Vibrating module of floating slab prefabricating mold
By designing a vibration module for the precast floating slab mold, and utilizing support components and adjustable vibrators, the problem of uneven vibration at the cavity edge was solved, achieving uniform mixing of concrete and elimination of air bubbles, thus improving the quality of the floating slab.
Patent Information
- Application Number
- CN202423206622.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-25
- Publication Date
- 2025-11-25
- Estimated Expiration
- 2034-12-25
AI Technical Summary
Traditional techniques make it difficult to effectively vibrate the edges of the cavity in the precast mold of floating slabs, resulting in uneven concrete vibration, inability to expel air bubbles, and affecting the quality of floating slab products.
A vibration module for a floating slab precast mold was designed, including a support assembly and a vibrator. The vibrator is suspended and hidden by a linear driver and a cross brace. Combined with the adjustable length and angle of the vibrator, it can be used to vibrate the edge of the cavity.
It achieves effective vibration at the edge of the cavity, eliminates air bubbles, improves the uniformity of concrete mixing, enhances the product quality of floating slabs, and avoids the obstruction and damage caused by the vibrator when not vibrating.
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Figure CN223589653U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to prefabricated part vibration technology field, concretely relates to a kind of floating slab prefabricated mould's vibration module. BACKGROUND
[0002] The prefabricated mould of floating slab includes bottom die and four side moulds installed on the upper surface of bottom die, and the four side moulds are arranged in rectangular shape to form a cavity in the middle part. A user arranges a steel cage in the cavity and pours concrete. After the concrete hardens, the floating slab is obtained by demolding.
[0003] In the conventional technology, the prefabricated mould is placed and installed on a vibrating platform, and the vibrating platform drives the entire prefabricated mould to vibrate to vibrate the concrete in the cavity. The cavity is usually flat, and this vibration method is prone to form vibration defects (such as bubbles cannot be discharged due to uneven vibration) at the edge of the cavity, resulting in a decrease in the quality of the final floating slab product. SUMMARY
[0004] To overcome the problem of "difficulty in vibrating the edge of the cavity of the prefabricated mould of floating slab" in the above background technology, the utility model provides a vibration module for the prefabricated mould of floating slab.
[0005] The utility model solves the above technical problems by using the following technical scheme:
[0006] A vibration module for the prefabricated mould of floating slab includes a support assembly connected to the side mould and a vibrating rod installed at the end of the support assembly. The side mould is provided with a first through hole and a second through hole. The support assembly includes a linear actuator and a cross brace. The linear actuator is vertically inserted into the first through hole, and the housing of the linear actuator is rotatably connected to the side mould. The output shaft of the linear actuator is perpendicularly fixedly connected to one end of the cross brace. The other end of the cross brace is perpendicularly connected to the vibrating rod. The vibrating rod is vertically arranged. The vibrating rod can be selectively inserted into one side of the side mould close to the cavity or inserted into the second through hole.
[0007] As a further optimization scheme of the utility model, the side mould includes a top plate, and the first through hole and the second through hole are arranged on the top plate and along the length direction of the top plate.
[0008] As a further optimization scheme of the utility model, the side mould is provided with a receiving cavity, and the receiving cavity is in communication with the first through hole and the second through hole, respectively.
[0009] As a further optimization scheme of the utility model, the vibrating rod can penetrate the second through hole and be inserted into the receiving cavity.
[0010] As a further optimization scheme of the utility model, the lower part of the shell is placed in the accommodating cavity, and the upper part is placed in the first through hole; the top end of the shell is rotationally connected with the top plate through a first bearing, and the bottom end is rotationally connected with the bottom surface of the accommodating cavity through a second bearing.
[0011] As a further optimization scheme of the utility model, the side mold further comprises a vertical plate, a bottom plate and a rib plate; the top plate and the bottom plate are arranged in parallel with each other, and the top plate and the bottom plate are vertically and fixedly connected with the upper and lower edges of the vertical plate respectively; the rib plate is vertically arranged, and the front side edge thereof is vertically and fixedly connected with the vertical plate; the top and bottom edges of the rib plate are vertically and fixedly connected with the top plate and the bottom plate respectively.
