compress the elastic member 7. After the eccentric wheel 2 finishes driving the rotating plate 4, the elastic member 7 starts to recover its deformation, and the elastic member 7 drives the connecting member to start moving. The connecting member starts to drive the rotating plate 4 to move in the direction of approaching the forming mechanism, so that the rotating plate 4 can drive the knocking hammer 3 and the rubber block 6 to knock on the surface of the forming mechanism to complete one knocking.

[0050] In an alternative embodiment, the connecting member includes a pull rod 9, a first baffle 10 and a second baffle 11; both ends of the pull rod 9 are respectively connected to the first baffle 10 and the second baffle 11. The first baffle 10 is arranged inside the housing 8 and abuts against the end of the elastic member 7 away from the knocking mechanism; a connecting hole is arranged on the knocking mechanism, and the pull rod 9 passes through the connecting hole so that the second baffle 11 abuts against the end of the knocking mechanism away from the elastic member 7.

[0051] In the above embodiment, both the first baffle 10 and the second baffle 11 can be set as circular. The first baffle 10 and the second baffle 11 can be respectively welded to both ends of the pull rod 9. The first baffle 10 is arranged inside the housing 8, and the elastic member 7 is sleeved on the pull rod 9. The first baffle 10 is arranged at the end of the elastic member 7 away from the rotating plate 4 and abuts against the elastic member 7, so that the pull rod 9 can compress the elastic member 7 by driving the first baffle 10 to move. Further, the other end of the pull rod 9 passes through the connecting hole on the rotating plate 4 and abuts against the rotating plate 4 through the second baffle 11. Since the rotating plate 4 rotates relative to the forming mechanism, in order to enable the pull rod 9 to move along its axis direction, the connecting hole can be in a long strip shape and extend along the direction perpendicular to the axis of the pull rod 9, so that when the rotating plate 4 rotates, the pull rod 9 can complete the linear movement of the pull rod 9 by abutting against different positions of the connecting hole.

[0052] In an alternative embodiment, the forming mechanism includes a support leg 12 and a forming bin 13; the support leg 12 is arranged on one side of the forming bin 13 and connected, and a receiving cavity is arranged inside the forming bin 13.

[0053] In the above embodiments, both the forming bin 13 and the support legs 12 can be made of a metal material, such as stainless steel. The forming bin 13 and the support legs 12 can be connected by welding. The support legs 12 can be arranged on the ground, and the forming bin 13 is arranged at one end of the support legs 12 away from the ground. There can be two support legs 12, and the two support legs 12 are arranged parallel to the ground and spaced along the width direction of the forming bin 13 so that the forming bin 13 is firmly supported. A reinforcing column can be arranged between the two support legs 12, and the reinforcing column is arranged parallel to the surface of the forming bin 13. One end of the rotating plate 4 can be rotatably connected to the reinforcing column, and the other end abuts against the forming bin 13 through the hammer 3 and the rubber block 6. Further, a support column can also be arranged between the support legs 12 and the forming bin 13, and each support leg 12 is connected to the forming bin 13 through a support column, and the connection method can include welding, so that there is a space between the support legs 12 and the forming bin 13. The driving member 1 and the housing 8 can both be arranged at one end of the forming bin 13 facing the support legs 12, and the driving member 1 and the housing 8 can be fixed on the forming bin 13 by welding or bolt connection.

[0054] In an alternative embodiment, a door panel 14 detachably connected to the forming bin 13 is arranged on one side of the forming bin 13, and the door panel 14 covers the opening of the accommodating cavity.

[0055] In the above embodiments, the forming bin 13 can be rectangular, that is, the accommodating cavity can be rectangular. An opening of the accommodating cavity is arranged on one side of the forming bin 13, and the opening can be arranged at one end away from the rotating plate 4. The door panel 14 is also detachably covered on the door panel 14. After adding building materials into the accommodating cavity, cover the door panel 14 and start the driving member 1 to vibrate the building materials. When the building materials are formed, by removing the door panel 14, the internal building materials can be taken out to complete the manufacture of a building module.

[0056] In an alternative embodiment, a turntable 15, a hinge rod 16, a limiting component and a bolt 17 are arranged on the door panel 14, and a connecting ear 18 is arranged on the forming bin 13; the turntable 15 is rotatably connected to the door panel 14, the bolt 17 is slidably connected to the door panel 14, and the limiting component is used to limit the moving path of the bolt 17; both ends of the hinge rod 16 are respectively hinged to the turntable 15 and the bolt 17; the connecting ear 18 passes through the door panel 14, and the bolt 17 is inserted into the connecting ear 18.

