A dispensing and mixing all-in-one machine
Patent Information
- Application Number
- CN202522305583.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-30
- Publication Date
- 2026-09-25
- Estimated Expiration
- 2035-10-30
AI Technical Summary
[0004]有鉴于此,本申请的目的在于提供一种调配混匀一体机,以解决现有一体机采用振荡混匀的方式不适用于质量较大、体积较大的物料,进而导致混匀效率较低的问题
[0014]根据本实用新型的调配混匀一体机,通过主机架将调配系统和混匀系统集成于一体,调色模块能够根据配方将不同色母桶内色母分别进行出料至承料模块中,然后再通过人工将承料模块中物料转运至混匀系统中,混匀系统能够以回旋的方式将物料混合均匀,如此,即使物料的质量和体积都很大时,本实用新型中混匀系统依旧能够高效率地完成对物料的混匀;
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Figure CN224793328U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of material coloring and mixing devices, and in particular to an integrated mixing and blending machine. Background Technology
[0002] The basic manufacturing principle of various car paints, oil paints, latex paints, and inks is to mix various color masterbatches and auxiliary materials in a certain proportion, and then mix these materials evenly to obtain the desired coating. Currently, the above paint-making process is usually achieved through paint mixing equipment. Paint mixing equipment generally includes multiple color masterbatch tanks, and each color masterbatch tank is equipped with a corresponding conveying module. The conveying module discharges the color masterbatches from different color masterbatch tanks into a mixing tank according to the formula, and then the materials are mixed by a mixer (manual mixing is not as precise as mixer control) to obtain the desired coating.
[0003] In order to reduce the footprint of equipment and improve paint production efficiency, integrated machines that combine paint mixing equipment and mixing machine have appeared on the market. However, the mixing module in the existing integrated machine adopts the oscillation mixing method, which is more suitable for materials with small mass and volume. When the material in the mixing tank has a large mass and volume, the mixing efficiency of the mixing module in the existing integrated machine will drop significantly. Utility Model Content
[0004] In view of this, the purpose of this application is to provide a mixing and blending machine to solve the problem that the existing mixing and blending method using vibration is not suitable for materials with large mass and volume, resulting in low mixing efficiency.
[0005] To achieve the above objectives, this utility model provides a blending and mixing integrated machine, wherein the blending and mixing integrated machine comprises: Mainframe rack; A mixing system is connected to the main frame; the mixing system includes a color mixing module and a material receiving module. A mixing system is located below the color mixing module and is detachably connected to the main frame; the mixing system can mix the materials output by the mixing system in a swirling manner.
[0006] Preferably, the bottom of the main frame is provided with multiple connecting plates; the mixing system includes a sub-frame and multiple support legs, the support legs pass through the corresponding connecting plates and are connected to the sub-frame, so that the support legs can be raised and lowered relative to the sub-frame, and the support legs can drive the sub-frame to be raised and lowered relative to the main frame. Preferably, the support foot includes a threaded rod and a support portion sleeved on the first end of the threaded rod; the connecting plate has a circular hole, and the second end of the threaded rod passes through the corresponding circular hole and is screwed onto the sub-frame; a gap is formed between the circular hole and the threaded rod; The connecting plate is also provided with a pad, and the pad is connected to the connecting plate accordingly.
[0007] Preferably, the mixing system further includes a rotary module capable of rotating relative to the subframe; The rotary module includes a rotating shaft assembly and a support assembly connected to the rotating shaft assembly. The rotating shaft assembly is rotatably connected to the sub-frame and can drive the support assembly to rotate synchronously. The straight line containing the rotation center of the rotary module extends along the first direction.
[0008] Preferably, the bracket assembly includes a guide rail fixedly connected to the rotating shaft assembly, and the extension direction of the guide rail is set as a second direction, which is perpendicular to the first direction; The support assembly further includes an upper support arm and a lower support arm that are slidably connected to the guide rail. The upper support arm and the lower support arm are able to move closer to or further away from each other along the second direction. Both the upper support arm and the lower support arm extend along the first direction. The upper support arm has an upper pressure plate at the bottom facing the lower support arm, and the upper pressure plate is rotatably connected to the upper support arm; the lower support arm has a lower pressure plate at the top facing the upper support arm, and the lower pressure plate is rotatably connected to the lower support arm; the upper pressure plate and the lower pressure plate can rotate coaxially, and the straight line where the rotation center of the upper pressure plate and the lower pressure plate is located extends along the second direction.