[0012] As a further optimization scheme of the utility model, the accommodating cavity is arranged between the top plate and the bottom plate.
[0013] As a further optimization scheme of the utility model, the cross support arm comprises a connecting rod and a sleeve ring, the vibrating rod is inserted into the sleeve ring and is adjustably connected with the sleeve ring, one end of the connecting rod is fixedly connected with the sleeve ring, and the other end is fixedly connected with the output shaft.
[0014] As a further optimization scheme of the utility model, a driving assembly connected with the linear driver and used for driving the support assembly to rotate is further comprised, and the driving assembly is installed in the accommodating cavity.
[0015] As a further optimization scheme of the utility model, the connecting rod comprises a first rod body, a second rod body, a plug rod and a plurality of conical springs; the plug rod is fixedly connected at the end of the second rod body, an insertion cavity with an open end is arranged in the first rod body, and the plug rod is arranged in the insertion cavity; the conical springs are arranged in the insertion cavity and are sleeved on the outer wall of the plug rod; the conical springs are provided with a first end portion and a second end portion, the diameter of the first end portion is larger than that of the second end portion; the first end portion is attached to and fixedly connected with the inner wall of the insertion cavity, and the second end portion is attached to and fixedly connected with the outer wall of the plug rod.
[0016] In summary, the utility model has at least one of the following advantages:
[0017] (1) The utility model has simple structure and reliable function, the support assembly is installed on the side mold, the cross support arm suspends the vibrating rod at the edge position of the mold cavity, the vibrating rod can be started to vibrate the concrete at the edge position of the mold cavity, the problem that the traditional technology is difficult to vibrate the edge position of the mold cavity of the floating plate prefabricated mold is solved, the uniform mixing of the concrete is realized, the air bubbles are eliminated, and the product quality of the floating plate is improved.
[0018] (2) the horizontal support arm is rotated, the vibrating rod is placed above the second through hole, then the vibrating rod is inserted into the second through hole to be hidden, so that the vibrating rod is prevented from being hung above the mold cavity to hinder construction work and be easily damaged by external impact.
[0019] (3) the movable gap is arranged between the inserting rod and the inserting cavity, the movable gap is used for accommodating the vibration of the inserting rod and the conical spring, and the conical spring is used for buffering between the first rod body and the second rod body, so that the vibrating rod is prevented from damaging the linear driver, the transmission gear, the driving gear and the driving motor, and the service life of the utility model is prolonged. BRIEF DESCRIPTION OF DRAWINGS
[0020] The application will be further described below in combination with the drawings:
[0021] Figure 1 It is a front view schematic diagram of the overall structure of the utility model;
[0022] Figure 2 It is a side mold structure schematic diagram;
[0023] Figure 3 It is a front view structure schematic diagram of the support assembly;
[0024] Figure 4 It is a vibrating rod located above the second through hole state schematic diagram;
[0025] Figure 5 It is a horizontal support arm top view structure schematic diagram;
[0026] Figure 6 It is a mounting ring and sleeve ring connection structure vertical section front view schematic diagram;
[0027] Figure 7 It is a mounting ring, gasket and sleeve ring connection structure vertical section front view schematic diagram;
[0028] Figure 8 It is a driving assembly installation position and structure schematic diagram;
[0029] Figure 9 It is a vibrating rod vibration rotation range top view schematic diagram;
[0030] Figure 10 It is a vibrating rod hidden rotation range top view schematic diagram;
[0031] Figure 11 It is a connecting rod structure top view schematic diagram;
[0032] Figure 12 It is a conical spring and inserting rod connection structure schematic diagram;
[0033] Figure 13Fig. 2 is a side view of the first and second body parts being buckled on both sides of the first end part.
