Multi-wire saw mortar mixing system
By introducing lifting and rotating components into the mortar mixing system of the multi-wire cutting machine, the problem of inconsistent uniformity of the upper and lower mortars is solved, and repeated stirring and mixing of the upper and lower mortars is achieved, and the mixing uniformity is improved.
Patent Information
- Application Number
- CN202510142300.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-10
- Publication Date
- 2025-07-22
- Estimated Expiration
- 2045-02-10
AI Technical Summary
In the existing multi-wire cutting machine mortar mixing system, the upper and lower stirring paddles can only stir the mortar at their own position in a single layer, resulting in inconsistent uniformity of the upper and lower mortars.
The design includes a mixing drum, mounting frame, shaft body, connecting ring and stirring paddle. The drive motor drives the shaft body to rotate, and the connecting ring drives the stirring paddle to stir the bottom of the stirring drum, and the repetitive stirring and mixing of the lower mortar is achieved through the lifting mechanism and the rotating component to ensure uniform mixing of the upper mortar and the lower mortar.
Repeated stirring and mixing of the upper and lower mortars in the mixing drum are achieved, improving the mixing uniformity of the upper mortar and the lower mortar, and ensuring the uniform viscosity and fluidity of the mortar.
Smart Images

Figure CN119588202B_ABST
Abstract
Description
Technical Field
[0001] The invention belongs to the technical field of mortar mixing, and more specifically, relates to a multi-wire cutting machine mortar mixing system. Background Art
[0002] Mortar is a key consumable for cutting hard and brittle materials in the multi-wire cutting process. It is mainly made of abrasives and suspensions mixed in a certain proportion. In order to ensure the uniform viscosity and fluidity of the mortar, the mortar needs to be stirred and maintained.
[0003] There is currently a Chinese patent with reference announcement number CN103240017A, which discloses a multi-wire cutting machine mortar mixing system, which includes a mixer, a barrel and a barrel cover. A lower stirring paddle is installed in the barrel body, the lower stirring paddle is connected to the main shaft through a lower paddle sleeve, the upper stirring paddle is installed on the main shaft, the mixer is connected to the main shaft, the bearing seat and the sliding bearing are sleeved on the upper part of the main shaft, the bearing seat is installed on the barrel cover, the mixer is installed on the mixer seat, the mixer seat is installed on the barrel cover, the cooling coil is installed in the barrel body above the lower stirring paddle, the barrel cover is provided with a cold water outlet, a reflux port, a cold water inlet, and a sand adding port, the cold water inlet and the cold water outlet are respectively connected to two ports of the cooling coil, the barrel body is connected to a cold water inlet, a plurality of wave-breaking plates are installed on the inner wall of the barrel body, the mortar pump is installed in the barrel body between two wave-breaking plates, and a barrel body cold water interlayer is provided in the barrel body.
[0004] When the above-mentioned patent is used for mortar mixing, the upper stirring paddle and the lower stirring paddle can only perform single-layer mixing of the mortar at their own positions, which may easily lead to the situation that the uniformity of the upper and lower layers of the mortar is inconsistent. Summary of the invention
[0005] The purpose of the present invention is to provide a multi-wire cutting machine mortar mixing system to solve the technical problem in the prior art that the upper stirring paddle and the lower stirring paddle can only perform single-layer stirring of the mortar at their own positions, which easily leads to inconsistent uniformity between the upper and lower layers of the mortar.
[0006] To achieve the above object, the technical solution adopted by the present invention is: to provide a multi-wire cutting machine mortar mixing system, including a mixing cylinder and a mounting frame arranged above the mixing cylinder; a shaft body is vertically rotatably connected in the mixing cylinder, and a driving motor for driving the shaft body to rotate is arranged on the mounting frame; threads are arranged on the outer peripheral surface of the shaft body, a connecting ring is threadedly connected to the shaft body, and sealing folding covers are arranged between the bottom surface of the connecting ring and the bottom of the mixing cylinder and between the top surface of the connecting ring and the mounting frame; a plurality of stirring paddles are rotatably connected to the outer peripheral surface of the connecting ring, and the rotation axis of the stirring paddle is perpendicular to the axis of the shaft body; a receiving cavity is opened downward on one side of the stirring paddle, and a rotating assembly for driving the stirring paddle to rotate is arranged on the connecting ring; a holding assembly for relatively fixing the connecting ring to the shaft body is arranged on the connecting ring, and a lifting mechanism for driving the connecting ring to lift is arranged on the mounting frame.