[0009] Preferably, along the first direction, the lower support arm includes a support arm body and a movable arm arranged sequentially; the support arm body is slidably connected to the guide rail, the movable arm is slidably connected to the support arm body, and the lower pressure plate is rotatably connected to the movable arm; The movable arm can slide back and forth relative to the support arm body along the first direction; when the movable arm slides to its limit position in the direction closer to the support arm body, the movable arm can be locked to the support arm body by a locking component.
[0010] Preferably, the locking assembly includes a first locking member disposed at the bottom of the movable arm and a second locking member disposed at the bottom of the support arm body; the first locking member has a groove formed at a first end near the support arm body, and the second locking member has a hook formed at a first end near the movable arm, the hook and the groove being able to engage accordingly.
[0011] Preferably, a support is fixed to the bottom of the support arm body, the support has a through hole with an L-shaped structure, the support is sleeved on the outer side of the second locking member through the through hole, and the first end of the second locking member extends to the outside of the support; A locking pin is fixed to the outer side of the second end of the second locking member, and a compression spring is sleeved on the outer side of the locking pin. The bottom end of the locking pin away from the second locking member extends out to the outside of the support through the through hole. The sub-frame is provided with a counterweight block that is detachably connected to the bottom end of the locking pin. When the rotary module is running, the hook engages with the corresponding slot; after the rotary module mixes the material, the upper support arm and the lower support arm move away from each other, so that the locking pin abuts against the counterweight. The counterweight can apply pressure to the locking pin. When the pressure is greater than the elastic force of the compression spring, the locking pin drives the second locking member to move in the second direction away from the first locking member, and the hook and the slot separate accordingly.
[0012] Preferably, the main frame includes a main body formed as a frame structure and a baffle connected to the main body. The baffle includes a partition and a side plate, so that the main frame forms a first limiting cavity and a second limiting cavity. The color matching module and the mixing system are respectively disposed in the first limiting cavity and the second limiting cavity.
[0013] Preferably, the material receiving module includes a support plate disposed on the outer side of the side plate, the support plate being used to place the material receiving bucket, the height of the support plate being adjustable, and the material receiving bucket being able to receive the material output by the color matching module; At least one of the side plates is provided with a transfer window, through which the material in the receiving bucket can be conveyed to the mixing system.
[0014] According to the present invention, the blending and mixing integrated machine integrates the blending system and the mixing system into one unit through the main frame. The color matching module can discharge the color masterbatch from different color masterbatch tanks to the receiving module according to the formula. Then, the material in the receiving module is manually transferred to the mixing system. The mixing system can mix the material evenly in a swirling manner. Thus, even when the mass and volume of the material are large, the mixing system in the present invention can still complete the mixing of the material with high efficiency. In addition, the mixing system is detachably connected to the main frame, which can effectively block the transmission of vibration between the mixing system and the blending system, thus ensuring the relative independence of the mixing system and the blending system. They can be used independently, thereby further improving the paint production efficiency of this all-in-one machine.
[0015] To make the above-mentioned objectives, features and advantages of this application more apparent and understandable, preferred embodiments are described below in detail with reference to the accompanying drawings. Attached Figure Description
[0016] To more clearly illustrate the technical solutions of the embodiments of this application, the accompanying drawings used in the embodiments will be briefly introduced below. It should be understood that the following drawings only show some embodiments of this application and should not be regarded as a limitation of the scope. For those skilled in the art, other related drawings can be obtained based on these drawings without creative effort.