[0057] In the above embodiment, a plurality of connecting lugs 18 may be provided at the opening of the accommodating cavity on the forming bin 13. The connecting lugs 18 are annular, and through holes are provided on the connecting lugs 18. Correspondingly, a gap through which the connecting lugs 18 pass is provided on the door panel 14. When the forming bin 13 is connected to the door panel 14, after the connecting lugs 18 pass through the gap, the connecting lugs 18 can be connected by inserting a bolt 17 into the through holes of the connecting lugs 18. To facilitate the installation and disassembly of the door panel 14, a turntable 15 may be provided at the center of the door panel 14. The turntable 15 can be rotatably connected to the door panel 14. The turntable 15, the hinge rod 16, the limiting component and the bolt 17 may be arranged on the side of the door panel 14 away from the forming bin 13 for the convenience of the user's operation. Among them, the limiting component is arranged between the turntable 15 and the connecting lug 18. A channel is provided in the limiting component, and the bolt 17 can be slidably connected to the limiting component and the door panel 14 through the channel, so that the bolt 17 can move in two directions, close to and through the through hole on the connecting lug 18, and away from the connecting lug 18. Further, both ends of the hinge rod 16 are hinged to the turntable 15 and the bolt 17 respectively. When the turntable 15 rotates, the turntable 15 drives the hinge rod 16 to move, and the other end of the hinge rod 16 drives the bolt 17 to move, so that the bolt 17 can move in two directions, close to and through the through hole on the connecting lug 18, and away from the connecting lug 18 under the drive of the turntable 15 and the limitation of the limiting component, so as to complete the fixation of the forming bin 13 and the door panel 14, and the unlocking of the forming bin 13 and the door panel 14.

[0058] Optionally, a plurality of hinge rods 16, limiting components and bolts 17 may be provided. Correspondingly, a plurality of connecting lugs 18 and gaps may also be provided. Each hinge rod 16, limiting component and bolt 17 may correspond to one connecting lug 18 and one gap to form a set of hinge rod 16, limiting component, bolt 17, connecting lug 18 and one gap. Multiple sets of hinge rod 16, limiting component, bolt 17, connecting lug 18 and one gap may be evenly arranged along the circumference of the turntable 15. Optionally, it may be set to four groups, and the four groups are evenly arranged along the circumference of the turntable 15, so that when the turntable 15 rotates, the turntable 15 can drive four bolts 17 to move in two directions, close to and through the through hole on one connecting lug 18, and away from the connecting lug 18 respectively, so that the forming bin 13 can be connected to the door panel 14 through a plurality of connecting lugs 18. While the connection is more firm, the sealing performance of the accommodating cavity is also better, avoiding the overflow of building materials through the gap between the forming bin 13 and the door panel 14 due to poor sealing.

[0059] In an alternative embodiment, the limiting component includes a limiting sleeve 19 and a limiting baffle 20; the limiting sleeve 19 is sleeved on the bolt 17 and is slidably connected to the bolt 17, and the limiting baffle 20 is arranged on the side of the bolt 17 close to the turntable 15 and abuts against the bolt 17.

[0060] In the above embodiment, a through hole may be provided inside the limit sleeve 19, and the length direction of the through hole is oriented towards the through hole of the connecting ear 18. The shape of the through hole is the same as the cross-sectional shape of the bolt 17, so that when the bolt 17 is slidably connected to the limit sleeve 19, the bolt 17 can be closely attached to the inner wall of the through hole, avoiding inaccurate movement directions of the bolt 17. A limit baffle 20 is provided between the limit sleeve 19 and the turntable 15. The limit baffle 20 protrudes along the surface of the door panel 14. The limit baffle 20 may be strip-shaped, and the length direction of the limit baffle 20 is arranged perpendicular to the movement direction of the bolt 17, so that the limit baffle 20 can abut against one end of the bolt 17 close to the turntable 15, avoiding the bolt 17 from coming out of the limit sleeve 19 during the process of the bolt 17 approaching the turntable 15.

[0061] The above are only the preferred embodiments of the present invention, and are not intended to limit the present invention. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included in the protection scope of the present invention.