[0007] Combined with the above technical solution, in a possible implementation manner, the rotating assembly includes a gear, a rack and a reset member. The end of the stirring paddle inserted into the connecting ring is cylindrical, the gear is coaxially fixed to the end of the stirring paddle, and the rack is vertically slidably connected to the connecting ring and always meshes with the gear; when the top of the rack is pressed down by the mounting frame, it slides downward, and the reset member is used to drive the rack to reset.
[0008] Combined with the above technical solution, in a possible implementation manner, the reset member includes a force-bearing plate and a strong spring. The force-bearing plate is fixed to the bottom end of the rack, the strong spring is sleeved on the rack, and the strong spring is connected between the bottom surface of the connecting ring and the force-bearing plate; when the stirring paddle is in the initial state, the strong spring is in the natural state.
[0009] Combined with the above technical solution, in a possible implementation manner, an auxiliary ring coaxial with the shaft body is rotatably arranged on the bottom surface of the mounting frame, and the top of the rack is used to contact the bottom surface of the auxiliary ring.
[0010] Combined with the above technical solution, in a possible implementation manner, the holding assembly includes a micro-cylinder, a top block, a lever and a reset spring. The micro-cylinder is installed upside down above the connecting ring, and the top block is fixed to the bottom of the piston rod of the micro-cylinder; the lever is rotatably connected to the connecting ring, the top block is used to press down one end of the lever away from the shaft body, and the reset spring is connected between the top surface of the connecting ring and one end of the lever away from the shaft body; a vertical groove is opened on one side of the shaft body facing the lever, and when the lever is pressed down by the top block, the end of the lever turns into the vertical groove.
[0011] In combination with the above technical solution, in a possible implementation method, a force-bearing groove connected to the vertical groove is opened on the top surface of the connecting ring, and the end of the lever away from the top block is located in the force-bearing groove when it is in an initial state; when the lever is pressed down by the top block, the lever is located in the force-bearing groove and the vertical groove at the same time.
[0012] In combination with the above technical solution, in a possible implementation, the lifting mechanism includes a top ring, a bottom ring, a guide rod and a locking assembly; the top ring is rotatably connected in the mounting frame, the bottom ring is rotatably connected to the bottom of the mixing drum, the guide rod is vertically fixed between the top ring and the bottom ring, the top ring and the bottom ring are both coaxially arranged with the shaft body, and the guide rod passes through the connecting ring; the locking assembly is arranged on the mounting frame and is used to fix the top ring.
[0013] In combination with the above technical solution, in a possible implementation, the locking assembly includes an outer ring, an extrusion block, a locking plate and a driving member; the outer ring is rotatably connected in the mounting frame and coaxially located on the outside of the top ring, at least two locking plates are provided and are relatively slidably connected in the mounting frame, the sliding direction of the locking plate is perpendicular to the axis of the top ring, and the locking plate is located between the outer ring and the top ring; a plurality of extrusion blocks are provided and fixed on the inner circumference of the outer ring, and a receiving groove is opened on the outer side of each locking plate, the extrusion block is hemispherical and is located in the corresponding receiving groove, and at this time, the inner side of the locking plate is close to the top ring; the driving member is provided on the mounting frame and is used to drive the outer ring to rotate; when the outer ring drives all the extrusion blocks to disengage from the receiving groove, the inner side of the locking plate presses the top ring tightly to fix it.
[0014] In combination with the above technical solution, in a possible implementation, a plurality of installation grooves are provided on the inner wall of the outer ring, each of the installation grooves is provided with a positioning spring connected to the locking plate, and when the positioning spring is in a natural state, the extrusion block is located in the corresponding accommodating groove.
[0015] In combination with the above technical solution, in a possible implementation manner, the stirring paddle is provided with a sharp edge on a side facing away from the opening of the accommodating chamber.