[0017] Figure 1 This is a schematic diagram of a mixing and blending machine according to an embodiment of the present invention; Figure 2 This is a partial schematic diagram of a mixing and blending machine according to an embodiment of the present invention; Figure 3 This is a schematic diagram of a color adjustment module according to an embodiment of the present utility model; Figure 4 This is a schematic diagram of a mixing system according to an embodiment of the present invention; Figure 5 This is a first sectional view of the lower support arm according to an embodiment of the present utility model; Figure 6 This is a second sectional view of the lower support arm according to an embodiment of the present invention; Figure 7 This is a third sectional view of the lower support arm according to an embodiment of the present utility model; Figure 8 This is a partial connection diagram of the subframe and the main body according to an embodiment of the present utility model; Figure 9 This is a schematic diagram showing the connection between the subframe and another part of the main body according to an embodiment of the present invention.
[0018] Icons: 1-Main frame; 11-Main body; 111-Connecting plate; 112-Moving wheel; 113-Padded plate; 12-Side plate; 121-Bracket; 122-Transfer window; 13-Partition; 21-Color matching module; 221-Plate; 3-Mixing system; 31-Sub-frame; 311-Support foot; 3111-Threaded rod; 3112-Support part; 32-Rotating shaft assembly; 33-Guide rail; 34-Upper support arm; 35-Lower support arm; 351-Moving arm; 352-Support arm body; 353-Circular guide rail; 361-First locking element; 3611-Slot; 362-Second locking element; 3621-Hook; 363-Support; 364-Compression spring; 365-Counterweight; 366-Locking pin; 371-Upper pressure plate; 372-Lower pressure plate. Detailed Implementation The following detailed embodiments are provided to help the reader gain a comprehensive understanding of the methods, apparatus, and / or systems described herein. However, various changes, modifications, and equivalents of the methods, apparatus, and / or systems described herein will be apparent after understanding the disclosure of this application. For example, the order of operations described herein is merely illustrative and is not limited to the order set forth herein; changes that will be apparent after understanding the disclosure of this application are possible, except for operations that must occur in a specific order. Furthermore, for clarity and brevity, descriptions of features known in the art may be omitted.
[0019] The features described herein may be implemented in different forms and should not be construed as being limited to the examples described herein. Rather, the examples described herein have been provided merely to illustrate some of the many feasible ways of implementing the methods, apparatus, and / or systems described herein that will be apparent upon understanding the disclosure of this application.
[0020] Throughout the specification, when an element (such as a layer, region, or substrate) is described as being "on" another element, "connected to" another element, "bonded to" another element, "on" another element, or "covering" another element, it may be directly "on" another element, "connected to" another element, "bonded to" another element, "on" another element, or "covering" another element, or there may be one or more other elements in between. In contrast, when an element is described as being "directly on" another element, "directly connected to" another element, "directly bonded to" another element, "directly on" another element, or "directly covering" another element, there may be no other elements in between.
[0021] As used herein, the term “and / or” includes any one of the relevant items listed and any combination of any two or more items.
[0022] Although terms such as “first,” “second,” and “third” may be used herein to describe individual components, assemblies, regions, layers, or parts, these components, assemblies, regions, layers, or parts are not limited by these terms. Rather, these terms are used only to distinguish one component, assembly, region, layer, or part from another. Therefore, without departing from the teachings of the examples described herein, the first component, assembly, region, layer, or part referred to as the second component, assembly, region, layer, or part may also be referred to as the second component, assembly, region, layer, or part.
[0023] For ease of description, spatial relation terms such as “above,” “upper,” “below,” and “lower” are used herein to describe the relationship between one element and another, as shown in the accompanying drawings. Such spatial relation terms are intended to include not only the orientation depicted in the drawings but also different orientations of the device during use or operation. For example, if the device in the drawings is flipped, an element described as being “above” or “upper” relative to another element will subsequently be “below” or “lower” relative to that other element. Therefore, the term “above” includes both “above” and “below” orientations depending on the spatial orientation of the device. The device may also be positioned in other ways (e.g., rotated 90 degrees or in other orientations), and the spatial relation terms used herein will be interpreted accordingly.
[0024] The terminology used herein is for the purpose of describing various examples only and is not intended to limit this disclosure. Unless the context clearly indicates otherwise, the singular form is also intended to include the plural form. The terms “comprising,” “including,” and “having” enumerate the stated features, quantities, operations, components, elements, and / or combinations thereof, but do not exclude the presence or addition of one or more other features, quantities, operations, components, elements, and / or combinations thereof.