Claims

1. A prefabricated building module manufacturing device, characterized in that: It includes a forming mechanism, a knocking mechanism, a resetting mechanism and an eccentric mechanism; The forming mechanism is provided with a containing cavity for containing building materials, and the forming mechanism is connected with the eccentric mechanism and the resetting mechanism; One end of the knocking mechanism is rotatably connected to the forming mechanism, and the other end is in contact with the forming mechanism. The eccentric mechanism is connected to the knocking mechanism, and the eccentric mechanism drives the knocking mechanism to rotate relative to the forming mechanism. The reset mechanism is connected to the knocking mechanism, and the reset mechanism has a movement tendency to make the knocking mechanism press the forming mechanism.

2. The assembly type building module manufacturing device according to claim 1, characterized in that: The eccentric mechanism comprises a driving member (1) and an eccentric wheel (2); The driving member (1) is fixed on the forming mechanism, the driving member (1) is connected to the eccentric wheel (2), and the driving member (1) intermittently drives the knocking mechanism to rotate relative to the forming mechanism through the eccentric wheel (2).

3. The assembly type building module manufacturing device according to claim 1, characterized in that: The striking mechanism comprises a striking hammer (3), a rotating plate (4) and a driving rod (5); One end of the rotating plate (4) is rotatably connected to the forming mechanism, and the other end is connected to the knocking hammer (3). The knocking hammer (3) abuts against the surface of the forming mechanism. The driving rod (5) is vertically connected to the surface of the rotating plate (4), and the driving rod (5) is connected to the eccentric mechanism.

4. The assembly type building module manufacturing device according to claim 3, characterized in that: The knocking hammer (3) is provided with a rubber block (6), and the knocking hammer (3) is connected to the surface of the molding mechanism via the rubber block (6).

5. The assembly type building module manufacturing device according to claim 1, characterized in that: The reset mechanism comprises an elastic member (7), a housing (8) and a connecting member; The elastic member (7) is arranged in the shell (8), the shell (8) is connected to the forming mechanism, one end of the connecting member extends into the shell (8) and is connected to the elastic member (7), the other end of the connecting member is connected to the knocking mechanism, and the elastic member (7) has a movement tendency to make the knocking mechanism close to the forming mechanism through the connecting member.

6. The assembly type building module manufacturing device according to claim 5, characterized in that: The connecting member comprises a pull rod (9), a first baffle (10) and a second baffle (11); The two ends of the pull rod (9) are respectively connected to the first baffle plate (10) and the second baffle plate (11); the first baffle plate (10) is arranged in the housing (8); and the first baffle plate (10) abuts against an end of the elastic member (7) away from the knocking mechanism; The knocking mechanism is provided with a connection hole, and the pull rod (9) passes through the connection hole so that the second baffle (11) abuts against an end of the knocking mechanism away from the elastic member (7).

7. The assembly type building module manufacturing device according to claim 1, characterized in that: The molding mechanism comprises a supporting leg (12) and a molding bin (13); The supporting leg (12) is arranged on one side of the molding bin (13) and is connected thereto, and the accommodating cavity is arranged inside the molding bin (13).

8. The assembly type building module manufacturing device according to claim 7, characterized in that: A door panel (14) detachably connected to the molding bin (13) is provided on one side of the molding bin (13), and the door panel (14) covers the opening of the accommodating cavity.

9. The assembly type building module manufacturing device according to claim 8, characterized in that: The door panel (14) is provided with a rotating disk (15), a hinge rod (16), a limit assembly and a latch (17), and the molding chamber (13) is provided with a connecting ear (18); The rotating disk (15) is rotatably connected to the door panel (14), the latch (17) is slidably connected to the door panel (14), the limiting assembly is used to limit the moving path of the latch (17), and the two ends of the hinge rod (16) are respectively hinged to the rotating disk (15) and the latch (17); The connecting ear (18) is arranged through the door panel (14), and the latch (17) is inserted into the connecting ear (18).

10. The assembly type building module manufacturing device according to claim 9, characterized in that: The limiting assembly comprises a limiting sleeve (19) and a limiting baffle (20); The limiting sleeve (19) is sleeved on the latch (17) and is slidably connected to the latch (17); the limiting baffle (20) is arranged on a side of the latch (17) close to the rotating disk (15) and abuts against the latch (17).