[0016] The beneficial effects of the multi-wire cutting machine mortar mixing system provided by the present invention are as follows: Compared with the prior art, in the present invention, the driving motor drives the shaft to rotate. The shaft drives the connecting ring to rotate through its own thread and the holding component. The connecting ring drives a plurality of stirring paddles to stir the bottom of the mixing cylinder, and at the same time, the mortar in the lower layer of the mixing cylinder enters each accommodating cavity. After stirring in the lower layer for a period of time, the driving motor stops working, the holding component releases the fixation between the connecting ring and the shaft, and the lifting mechanism drives the connecting ring to rise to the upper layer of mortar. The holding component fixes the connecting ring and the shaft relative to each other again. At the same time, the rotating component drives each stirring paddle to rotate 180° self-rotation, so that the opening of the accommodating cavity faces downward. At this time, the driving motor drives the shaft to rotate in the same direction again. The opening of the accommodating cavity deviates from the rotation direction of the stirring paddle. Therefore, the mortar in the accommodating cavity will flow out through the opening into the upper layer of mortar and be stirred. Repeating the above steps can realize the repeated stirring and mixing of the lower layer of mortar and the upper layer of mortar in the mixing cylinder, improving the mixing uniformity of the upper layer of mortar and the lower layer of mortar. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] In order to more clearly illustrate the technical solutions in the embodiments of the present invention, the following will briefly introduce the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings in the following description are only some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings.
[0018] Figure 1 It is a schematic structural diagram of the multi-wire cutting machine mortar mixing system provided by the embodiment of the present invention;
[0019] Figure 2 It is a vertical sectional view of the multi-wire cutting machine mortar mixing system provided by the embodiment of the present invention;
[0020] Figure 3 It is a vertical sectional view of the rotating component and the holding component provided by the embodiment of the present invention;
[0021] Figure 4 It is a vertical sectional view of the stirring paddle and the accommodating cavity provided by the embodiment of the present invention;
[0022] Figure 5 It is a horizontal sectional view of the lifting mechanism provided by the embodiment of the present invention;
[0023] Figure 6 It is a partial sectional view of the locking component provided by the embodiment of the present invention.
[0024] Among them, the reference numerals in the drawings are as follows:
[0025] 1. Mixing drum; 11. Shaft body; 111. Vertical groove; 2. Mounting frame; 21. Driving motor; 3. Connecting ring; 31. Sealed folding cover; 32. Stirring paddle; 321. Accommodating cavity; 33. Stress groove; 4. Rotating assembly; 41. Gear; 42. Rack; 43. Reset part; 431. Stress plate; 432. Strong spring; 44. Auxiliary ring; 5. Holding assembly; 51. Micro cylinder; 52. Top block; 53. Lever; 54. Reset spring; 6. Lifting mechanism; 61. Top ring; 62. Bottom ring; 63. Guide rod; 64. Locking assembly; 641. Outer ring; 6411. Mounting groove; 642. Extrusion block; 643. Locking plate; 6431. Accommodating groove; 644. Driving part; 645. Positioning coil spring. Detailed implementation manners
[0026] In order to make the technical problems, technical solutions and beneficial effects to be solved by the present invention clearer and more understandable, the present invention will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the described embodiments are only a part of the embodiments of the present application, rather than all the embodiments. The specific embodiments described herein are only used to explain the present invention, and are not used to limit the present invention. Based on the embodiments in the present application, all other embodiments obtained by those of ordinary skill in the art without making creative efforts fall within the protection scope of the present application.
[0027] It should be further noted that the drawings and embodiments of the present invention mainly describe and explain the concept of the present invention. On the basis of this concept, the specific forms and settings of some connection relationships, positional relationships, power mechanisms, power supply systems, hydraulic systems and control systems may not be completely described. However, on the premise that those skilled in the art understand the concept of the present invention, those skilled in the art can adopt well-known methods to implement the above specific forms and settings.
[0028] When an element is referred to as being "fixed to" or "disposed on" another element, it can be directly on the other element or indirectly on the other element. When an element is referred to as being "connected to" another element, it can be directly connected to the other element or indirectly connected to the other element.
[0029] The orientation words "inside" and "outside" refer to the inside and outside of the contour of each component itself. The terms "length", "width", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inside", "outside", etc. indicate the orientation or positional relationship based on the orientation or positional relationship shown in the drawings. It is only for the convenience of describing the present invention 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, and therefore cannot be understood as a limitation to the present invention.