[0034] Explanation of reference signs:
[0035] In the drawings,
[0036] 1. Vibrating rod; 11. Mounting ring; 111. Countersunk hole; 12. Collar;
[0037] 2. Support assembly; 21. Linear actuator; 211. Housing; 212. Output shaft; 22. Cross brace; 221. Linkage; 22101. First threaded hole; 2211. First rod; 22110. Insertion cavity; 22111. First body part; 22112. Second body part; 2212. Second rod; 2213. Insertion rod; 2214. Conical spring; 22141. First end part; 22142. Second end part; 222. Collar; 23. First bearing; 24. Second bearing;
[0038] 3. Side mold; 30. Containment cavity; 301. First through hole; 302. Second through hole; 31. Vertical plate; 32. Top plate; 33. Bottom plate; 34. Rib plate;
[0039] 4. Bottom mold;
[0040] 5. Drive assembly; 51. Drive motor; 52. Drive gear; 53. Transmission gear. DETAILED DESCRIPTION
[0041] According to the above structural features of the present application, the embodiments of the present application are further described:
[0042] Referring to Figure 1 , the prefabricated mold includes a bottom mold 4 and four side molds 3 installed on the upper surface of the bottom mold 4, and the four side molds 3 are arranged in a rectangular shape to form a cavity in the middle. The user arranges a steel cage in the cavity and pours concrete. After the concrete hardens, the mold is removed to obtain a floating slab.
[0043] Referring to Figures 1-2 , the embodiment provides a vibrating module of a floating slab prefabricated mold, which includes a support assembly 2 connected with a side mold 3 and a vibrating rod 1 installed at the end of the support assembly 2. The side mold 3 provides structural support for the support assembly 2, and the support assembly 2 is used to suspend the vibrating rod 1 at the edge of the cavity, thereby achieving vibration.
[0044] Referring to Figures 1-2 , the side mold 3 is provided with a first through hole 301 and a second through hole 302. The first through hole 301 is used to install the support assembly 2; the second through hole 302 is used to hide the vibrating rod 1, avoiding the problem that the vibrating rod 1 suspended above the cavity will hinder construction work and be easily damaged by external impact when not vibrating.
[0045] With reference to Figure 1 With Figure 3 , the support assembly 2 comprises a linear driver 21 and a cross arm 22; the linear driver 21 is vertically inserted into the first through hole 301. The linear driver 21 comprises a housing 211 and an output shaft 212 inserted into the housing 211, which is a conventional prior art solution in the industry, and the specific structure will not be described here. The housing 211 of the linear driver 21 is rotationally connected to the side mold 3, and the top end of the output shaft 212 of the linear driver 21 is vertically fixedly connected (for example, by bolted connection) to one end of the cross arm 22; the cross arm 22 is horizontally placed. The other end of the cross arm 22 is vertically connected to the vibrating rod 1; the vibrating rod 1 is vertically placed. The linear driver 21 can drive the cross arm 22 and the vibrating rod 1 to move longitudinally synchronously.
[0046] The vibrating rod 1 can be selectively inserted into the side of the side mold 3 close to the cavity or inserted into the second through hole 302 when the vibrating operation is needed. When the vibrating rod 1 is vertically placed on the side of the side mold 3 close to the cavity (i.e., the inclined edge position) when the vibrating rod 1 is vertically placed on the side of the side mold 3 close to the cavity (i.e., the inclined edge position); after the vibrating is completed, the vibrating rod 1 is inserted into the second through hole 302 to be hidden, so as to avoid interfering with the construction work and being impacted.
[0047] With reference to Figures 2-4 , the side mold 3 comprises a top plate 32, and the first through hole 301 and the second through hole 302 are arranged on the top plate 32 and along the length direction of the top plate 32. Rotating the support assembly 2 can move the vibrating rod 1 above the cavity or above the second through hole 302.
[0048] With reference to Figures 2-4 , the side mold 3 is provided with a containing cavity 30, and the containing cavity 30 is in communication with the first through hole 301 and the second through hole 302, respectively. The containing cavity 30 is used for containing the housing 211 and the middle and lower parts of the vibrating rod 1.
[0049] With reference to Figure 4 , when the vibrating rod 1 is located directly above the second through hole 302 and the output shaft 212 of the linear driver 21 is gradually shortened, the vibrating rod 1 can penetrate the second through hole 302 and be inserted into the containing cavity 30 to be hidden.