[0025] Variations in the shapes shown in the accompanying drawings may occur due to manufacturing techniques and / or tolerances. Therefore, the examples described herein are not limited to the specific shapes shown in the accompanying drawings, but include changes in shape that may occur during manufacturing.
[0026] The features of the examples described herein can be combined in various ways that will be apparent upon understanding the disclosure of this application. Furthermore, although the examples described herein have a wide variety of constructions, other constructions are possible, as will be apparent upon understanding the disclosure of this application.
[0027] This utility model provides an integrated mixing and blending machine, such as... Figures 1 to 9 As shown, the integrated mixing and blending machine in this embodiment includes a main frame 1 and a mixing system and a blending system 3 connected to the main frame 1. The mixing system enables various materials to be mixed according to the formula ratio, and the blending system 3 then mixes the materials evenly. Furthermore, the blending system 3 in this integrated machine mixes the materials evenly in a swirling manner. Even for materials with large mass and volume, the swirling mixing method can still mix the materials with high quality and high efficiency. In the following text, the specific structure and positional relationship of the above-mentioned parts of the integrated mixing and blending machine (hereinafter referred to as the integrated machine) of this utility model will be described in detail.
[0028] In this embodiment, as Figures 1 to 2As shown, the main frame 1 includes a main body 11 formed as a frame structure and baffles connected to the main body 11. The baffles specifically include partitions 13 and side plates 12. The frame-like main body 11 can provide sufficient support strength for this all-in-one machine. The side plates 12 can cooperate with the main body 11 to form a limiting cavity inside the main frame 1. The partitions 13 further divide the limiting cavity into a first limiting cavity and a second limiting cavity distributed vertically. The color mixing module 21 and the mixing system 3 in the mixing system are respectively set in the first limiting cavity and the second limiting cavity. This can ensure the relative independence of the operation of the mixing system and the mixing system 3, and can provide a relatively closed operating environment for the mixing system and the mixing system 3.
[0029] Furthermore, the dispensing system also includes a material receiving module. In this embodiment, the material receiving module includes a pallet 221 and a material receiving bucket, such as... Figure 1 As shown, the first side plate 12 is configured with a recessed portion. Multiple sets of brackets 121 along the height direction of the integrated machine are provided on the opposite side of this recessed portion. The recessed portion is adapted to the specifications of the pallet 221 to limit the position of the pallet 221, thereby ensuring the stability of the pallet 221 when it is connected to the bracket 121. The multiple sets of brackets 121 allow for flexible adjustment of the pallet 221's height to accommodate various material output conditions of the color mixing module 21. Furthermore, the material receiving bucket can be placed directly on top of the pallet 221, and it can receive the material output by the color mixing module 21. Further, at least one side plate 12 is provided with a transfer window 122 (in this embodiment, it is provided at the first side plate 12), through which the material in the receiving bucket can be conveyed to the mixing system 3.
[0030] It should be noted that the specific structure and assembly method of the main frame 1 are all standard practices in the mechanical field, and therefore will not be elaborated further. Furthermore, it should be noted that the color matching module 21 can utilize existing color matching equipment (such as...). Figure 3 As shown), the positions of the tray 221 and the material receiving bucket (i.e., the position of the first side plate 12) are determined according to the position of the slurry outlet of the color matching module 21.
[0031] In this embodiment, as Figure 4 As shown, the mixing system 3 includes a sub-frame 31, which supports the various components within the mixing system 3. Furthermore, the mixing system 3 also includes a rotary module rotatably connected to the sub-frame 31. Specifically, the rotary module includes a shaft assembly 32 and a support assembly correspondingly connected to the shaft assembly 32. The shaft assembly 32 achieves rotatable connection with the sub-frame 31 via a rotary spindle, thereby enabling the shaft assembly 32 to drive the support assembly to rotate synchronously (relative to the sub-frame 31), meaning the entire rotary module can rotate relative to the sub-frame 31. The rotation center of the rotary module is set along a first direction (i.e.,...). Figure 4Extending in the X direction (as shown), the main axis of rotation extends along the first direction.