[0030] For ease of description, spatial relative terms, such as "above", "over", "on the upper surface", "upper", etc., may be used herein to describe the spatial positional relationship of one device or feature to other devices or features as shown in the figures. It should be understood that the spatial relative terms are intended to encompass different orientations in use or operation in addition to the orientation depicted in the figures. For example, if the device in the figures is inverted, a device described as "above" or "over" other devices or structures will then be positioned "below" or "under" the other devices or structures. Thus, the exemplary term "above" can include both orientations of "above" and "below". The device may also be positioned in other different ways, and corresponding interpretations are made for the spatial relative descriptions used herein.
[0031] The multi-wire cutting machine mortar mixing system provided by the present invention will now be described.
[0032] As Figures 1 to 3 shown, an embodiment of the present invention provides a multi-wire cutting machine mortar mixing system, including a mixing barrel 1 and a mounting frame 2 provided above the mixing barrel 1; a shaft body 11 is vertically rotatably connected inside the mixing barrel 1, and a driving motor 21 for driving the shaft body 11 to rotate self is provided on the mounting frame 2; threads are provided on the outer peripheral surface of the shaft body 11, a connecting ring 3 is threadedly connected to the shaft body 11, and sealing folding covers 31 are provided between the bottom surface of the connecting ring 3 and the bottom of the mixing barrel 1 and between the top surface of the connecting ring 3 and the mounting frame 2; a plurality of stirring paddles 32 are rotatably connected to the outer peripheral surface of the connecting ring 3, and the rotation axis of the stirring paddle 32 is perpendicular to the axis of the shaft body 11; a receiving cavity 321 is opened downward on one side of the stirring paddle 32, and a rotating assembly 4 for driving the stirring paddle 32 to rotate is provided on the connecting ring 3; a holding assembly 5 for relatively fixing the connecting ring 3 to the shaft body 11 is provided on the connecting ring 3, and a lifting mechanism 6 for driving the connecting ring 3 to lift is provided on the mounting frame 2.
[0033] Compared with the prior art, the multi-wire cutting machine mortar mixing system provided in this embodiment drives the shaft body 11 to rotate through the driving motor 21, and the shaft body 11 drives the connecting ring 3 to rotate through its own thread and the retaining component 5, and the connecting ring 3 drives multiple stirring paddles 32 to stir the bottom of the mixing drum 1, and at the same time, the mortar in the lower layer of the mixing drum 1 enters each accommodating cavity 321; after the lower layer is stirred for a period of time, the driving motor 21 stops working, the retaining component 5 releases the fixation between the connecting ring 3 and the shaft body 11, and the lifting mechanism 6 is used to lift the mortar. Drive the connecting ring 3 up to the upper layer of mortar, and keep the component 5 to fix the connecting ring 3 and the shaft body 11 relatively again. At the same time, the rotating component 4 drives each stirring paddle 32 to rotate 180° so that the opening of the accommodating chamber 321 faces downward. At this time, the driving motor 21 drives the shaft body 11 to rotate in the same direction again, and the opening of the accommodating chamber 321 deviates from the rotation direction of the stirring paddle 32. Therefore, the mortar in the accommodating chamber 321 will flow out through the opening into the upper layer of mortar and be stirred; repeating the above steps can achieve repeated stirring and mixing of the lower layer mortar and the upper layer mortar in the mixing drum 1, thereby improving the mixing uniformity of the upper layer mortar and the lower layer mortar.
[0034] like Figure 4 As shown, the present invention provides a specific implementation method based on the above implementation method as follows:
[0035] The stirring paddle 32 is provided with a sharp edge on the side away from the opening of the accommodating chamber 321. After the stirring paddle 32 rises to the upper layer of mortar and rotates 180 degrees, the driving motor 21 drives the shaft 11 to rotate in the same direction so that the sharp edge of the stirring paddle 32 can more thoroughly stir the upper layer of mortar and the mortar flowing out of the accommodating chamber 321, further improving the mixing uniformity of the mortar.