[0050] With reference to Figures 2-4The lower part of the housing 211 is placed inside the receiving cavity 30, and the upper part is placed inside the first through hole 301. The top end of the housing 211 is rotatably connected to the top plate 32 via a first bearing 23, and the bottom end is rotatably connected to the bottom surface of the receiving cavity 30 via a second bearing 24. The first bearing 23 is placed inside the first through hole 301. The inner ring of the first bearing 23 is fixedly connected to the outer wall of the housing 211 by bolts, and the outer ring of the first bearing 23 is fixedly connected to the inner wall of the first through hole 301 or the top plate 32 by bolts. The inner ring of the second bearing 24 is fixedly connected to the outer wall of the housing 211 by bolts, and the outer ring of the second bearing 24 is fixedly connected to the bottom surface of the receiving cavity 30.
[0051] Reference Figures 2-4 The side mold 3 also includes a vertical plate 31, a bottom plate 33, and a rib plate 34; the top plate 32 and the bottom plate 33 are arranged parallel to each other, and the top plate 32 and the bottom plate 33 are respectively vertically fixed to the upper and lower edges of the vertical plate 31; the rib plate 34 is upright and its front edge is vertically fixed to the vertical plate 31, and the top and bottom edges of the rib plate 34 are respectively vertically fixed to the top plate 32 and the bottom plate 33. The vertical plate 31 is the side wall of the cavity. The top surface of the bottom mold 4 is the bottom surface of the cavity.
[0052] Reference Figure 3 The receiving cavity 30 is located between the top plate 32 and the bottom plate 33. The outer ring of the second bearing 24 is fixedly connected to the upper surface of the bottom plate 33 by bolts.
[0053] Reference Figure 5 and Figure 6 The cross brace 22 includes a connecting rod 221 and a collar 222. One end of the connecting rod 221 is fixedly connected to the collar 222, and the other end is fixedly connected to the output shaft 212. The vibrating rod 1 is inserted into the collar 222.
[0054] Reference Figures 5-7 A mounting ring 11 is fixedly connected to the top of the side wall of the vibrator 1 (e.g., by bolts). The mounting ring 11 and the vibrator 1 are arranged in a T-shape or cross shape. When the vibrator 1 is inserted into the collar 222, the mounting ring 11 is detachably mounted on top of the collar 222. The mounting ring 11 and the collar 222 are detachably connected by bolts. The mounting ring 11 has a countersunk hole 111, and the top surface of the collar 222 and / or the connecting rod 221 has a first screw hole 22101 adapted to the countersunk hole 111. The user inserts the bolt through the countersunk hole 111 and tightens it with the first screw hole 22101, thereby realizing the installation of the vibrator 1.
[0055] Reference Figure 6 The mounting ring 11 is directly pressed onto the upper surface of the collar 222 and fixedly connected by bolts, thereby achieving a fixed connection of the vibrator 1; refer to Figure 7 The mounting ring 11 is indirectly pressed onto the upper surface of the collar 222 and can be adjusted, thereby realizing the adjustment of the extension length of the lower end of the vibrator 1.
[0056] Referring to Figure 7 , the vibrating rod 1 is inserted into the collar 222 and adjustably connected with the collar 222, the collar 222 can be selectively sleeved at different height positions of the vibrating rod 1, so as to realize the adjustment of the length of the lower end of the vibrating rod 1 extending out, so as to adapt to being inserted into the cavity at different depths, avoid the vibrating rod 1 abutting against the bottom surface of the cavity, and further avoid the vibrating rod 1 being damaged.
[0057] Referring to Figure 7 , the grommet 12 is arranged between the mounting ring 11 and the collar 222, a plurality of replaceable grommets 12 are arranged, and different grommets 12 have different thicknesses. When the user selects different grommets 12 to be installed between the mounting ring 11 and the collar 222, the length of the lower end of the vibrating rod 1 extending out can be controlled.
[0058] Referring to Figure 3 and Figure 4 , the user can manually or through the motor drive the vibrating rod 1, the cross arm 22 and the linear driver 21 to rotate synchronously, so that the vibrating rod 1 is switched between the position above the cavity and the position above the second through hole 302.