[0032] More specifically, such as Figure 4 As shown, the bracket assembly includes a guide rail 33 fixedly connected to the rotating shaft assembly 32, and the extension direction of the guide rail 33 is set as a second direction (i.e., Figure 4 The second direction is perpendicular to the first direction (as shown in the Y direction). Furthermore, the support assembly includes an upper support arm 34 and a lower support arm 35 slidably connected to the guide rail 33. The upper support arm 34 and the lower support arm 35 can move closer to or further away from each other along the second direction, and both the upper support arm 34 and the lower support arm 35 extend along the first direction. Further, an upper pressure plate 371 is provided on the bottom of the upper support arm 34 facing the lower support arm 35, and the upper pressure plate 371 is rotatably connected to the upper support arm 34; a lower pressure plate 372 is provided on the top of the lower support arm 35 facing the upper support arm 34, and the lower pressure plate 372 is rotatably connected to the lower support arm 35; the upper pressure plate 371 and the lower pressure plate 372 can rotate coaxially, and the straight line containing the rotation centers of the upper pressure plate 371 and the lower pressure plate 372 extends along the second direction.
[0033] When materials need to be mixed, the mixing drum containing the mixture is placed on top of the upper pressure plate 371, and the upper support arm 34 and the lower support arm 35 are adjusted to slide towards each other in the second direction, so that the upper pressure plate 371 and the lower pressure plate 372 clamp the mixing drum. Then, the upper pressure plate 371 and the lower pressure plate 372 are driven to rotate synchronously and coaxially to achieve the first-dimensional rotation of the mixing drum. At the same time, the rotation module is driven to rotate as a whole to achieve the second-dimensional rotation of the mixing drum. That is, the mixing drum can rotate in two dimensions, thus achieving thorough mixing of the mixture in various states. In addition, the first-dimensional rotation and the second-dimensional rotation can be superimposed into a double-rotation unbalanced state. When the mixing system 3 stops running, it can automatically maintain the state where the upper support arm 34 (and related components) is on top and the lower support arm 35 (and related components) is on the bottom, without the need for a brake clutch.
[0034] It should be noted that the above-mentioned structure and operating principle of the mixing system 3 are existing technologies, so the specific structure and principle of each component will not be described in detail.
[0035] In this embodiment, as Figures 4 to 5 As shown, along the first direction, the lower support arm 35 includes a support arm body 352 and a movable arm 351 arranged sequentially. The support arm body 352 is slidably connected to the guide rail 33, and the movable arm 351 is slidably connected to the support arm body 352. The lower pressure plate 372 is rotatably connected to the movable arm 351. Thus, the movable arm 351 can slide back and forth relative to the support arm body 352 along the first direction. When it is necessary to pick up or put down materials, the movable arm 351 can be pulled out; when it is necessary to mix materials, the movable arm 351 can be pushed back.
[0036] It should be noted that there are no limitations on the specific structure for achieving the sliding connection between the movable arm 351 and the support arm body 352. For example, in this embodiment, such as... Figure 5 As shown, the support arm body 352 and the movable arm 351 are fitted together with a concave-convex fit. Along the first direction, circular guide rails 353 are respectively provided on both sides of the length direction of the movable arm 351, and slide rails corresponding to the circular guide rails 353 are respectively formed on both sides of the length direction of the support arm body 352. In this way, the cooperation between the circular guide rails 353 and the slide rails can realize the reciprocating sliding of the movable arm 351 relative to the support arm body 352; or, the above technical effect can also be achieved by using a conventional slider and slide rail structure.
[0037] To prevent the moving arm 351 from sliding during the operation of the mixing system 3, the lower support arm 35 is also equipped with a locking component. When the moving arm 351 slides to its limit position (i.e., the position where the mixing tank can be rotated) in the direction close to the support arm body 352, the moving arm 351 can be locked to the support arm body 352 by the locking component, so that the support arm body 352 and the moving arm 351 can slide synchronously relative to the guide rail 33 in the second direction, and the lower pressure plate 372 on the moving arm 351 can rotate synchronously with the upper pressure plate 371.