[0036] like Figure 2 and Figure 3 As shown, the present invention provides a specific implementation method based on the above implementation method as follows:
[0037] The rotating assembly 4 includes a gear 41, a rack 42 and a reset member 43. The end of the stirring paddle 32 inserted into the connecting ring 3 is cylindrical. The gear 41 is coaxially fixed to the end of the stirring paddle 32. The rack 42 is vertically slidably connected to the connecting ring 3 and is always engaged with the gear 41. The top of the rack 42 slides downward when pressed down by the mounting frame 2, and the reset member 43 is used to drive the rack 42 to reset.
[0038] When the lifting mechanism 6 drives the connecting ring 3 to move upward and approach the mounting bracket 2, the top end of the rack 42 is limited by the mounting bracket 2 and moves downward. At the same time, the gear 41 and the propeller are driven to rotate. When the gear 41 and the mixing paddle 32 rotate 180°, the connecting ring 3 stops rising. At this time, the mixing paddle 32 is at the upper layer of mortar. When the lifting mechanism 6 drives the connecting ring 3 to descend, the reset member 43 gradually drives the rack 42 to reset, so that the gear 41 and the mixing paddle 32 reverse and reset, which overall improves the rotation efficiency of the mixing paddle 32 without the need to additionally provide a power source.
[0039] As Figure 3 shown, a specific embodiment provided by the present invention on the basis of the above embodiment is as follows:
[0040] The reset member 43 includes a force-receiving plate 431 and a strong spring 432. The force-receiving plate 431 is fixed to the bottom end of the rack 42. The strong spring 432 is sleeved on the rack 42. The strong spring 432 is connected between the bottom surface of the connecting ring 3 and the force-receiving plate 431. When the mixing paddle 32 is in the initial state, the strong spring 432 is in the natural state.
[0041] When the rack 42 is not stressed, it remains fixed by relying on the friction between itself and the connecting ring 3 and the elastic force of the strong spring 432.
[0042] When the top end of the rack 42 is limited by the mounting bracket 2, it drives the force-receiving plate 431 to descend. At this time, the strong spring 432 is stretched. When the lifting mechanism 6 drives the connecting ring 3 to descend, the retraction force of the strong spring 432 drives the rack 42 to reset, so as to realize the reverse reset of the gear 41 and the mixing paddle 32.
[0043] As Figure 2 shown, a specific embodiment provided by the present invention on the basis of the above embodiment is as follows:
[0044] An auxiliary ring 44 coaxial with the shaft body 11 is rotatably provided on the bottom surface of the mounting bracket 2. The top of the rack 42 is used to contact the bottom surface of the auxiliary ring 44.
[0045] When the mixing paddle 32 rotates and stirs at the previous mortar position, the top of the rack 42 presses against the auxiliary ring 44 to make it rotate relative to the mounting bracket 2, reducing the wear of the end of the rack 42 and improving the rotation convenience of the connecting ring 3.
[0046] As Figure 3 shown, a specific embodiment provided by the present invention on the basis of the above embodiment is as follows:
[0047] The holding component 5 includes a micro-cylinder 51, a top block 52, a lever 53 and a return spring 54. The micro-cylinder 51 is installed upside down above the connecting ring 3, and the top block 52 is fixed to the bottom of the piston rod of the micro-cylinder 51. The lever 53 is rotatably connected to the connecting ring 3. The top block 52 is used to press down one end of the lever 53 away from the shaft body 11. The return spring 54 is connected between the top surface of the connecting ring 3 and one end of the lever 53 away from the shaft body 11. A vertical groove 111 is formed on one side of the shaft body 11 facing the lever 53. When the lever 53 is pressed down by the top block 52, the end of the lever 53 turns into the vertical groove 111.
[0048] When the micro-cylinder 51 drives the top block 52 to press down the lever 53 so that its end rotates into the vertical groove 111, the shaft body 11 and the connecting ring 3 are in a relatively fixed state. At this time, the drive motor 21 can drive the connecting ring 3 to rotate through the shaft body 11. When the connecting ring 3 needs to be lifted or lowered, the micro-cylinder 51 drives the top block 52 to rise, so that the return spring 54 drives the lever 53 to rotate and reset to disengage from the vertical groove 111, and then the connecting ring 3 can be lifted or lowered by the lifting mechanism 6, improving the fixing or releasing efficiency between the connecting ring 3 and the shaft body 11.