[0059] Referring to Figure 8 , the utility model also includes a driving assembly 5 connected with the linear driver 21 and used for driving the support assembly 2 to rotate, and the driving assembly 5 is installed in the accommodating cavity 30. The driving assembly 5 includes a driving motor 51, a driving gear 52 and a transmission gear 53; the shell 211 of the linear driver 21 is inserted into the middle part of the transmission gear 53 and is fixedly connected through bolts. The driving motor 51 is vertically arranged, the driving motor 51 is fixedly connected with the rib plate 34 through bolts, and the driving gear 52 is fixedly installed on the rotating shaft of the driving motor 51 through bolts; the driving gear 52 is engaged with the conventional gear, the driving motor 51 can drive the shell 211 to rotate, and then drive the linear driver 21, the cross arm 22 and the vibrating rod 1 to rotate synchronously with the first bearing 23 / second bearing 24 as the center.
[0060] When the vibrating operation is performed, if necessary, the linear driver 21 can be used to drive the vibrating rod 1 to reciprocate along the longitudinal direction, so as to expand the vibrating range, optimize the vibrating effect and improve the vibrating efficiency.
[0061] Referring to Figure 9 , when the vibrating operation is performed, if necessary, the driving motor 51 can be used to drive the vibrating rod 1 to reciprocate along the transverse direction within an angle range of R1, so as to expand the vibrating range, optimize the vibrating effect and improve the vibrating efficiency. R1 is 120 degrees, and the left and right position limits are arranged in an axisymmetric manner.
[0062] Referring to Figure 10After the vibrating operation is completed, the driving motor 51 is used to drive the vibrating rod 1 to rotate an angle R2, which is 30-120 degrees, so that the vibrating rod 1 is moved away from the top of the mold cavity and is aligned with the second through hole 302.
[0063] With reference to Figures 11-12 The connecting rod 221 comprises a first rod body 2211, a second rod body 2212, a plug rod 2213 and a plurality of conical springs 2214. The plug rod 2213 is fixedly connected to the end of the second rod body 2212. The first rod body 2211 is provided with a plug-in cavity 22110 with an open end, and the plug rod 2213 is arranged in the plug-in cavity 22110. The conical spring 2214 is arranged in the plug-in cavity 22110 and is sleeved on the outer wall of the plug rod 2213. The conical spring 2214 is provided with a first end portion 22141 and a second end portion 22142, and the diameter of the first end portion 22141 is larger than that of the second end portion 22142. The first end portion 22141 is fixedly connected to the inner wall of the plug-in cavity 22110, and the second end portion 22142 is fixedly connected to the outer wall of the plug rod 2213.
[0064] With reference to Figures 11-13 The plug rod 2213 is a cylindrical rod with a constant diameter, and the plug-in cavity 22110 is a cylindrical cavity with a constant diameter. An active gap is arranged between the plug rod 2213 and the plug-in cavity 22110, so as to allow the vibration of the plug rod 2213 and the installation of the conical spring 2214. The conical spring 2214 is used to play a buffering role between the first rod body 2211 and the second rod body 2212, so as to avoid the problem that the vibration of the vibrating rod 1 damages the linear driver 21, the transmission gear 53, the driving gear 52 and the driving motor 51.
[0065] With reference to Figure 12 and Figure 13The first rod body 2211 comprises a first split body part 22111 and a second split body part 22112 which are buckled to each other and connected by bolts. When assembling, the user first fixes and installs the second end part 22142 on the plug rod 2213, then buckles the first split body part 22111 to the position of the one side wall of the first end part 22141, makes the bolt penetrate the mounting hole on the first split body part 22111 and is screwed with the second screw hole on the first end part 22141, realizes the installation of the first end part 22141 and the first split body part 22111, then buckles the second split body part 22112 to the position of the other side wall of the first end part 22141, makes the bolt penetrate the mounting hole on the second split body part 22112 and is screwed with the second screw hole on the first end part 22141 (the user can make the tapered spring 2214 elongate or compress by grabbing the second rod body 2212 and pulling or pushing the plug rod 2213 along the axial direction of the plug-in cavity 22110, further causes the deformation of the first end part 22141, so that the second screw hole on the first end part 22141 is aligned with the mounting hole on the second split body part 22112), thereby realizing the installation of the first end part 22141 and the second split body part 22112, and finally connecting the first split body part 22111 and the second split body part 22112 by bolts.