[0038] Specifically, such as Figures 6 to 7 As shown, the locking assembly in this embodiment includes a first locking member 361 disposed at the bottom of the movable arm 351 and a second locking member 362 disposed at the bottom of the support arm body 352. The first locking member 361 has a groove 3611 formed at the first end near the support arm body 352, and the second locking member 362 has a hook 3621 formed at the first end near the movable arm 351. The hook 3621 can be engaged with the groove 3611. More specifically, a support 363 is fixed to the bottom of the support arm body 352. The support 363 has a through hole with an L-shaped structure. The support 363 is sleeved on the outer side of the second locking member 362 through the through hole (horizontal cavity), so that the first end of the second locking member 362 extends to the outside of the support 363. In addition, a locking pin 366 is fixed to the outer side of the second end of the second locking member 362. The locking pin 366 is connected to the second locking member 362 through the vertical cavity of the through hole. The outer side of the locking pin 366 is formed into a stepped structure and is correspondingly sleeved on the compression spring 364. The bottom end of the locking pin 366, away from the second locking member 362, extends through the through hole to the outside of the support 363. The sub-frame 31 is provided with a counterweight 365 that can abut or separate from the bottom end of the locking pin 366 (i.e., the detachable connection between the locking pin 366 and the counterweight 365 essentially refers to whether the locking pin 366 and the counterweight 365 come into contact).
[0039] Thus, when the rotary module is running, the hook 3621 and the slot 3611 are in a corresponding engagement state, and the moving arm 351 is locked to the support arm body 352. After the rotary module mixes the material, the upper support arm 34 and the lower support arm 35 move away from each other to release the mixing tank, so that the locking pin 366 abuts against the counterweight 365. The counterweight 365 can apply upward pressure to the locking pin 366. When the pressure is greater than the downward elastic force applied by the compression spring 364, the locking pin 366 can (under the pressure of the counterweight 365) drive the second locking member 362 to move in the second direction away from the first locking member 361. That is, the locking pin 366 and the second locking member 362 can move upward, so that the hook 3621 and the slot 3611 are separated, and the moving arm 351 is unlocked from the support arm body 352.
[0040] When it is necessary to mix the materials again, the operator pushes the movable arm 351 back to its limit position and controls the upper support arm 34 and the lower support arm 35 to move closer to each other to press the mixing barrel. This causes the locking pin 366 to move away from the counterweight 365. Under the elastic force of the compression spring 364, the second locking member 362 and the locking pin 366 move downward so that the hook 3621 and the slot 3611 engage, that is, the movable arm 351 and the support arm body 352 are locked again.
[0041] Based on the aforementioned technical effects, the through hole of the support 363 should have a gap with the second locking member 362 to provide corresponding movement space for the second locking member 362. Furthermore, the bottom end of the compression spring 364 is connected to the end face of the step of the locking pin 366, and the top end of the compression spring 364 can be connected to the inner wall of the through hole (in this embodiment, the vertical cavity of the through hole is also configured as a stepped structure, and the top end of the compression spring 364 is actually connected to the end face of the step of the vertical cavity of the through hole), thereby ensuring that the compression spring 364 can only apply a downward elastic force to the locking pin 366 (and the second locking member 362).
[0042] In this embodiment, as Figures 8 to 9 As shown, the bottom of the main frame 1 (actually the bottom of the main body 11) is provided with multiple connecting plates 111, and the bottom of the sub-frame 31 of the mixing system 3 is provided with multiple support feet 311. The multiple support feet 311 pass through the corresponding connecting plates 111 and are connected to the sub-frame 31. The support feet 311 can be raised and lowered relative to the sub-frame 31, and can drive the sub-frame 31 to be raised and lowered relative to the main body 11. In this way, the sub-frame 31 and the main body 11 can be detachably connected.