[0049] Specifically, the lifting mechanism 6 is used to vertically guide the connecting ring 3. At this time, the drive motor 21 drives the shaft body 11 to rotate, and the cooperation between the self-thread of the shaft body 11 and the guidance of the lifting mechanism 6 enables the connecting ring 3 to be lifted or lowered.
[0050] As Figure 3 shown, a specific embodiment provided by the present invention on the basis of the above embodiment is as follows:
[0051] A force-receiving groove 33 communicating with the vertical groove 111 is formed on the top surface of the connecting ring 3. One end of the lever 53 away from the top block 52 is located in the force-receiving groove 33 in the initial state. When the lever 53 is pressed down by the top block 52, the lever 53 is located in both the force-receiving groove 33 and the vertical groove 111 at the same time.
[0052] When the lever 53 is located in both the vertical groove 111 and the force-receiving groove 33 at the same time, the rotation of the shaft body 11 can be directly transmitted to the connecting ring 3 through the lever 53, reducing the burden on the self-rotating connection structure of the lever 53.
[0053] As Figure 2 and Figure 5 shown, a specific embodiment provided by the present invention on the basis of the above embodiment is as follows:
[0054] The lifting mechanism 6 includes a top ring 61, a bottom ring 62, a guide rod 63 and a locking assembly 64; the top ring 61 is rotatably connected in the mounting frame 2, the bottom ring 62 is rotatably connected to the bottom of the mixing drum 1, the guide rod 63 is vertically fixed between the top ring 61 and the bottom ring 62, the top ring 61 and the bottom ring 62 are both coaxially arranged with the shaft body 11, and the guide rod 63 passes through the connecting ring 3; the locking assembly 64 is arranged on the mounting frame 2 and is used to fix the top ring 61.
[0055] When the locking assembly 64 does not fix the top ring 61, the shaft body 11 drives the connecting ring 3 to rotate, and the connecting ring 3 drives the top ring 61 and the bottom ring 62 to rotate synchronously through the guide rod 63. When the connecting ring 3 needs to be lifted or lowered, the locking assembly 64 fixes the top ring 61 relative to the mounting frame 2, and the guide rod 63 plays a role of vertical guidance for the connecting ring 3. When the shaft body 11 drives the connecting ring 3 to rotate again, the connecting ring 3 can be lifted or lowered along the guide rod 63, thereby improving the switching efficiency of the connecting ring 3 in the rotating or lifting state.
[0056] like Figures 5 to 6 As shown, the present invention provides a specific implementation method based on the above implementation method as follows:
[0057] The locking assembly 64 includes an outer ring 641, an extrusion block 642, a locking plate 643 and a driving member 644; the outer ring 641 is rotatably connected in the mounting frame 2 and is coaxially located on the outer side of the top ring 61, at least two locking plates 643 are provided and are relatively slidably connected in the mounting frame 2, the sliding direction of the locking plates 643 is perpendicular to the axis of the top ring 61, and the locking plates 643 are located between the outer ring 641 and the top ring 61; a plurality of extrusion blocks 642 are provided and fixed on the inner circumference of the outer ring 641, and a receiving groove 6431 is opened on the outer side of each locking plate 643, the extrusion block 642 is hemispherical and is located in the corresponding receiving groove 6431, at this time, the inner side of the locking plate 643 is close to the top ring 61; the driving member 644 is provided on the mounting frame 2 and is used to drive the outer ring 641 to rotate; when the outer ring 641 drives all the extrusion blocks 642 to disengage from the receiving groove 6431, the inner side of the locking plate 643 presses the top ring 61 tightly to fix it.
[0058] Furthermore, in this embodiment, the driving member 644 is a cylinder or a hydraulic cylinder, and a fixing plate is fixed to the outer peripheral surface of the outer ring 641. One end of the driving member 644 is hinged to the mounting frame 2, and the other end is hinged to the fixing plate. Starting the driving member 644 to extend and retract can drive the outer ring 641 to rotate.