[0066] With reference to Figure 12 The second end part 22142 is provided with a plug-in hole, the plug rod 2213 is provided with a third screw hole matched with the plug-in hole, the user makes the bolt penetrate the plug-in hole and is screwed with the third screw hole, thereby realizing the assembly of the second end part 22142 and the plug rod 2213.
[0067] With reference to Figure 4 And Figure 11 The one end of the first rod body 2211 away from the second rod body 2212 is fixedly connected with the output shaft 212 of the linear driver 21 by bolts, and the one end of the second rod body 2212 away from the first rod body 2211 is fixedly connected with the sleeve ring 222 by bolts.
[0068] The linear driver 21 is an electric push rod, a pneumatic push rod, a hydraulic push rod or a combination thereof (for example, an electro-hydraulic push rod).
[0069] The utility model also includes an electrical cabinet, which is fixedly installed on the ground of the work shop by bolts. The linear driver, the driving motor 51 and the vibrating rod 1 are connected with the electrical cabinet by wires and signal lines respectively; the electrical cabinet is connected with an external power supply and an external computer by wires and signal lines respectively, and the computer controls the start and stop of the linear driver, the driving motor 51 and the vibrating rod 1 in the utility model through the electrical cabinet.
[0070] Starting step: ① the output shaft 212 of the linear driver 21 is elongated, the horizontal bracing arm 22 is jacked up, and the vibrating rod 1 is pulled out from the second through hole 302; ② the driving motor 51 drives the linear driver 21 and the horizontal bracing arm 22 to synchronously rotate an angle R2, so that the vibrating rod 1 is located above the edge position of the mold cavity; ③ the output shaft 212 of the linear driver 21 is shortened, so that the vibrating rod 1 is longitudinally inserted into the concrete in the edge position of the mold cavity; and ④ the vibrating rod 1 is started, and the concrete is vibrated.
[0071] Hiding step: ① the output shaft 212 of the linear driver 21 is elongated, the horizontal bracing arm 22 is jacked up, and the vibrating rod 1 is pulled out from the mold cavity; ② the vibrating rod 1 is closed; ③ the driving motor 51 drives the linear driver 21 and the horizontal bracing arm 22 to synchronously rotate an angle R2, so that the vibrating rod 1 is located directly above the second through hole 302; and ④ the output shaft 212 of the linear driver 21 is shortened, so that the vibrating rod 1 is longitudinally inserted into the second through hole 302.
[0072] The utility model discloses a simple structure, reliable function, support assembly 2 installs on side mould 3, and horizontal bracing arm 22 suspends vibrating rod 1 at the edge position of the mold cavity, and starting vibrating rod 1 can be targeted to the concrete at the edge position of the mold cavity, solve the problem that traditional technology is difficult to vibrate the edge position of the mold cavity of the floating slab prefabricated mould, realize the uniform mixing of concrete, eliminate the bubble, improve the product quality of floating slab.
[0073] In the description of the utility model, it needs to be explained that the orientation or position relation indicated by the terms "upper", "lower", "left", "right" and the like is the orientation or position relation shown in the drawings, and is only for the convenience of describing the utility model and simplifying the description, and does not indicate or imply that the indicated device or element must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be understood as a limitation on the utility model.
[0074] In the description of the utility model, it also needs to be explained that, unless otherwise explicitly specified and limited, the terms "arrangement", "installation", "connection" should be understood broadly, for example, can be fixed connection, can also be detachable connection, or integrally connected, can be mechanical connection, can also be electrical connection, can be direct connection, or connected through an intermediate medium, or the communication between two elements. For ordinary skilled persons in the art, the specific meaning of the above terms in the utility model can be understood according to the specific circumstances.
[0075] In summary, for those skilled in the art, according to the guidance of the utility model, the changes, modifications, replacements, deformations made to the utility model without departing from the principles and spirits of the utility model still fall within the protection scope of the utility model.