[0043] Specifically, the connecting plate 111 is formed as a horizontally arranged plate structure, and its specific shape and specifications are not limited. The connecting plate 111 is rigidly connected to the main body 11 by a screw assembly, and the connecting plate 111 also has a circular hole. The support foot 311 includes a threaded rod 3111 and a support part 3112 sleeved on the first end of the threaded rod 3111. The second end of the threaded rod 3111 passes through the corresponding circular hole of the connecting plate 111 and is screwed to the sub-frame 31. A gap is formed between the circular hole and the corresponding threaded rod. More specifically, a pad 113 is also provided at the bottom of the connecting plate 111. The pad 113 is screwed to the connecting plate 111, and the pad 113 has a threaded hole corresponding to the threaded rod 3111.
[0044] When it is necessary to move this all-in-one machine, the threaded rod 3111 can be screwed on so that the support foot 311 rises relative to the main frame 1. Under the action of the threaded pair between the threaded rod 3111 and the sub-frame 31, the sub-frame 31 can also be lowered to abut against the connecting plate 111 (actually against the nut on the connecting plate 111). At this time, the sub-frame 31 is connected to the main frame 1 through the connecting plate 111. In this way, the operator can move the entire all-in-one machine through the moving wheels 112 set at the bottom of the main body 11.
[0045] Before the mixing system 3 is put into operation, the threaded rod 3111 can be screwed in the reverse direction so that the support foot 311 is lowered relative to the main frame 1 and the support part 3112 contacts the ground to support the mixing system 3. At the same time, under the action of the threaded pair between the threaded rod 3111 and the sub-frame 31, the sub-frame 31 can rise to separate from the connecting plate 111, that is, the hard contact between the sub-frame 31 and the main frame 1 is broken. In this way, the vibration generated by the mixing system 3 during operation can be prevented from being transmitted to the blending system.
[0046] In other words, by setting up the support foot 311 and related structures, the mixing system 3 and the main frame 1 can be detachably connected. It should be noted that the detachable connection here actually refers to whether the sub-frame 31 of the mixing system 3 and the connecting plate 111 set on the main frame 1 come into contact.
[0047] Furthermore, it should be noted that the movement of each of the above components is controlled by an existing control system, which can also be mounted on the main frame 1.
[0048] According to the present invention, the blending and mixing integrated machine integrates the blending system and the mixing system 3 into one unit through the main frame 1. The color matching module 21 can discharge the color masterbatch from different color masterbatch tanks into the receiving module according to the formula. Then, the material in the receiving module is transferred to the mixing system 3 by manual transfer. The mixing system 3 can mix the material evenly in a swirling manner. In this way, even when the mass and volume of the material are large, the mixing system 3 in the present invention can still complete the mixing of the material with high efficiency. Furthermore, the mixing system 3 is detachably connected to the main frame 1, which can effectively block the transmission of vibration between the mixing system 3 and the mixing system, thus ensuring the relative independence of the mixing system 3 and the mixing system. They can be used independently, thereby further improving the paint production efficiency of this all-in-one machine.
[0049] Finally, it should be noted that the above-described embodiments are merely specific implementations of this application, used to illustrate the technical solutions of this application, and not to limit them. The protection scope of this application is not limited thereto. Although this application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that any person skilled in the art can still modify or easily conceive of changes to the technical solutions described in the foregoing embodiments, or make equivalent substitutions for some of the technical features, within the technical scope disclosed in this application. Such modifications, changes, or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of this application, and should all be covered within the protection scope of this application. Therefore, the protection scope of this application should be determined by the protection scope of the claims.
Claims
1. A blending and mixing integrated machine, characterized in that, The blending and mixing integrated machine includes: Mainframe rack; A mixing system is connected to the main frame; the mixing system includes a color mixing module and a material receiving module. A mixing system is located below the color mixing module and is detachably connected to the main frame; the mixing system can mix the materials output by the mixing system in a swirling manner.
2. The mixing and blending integrated machine according to claim 1, characterized in that, The bottom of the main frame is provided with multiple connecting plates; the mixing system includes a sub-frame and multiple support legs, the support legs pass through the corresponding connecting plates and are connected to the sub-frame, so that the support legs can be raised and lowered relative to the sub-frame, and the support legs can drive the sub-frame to be raised and lowered relative to the main frame.