[0059] When it is necessary to drive the connecting ring 3 to rise or fall, start the driving member 644 to drive the outer ring 641 to rotate, and the outer ring 641 drives all the extrusion blocks 642 to disengage from the accommodating groove 6431 and squeeze the locking plate 643. After being squeezed, the locking plate 643 moves toward the top ring 61 and tightens it to fix it, thereby improving the convenience of fixing the top ring 61; and the back side of each locking plate 643 is squeezed by multiple extrusion blocks 642 at the same time, thereby making the friction force on the contact surface between the locking plate 643 and the outer ring 641 more uniform, thereby improving the clamping and fixing effect of the locking plate 643 on the top ring 61.
[0060] like Figures 5 to 6 As shown, the present invention provides a specific implementation method based on the above implementation method as follows:
[0061] The inner wall of the outer ring 641 is provided with a plurality of installation grooves 6411 , each of which is provided with a positioning coil spring 645 connected to the locking plate 643 . When the positioning coil spring 645 is in a natural state, the extrusion block 642 is located in the corresponding accommodation groove 6431 .
[0062] When the driving member 644 drives the outer ring 641 to reverse and reset, the positioning coil spring 645 can drive the corresponding locking plate 643 to reset, so that the extrusion block 642 can be inserted into the corresponding extrusion groove again.
[0063] The above are only preferred embodiments of the present invention and are not intended to limit the present invention. Any modifications, equivalent substitutions and improvements made within the spirit and principles of the present invention should be included in the protection scope of the present invention.
[0064] It should be noted that the terms used herein are only for describing specific embodiments and are not intended to limit the exemplary embodiments according to the present application. As used herein, unless the context clearly indicates otherwise, the singular form is also intended to include the plural form. In addition, it should be understood that when the terms "comprise" and / or "include" are used in this specification, it indicates the presence of features, steps, operations, devices, components and / or combinations thereof.
[0065] Unless otherwise specifically stated, the relative arrangements of components and steps, numerical expressions, and numerical values set forth in these embodiments do not limit the scope of the present application. At the same time, it should be understood that, for the sake of convenience of description, the dimensions of the various parts shown in the drawings are not drawn in actual proportional relationships. Technologies, methods, and devices known to those of ordinary skill in the relevant art may not be discussed in detail, but where appropriate, the said technologies, methods, and devices should be regarded as part of the specification. In all the examples shown and discussed herein, any specific values should be construed as merely exemplary and not as a limitation. Therefore, other examples of the exemplary embodiments may have different values. It should be noted that like reference numerals and letters denote like items in the following drawings, and thus, once an item is defined in one drawing, further discussion thereof in subsequent drawings is not required.
Claims
1. A multi-wire cutting machine mortar mixing system, comprising a mixing drum (1) and a mounting frame (2) arranged above the mixing drum (1); characterized in that, A shaft body (11) is vertically rotatably connected inside the mixing drum (1), and a driving motor (21) for driving the shaft body (11) to rotate is provided on the mounting frame (2); threads are provided on the outer peripheral surface of the shaft body (11), a connecting ring (3) is threadedly connected to the shaft body (11), and sealing folding covers (31) are provided between the bottom surface of the connecting ring (3) and the bottom of the mixing drum (1) and between the top surface of the connecting ring (3) and the mounting frame (2); a plurality of mixing paddles (32) are rotatably connected to the outer peripheral surface of the connecting ring (3), and the rotation axis of the mixing paddle (32) is perpendicular to the axis of the shaft body (11); a receiving cavity (321) is opened downward on one side of the mixing paddle (32), and a rotating assembly (4) for driving the mixing paddle (32) to rotate is provided on the connecting ring (3); a holding assembly (5) for relatively fixing the connecting ring (3) to the shaft body (11) is provided on the connecting ring (3), and a lifting mechanism (6) for driving the connecting ring (3) to lift is provided on the mounting frame (2).
2. The multi-wire saw mortar mixing system according to claim 1, wherein, The rotating assembly (4) includes a gear (41), a rack (42) and a reset member (43). The end of the mixing paddle (32) inserted into the connecting ring (3) is cylindrical. The gear (41) is coaxially fixed to the end of the mixing paddle (32), and the rack (42) is vertically slidably connected to the connecting ring (3) and always meshes with the gear (41); when the top of the rack (42) is pressed down by the mounting frame (2), it slides downward, and the reset member (43) is used to drive the rack (42) to reset.