Claims
1. A vibrating module for a floating slab precast form, characterized by: The support assembly (2) connected with the side mold (3) and the vibrating rod (1) installed at the end of the support assembly (2); The side mold (3) is provided with a first through hole (301) and a second through hole (302); The support assembly (2) comprises a linear driver (21) and a cross arm (22); the linear driver (21) is vertically inserted into the first through hole (301), the housing (211) of the linear driver (21) is rotationally connected with the side mold (3), and the output shaft (212) of the linear driver (21) is vertically and fixedly connected with one end of the cross arm (22); the other end of the cross arm (22) is vertically connected with the vibrating rod (1); and the vibrating rod (1) is vertically arranged. The vibrating rod (1) can be selectively inserted into one side of the side mold (3) close to a cavity or inserted into the second through hole (302).
2. A vibrating module for a floating table precast form according to claim 1, characterized in that: The side mold (3) comprises a top plate (32), and the first through hole (301) and the second through hole (302) are arranged on the top plate (32) and arranged along the length direction of the top plate (32).
3. A vibrating module for a floating table precast form according to claim 2, characterized in that: The side mold (3) is provided with a containing cavity (30) which is in communication with the first through hole (301) and the second through hole (302) respectively.
4. The vibrating module for floating slab precast molds according to claim 3, characterized in that: The vibrating rod (1) can penetrate the second through hole (302) and be inserted into the containing cavity (30).
5. The vibrating module for floating slab formworks according to claim 4, characterized in that: The lower part of the housing (211) is arranged in the containing cavity (30), and the upper part of the housing (211) is arranged in the first through hole (301); the top end of the housing (211) is rotationally connected with the top plate (32) through a first bearing (23), and the bottom end of the housing (211) is rotationally connected with the bottom surface of the containing cavity (30) through a second bearing (24).
6. The vibrating module for a floating table precast form according to claim 5, wherein: The side mold (3) further comprises a vertical plate (31), a bottom plate (33) and a rib plate (34); the top plate (32) and the bottom plate (33) are arranged in parallel with each other, and the top plate (32) and the bottom plate (33) are vertically and fixedly connected with the upper and lower edges of the vertical plate (31) respectively; the rib plate (34) is vertically arranged, and the front side edge of the rib plate (34) is vertically and fixedly connected with the vertical plate (31); and the top and bottom edges of the rib plate (34) are vertically and fixedly connected with the top plate (32) and the bottom plate (33) respectively.
7. A vibrating module for a floating table precast form according to claim 6, characterized in that: The containing cavity (30) is arranged between the top plate (32) and the bottom plate (33).
8. The vibrating module of the floating table precast mold according to claim 7, characterized in that: The cross arm (22) comprises a connecting rod (221) and a sleeve ring (222); the vibrating rod (1) is inserted into the sleeve ring (222) and adjustably connected with the sleeve ring (222); one end of the connecting rod (221) is fixedly connected with the sleeve ring (222), and the other end of the connecting rod (221) is fixedly connected with the output shaft (212).
9. A vibrating module for a floating table precast form according to claim 8, characterized in that: The drive assembly (5) connected with the linear driver (21) and used for driving the support assembly (2) to rotate is further included, and the drive assembly (5) is installed in the containing cavity (30).
10. The vibrating module of the floating table precast mold according to claim 9, characterized in that: The connecting rod (221) comprises a first rod body (2211), a second rod body (2212), a plug rod (2213) and a plurality of conical springs (2214); the plug rod (2213) is fixedly connected to the end of the second rod body (2212), the first rod body (2211) is internally provided with a plug cavity (22110) with an open end, the plug rod (2213) is arranged in the plug cavity (22110), the conical springs (2214) are arranged in the plug cavity (22110) and sleeved on the outer wall of the plug rod (2213), the conical springs (2214) are provided with a first end portion (22141) and a second end portion (22142), the diameter of the first end portion (22141) is greater than that of the second end portion (22142), the first end portion (22141) is attached to and fixedly connected to the inner wall of the plug cavity (22110), and the second end portion (22142) is attached to and fixedly connected to the outer wall of the plug rod (2213).