3. The blending and mixing machine according to claim 2, characterized in that, The support foot includes a threaded rod and a support portion sleeved on the first end of the threaded rod; the connecting plate has a circular hole, and the second end of the threaded rod passes through the corresponding circular hole and is screwed to the sub-frame; a gap is formed between the circular hole and the threaded rod; The connecting plate is also provided with a pad, and the pad is connected to the connecting plate accordingly.
4. The blending and mixing machine according to claim 2, characterized in that, The mixing system also includes a rotary module that can rotate relative to the subframe; The rotary module includes a rotating shaft assembly and a support assembly connected to the rotating shaft assembly. The rotating shaft assembly is rotatably connected to the sub-frame and can drive the support assembly to rotate synchronously. The straight line containing the rotation center of the rotary module extends along the first direction.
5. The blending and mixing machine according to claim 4, characterized in that, The bracket assembly includes a guide rail fixedly connected to the rotating shaft assembly, and the extension direction of the guide rail is set as a second direction, which is perpendicular to the first direction; The support assembly further includes an upper support arm and a lower support arm that are slidably connected to the guide rail. The upper support arm and the lower support arm are able to move closer to or further away from each other along the second direction. Both the upper support arm and the lower support arm extend along the first direction. The upper support arm has an upper pressure plate at the bottom facing the lower support arm, and the upper pressure plate is rotatably connected to the upper support arm; the lower support arm has a lower pressure plate at the top facing the upper support arm, and the lower pressure plate is rotatably connected to the lower support arm; the upper pressure plate and the lower pressure plate can rotate coaxially, and the straight line where the rotation center of the upper pressure plate and the lower pressure plate is located extends along the second direction.
6. The blending and mixing machine according to claim 5, characterized in that, Along the first direction, the lower support arm includes a support arm body and a movable arm arranged sequentially; the support arm body is slidably connected to the guide rail, the movable arm is slidably connected to the support arm body, and the lower pressure plate is rotatably connected to the movable arm; The movable arm can slide back and forth relative to the support arm body along the first direction; when the movable arm slides to its limit position in the direction closer to the support arm body, the movable arm can be locked to the support arm body by a locking component.
7. The blending and mixing machine according to claim 6, characterized in that, The locking assembly includes a first locking member disposed at the bottom of the movable arm and a second locking member disposed at the bottom of the support arm body; the first locking member has a groove formed at a first end near the support arm body, and the second locking member has a hook formed at a first end near the movable arm, and the hook and the groove can be engaged accordingly.
8. The blending and mixing machine according to claim 7, characterized in that, A support is fixed to the bottom of the main body of the support arm. The support has a through hole with an L-shaped structure. The support is sleeved on the outer side of the second locking member through the through hole, so that the first end of the second locking member extends to the outside of the support. A locking pin is fixed to the outer side of the second end of the second locking member, and a compression spring is sleeved on the outer side of the locking pin. The bottom end of the locking pin away from the second locking member extends out to the outside of the support through the through hole. The sub-frame is provided with a counterweight block that is detachably connected to the bottom end of the locking pin. When the rotary module is running, the hook engages with the corresponding slot; after the rotary module mixes the material, the upper support arm and the lower support arm move away from each other, so that the locking pin abuts against the counterweight. The counterweight can apply pressure to the locking pin. When the pressure is greater than the elastic force of the compression spring, the locking pin drives the second locking member to move in the second direction away from the first locking member, and the hook and the slot separate accordingly.
9. The blending and mixing machine according to claim 1, characterized in that, The main frame includes a main body formed as a frame structure and a baffle connected to the main body. The baffle includes a partition and a side plate, so that the main frame forms a first limiting cavity and a second limiting cavity. The color matching module and the mixing system are respectively disposed in the first limiting cavity and the second limiting cavity.
10. The blending and mixing machine according to claim 9, characterized in that, The material receiving module includes a tray disposed on the outer side of the side plate. The tray is used to place the material receiving bucket. The height of the tray is adjustable. The material receiving bucket can receive the material output by the color matching module. At least one of the side plates is provided with a transfer window, through which the material in the receiving bucket can be conveyed to the mixing system.