3. The multi-wire saw mortar mixing system according to claim 2, characterized in that, The reset member (43) includes a force-receiving plate (431) and a strong spring (432). The force-receiving plate (431) is fixed to the bottom end of the rack (42), the strong spring (432) is sleeved on the rack (42), and the strong spring (432) is connected between the bottom surface of the connecting ring (3) and the force-receiving plate (431); when the mixing paddle (32) is in the initial state, the strong spring (432) is in the natural state.
4. The multi-wire saw mortar mixing system according to claim 2, wherein, An auxiliary ring (44) coaxial with the shaft body (11) is rotatably provided on the bottom surface of the mounting frame (2), and the top of the rack (42) is used to contact the bottom surface of the auxiliary ring (44).
5. The multi-wire saw mortar mixing system according to claim 1, characterized in that The retaining assembly (5) comprises a micro-cylinder (51), a top block (52), a lever (53) and a return spring (54); the micro-cylinder (51) is invertedly mounted above the connecting ring (3); the top block (52) is fixed to the bottom of the piston rod of the micro-cylinder (51); the lever (53) is rotatably connected to the connecting ring (3); the top block (52) is used to press down an end of the lever (53) away from the shaft body (11); the return spring (54) is connected between the top surface of the connecting ring (3) and an end of the lever (53) away from the shaft body (11); a vertical groove (111) is provided on a side of the shaft body (11) facing the lever (53); when the lever (53) is pressed down by the top block (52), the end of the lever (53) rotates into the vertical groove (111).
6. The multi-wire saw mortar mixing system according to claim 5, characterized in that, The top surface of the connecting ring (3) is provided with a stress-bearing groove (33) connected to the vertical groove (111); when the end of the lever (53) away from the top block (52) is in an initial state, it is located in the stress-bearing groove (33); when the lever (53) is pressed downward by the top block (52), the lever (53) is located in both the stress-bearing groove (33) and the vertical groove (111).
7. The multi-wire cutting machine mortar mixing system according to claim 1, characterized in that, The lifting mechanism (6) comprises a top ring (61), a bottom ring (62), a guide rod (63) and a locking assembly (64); the top ring (61) is rotatably connected inside the mounting frame (2), the bottom ring (62) is rotatably connected to the bottom of the mixing drum (1), the guide rod (63) is vertically fixed between the top ring (61) and the bottom ring (62), the top ring (61) and the bottom ring (62) are both coaxially arranged with the shaft body (11), and the guide rod (63) penetrates the connecting ring (3); the locking assembly (64) is arranged on the mounting frame (2) and is used to fix the top ring (61).
8. The multi-wire cutting machine mortar mixing system according to claim 7, characterized in that, The locking assembly (64) comprises an outer ring (641), an extrusion block (642), a locking plate (643) and a driving member (644); the outer ring (641) is rotatably connected to the mounting frame (2) and is coaxially located on the outside of the top ring (61); at least two locking plates (643) are provided and are relatively slidably connected to the mounting frame (2); the sliding direction of the locking plates (643) is perpendicular to the axis of the top ring (61); the locking plates (643) are located between the outer ring (641) and the top ring (61); the extrusion block ( The outer ring (641) is provided with a plurality of locking plates (642) and fixed on the inner circumference of the outer ring (641), and a receiving groove (6431) is provided on the outer side of each locking plate (643). The extrusion block (642) is hemispherical and is located in the corresponding receiving groove (6431). The driving member (644) is arranged on the mounting frame (2) and is used to drive the outer ring (641) to rotate. When the outer ring (641) drives all the extrusion blocks (642) to disengage from the receiving groove (6431), the inner side of the locking plate (643) presses against the top ring (61) to fix it.
9. The multi-wire cutting machine mortar mixing system according to claim 8, wherein, A plurality of mounting grooves (6411) are formed in the inner side wall of the outer ring (641), and a positioning coil spring (645) connected to the locking plate (643) is arranged in each mounting groove (6411). When the positioning coil spring (645) is in a natural state, the extrusion block (642) is located in the corresponding receiving groove (6431).
10. The multi-wire saw mortar mixing system according to claim 1, wherein, One side of the stirring paddle (32) facing away from the opening of the receiving cavity (321) is provided with a sharp edge.
Citation Information
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