Disclosure of utility model
Aiming at the defects existing in the prior art, the embodiment of the utility model aims to provide a 3D printing piece cleaning device so as to solve the problems in the background art.
In order to achieve the above purpose, the present utility model provides the following technical solutions:
a 3D printing piece cleaning device, comprising:
The cleaning box is internally provided with a placing rack which is used for placing 3D printing pieces;
The vibration unit is connected in the cleaning box in a sliding way and connected with the placing rack and is used for driving the placing rack to slide in the cleaning box;
The aeration unit is connected in the cleaning box in a sliding way and is used for cleaning the 3D printing piece by generating bubbles;
The sliding unit is rotationally connected in the cleaning box, is respectively connected with the vibration unit and the aeration unit and is used for respectively driving the vibration unit and the aeration unit to slide in the cleaning box.
Compared with the prior art, the three-dimensional printing device has the advantages that the vibration unit is arranged and connected in the cleaning box in a sliding mode, the three-dimensional printing device is connected with the placing frame in a sliding mode and used for driving the placing frame to slide in the cleaning box, the aeration unit is connected in the cleaning box in a sliding mode and used for cleaning a 3D printing piece through generating bubbles, and the sliding unit is connected in the cleaning box in a rotating mode and connected with the vibration unit and the aeration unit respectively and used for driving the vibration unit and the aeration unit to slide in the cleaning box respectively.
When carrying out the clearance to 3D printing piece surface remaining bearing structure, residue, grease, through placing 3D printing piece in the rack to add water, cleaner to wasing the incasement, open sliding unit and aeration unit, the bubble that the aeration unit produced can destroy the residue on 3D printing piece surface. The sliding unit can drive the vibration unit and the aeration unit to slide in the same direction and in the reverse direction in the cleaning box through connection with the vibration unit and the aeration unit respectively, so that the aeration range of the aeration unit can be increased, the placing frame can continuously drive the 3D printing piece to vibrate under the action of the vibration unit, the surface of the 3D printing piece can be wiped under the action of bubbles, residues at dead angles on the surface of the 3D printing piece can be cleaned, and the cleaning effect on the surface of the 3D printing piece is improved.
In order to more clearly illustrate the structural features and efficacy of the present utility model, the present utility model will be described in detail below with reference to the accompanying drawings and examples.
Detailed Description
The present utility model will be described in further detail with reference to the drawings and examples, in order to make the objects, technical solutions and advantages of the present utility model more apparent. It should be understood that the specific embodiments described herein are for purposes of illustration only and are not intended to limit the scope of the utility model.
Specific implementations of the utility model are described in detail below in connection with specific embodiments.
Referring to fig. 1 to 3, a 3D printing piece cleaning device includes:
the cleaning box 1, a placing rack 11 is arranged in the cleaning box 1, and the placing rack 11 is used for placing 3D printing pieces;
The vibration unit 2 is connected in the cleaning box 1 in a sliding way and is connected with the placing frame 11, and is used for driving the placing frame 11 to slide in the cleaning box 1;
The aeration unit 3 is connected in the washing box 1 in a sliding way and is used for washing the 3D printing piece by generating bubbles;
the sliding unit 4 is rotationally connected in the cleaning box 1 and is respectively connected with the vibration unit 2 and the aeration unit 3 and is used for respectively driving the vibration unit 2 and the aeration unit 3 to slide in the cleaning box 1.
In the embodiment of the utility model, when the supporting structure, residues and grease remained on the surface of the 3D printing piece are cleaned, the 3D printing piece is placed in the placing frame 11, water and cleaning agent are added into the cleaning box 1, the sliding unit 4 and the aeration unit 3 are started, and the residues on the surface of the 3D printing piece can be damaged by bubbles generated by the aeration unit 3. The sliding unit 4 can drive the vibration unit 2 and the aeration unit 3 to slide in the same direction and in the reverse direction in the cleaning box 1 through connection with the vibration unit 2 and the aeration unit 3 respectively, so that the aeration range of the aeration unit 3 can be increased, the placing frame 11 can continuously drive the 3D printing piece to vibrate under the action of the vibration unit 2, the surface of the 3D printing piece can be wiped under the action of bubbles, residues at dead angles on the surface of the 3D printing piece can be cleaned, and the cleaning effect on the surface of the 3D printing piece is improved.
In one embodiment of the present utility model, as shown in fig. 1 and 2, the vibration unit 2 includes:
The fixed frame 21 is connected to the inner wall of the cleaning box 1, and a sliding groove 22 is formed in the fixed frame;
a sliding member 23 slidably connected in the chute 22, the end portion being connected to the placement frame 11.
In the embodiment, the fixing frame 21 is connected to the inner wall of the washing tank 1, a sliding groove 22 is formed in the fixing frame, the sliding piece 23 is connected in the sliding groove 22 in a sliding mode, and the end portion of the sliding piece is connected with the placing frame 11.
When carrying out the clearance to 3D printing piece surface remaining bearing structure, residue, grease, through placing 3D printing piece in rack 11 to add water, cleaner in to wasing case 1, open sliding unit 4, sliding unit 4 can drive slider 23 through the connection with slider 23 and carry out reciprocating sliding in spout 22, slider 23 can drive rack 11 of its tip when sliding and carry out synchronous sliding, thereby make rack 11 can drive the 3D printing piece of its surface and carry out reciprocating washing in wasing case 1.
The sliding groove 22 in the vibration unit 2 may be formed on the surface of the fixing frame 21 in a horizontal direction or a vertical direction, which is not limited herein.
In one embodiment of the present utility model, as shown in fig. 1 and 2, the aeration unit 3 includes:
a slider 31 slidably connected to the inside of the chute 22;
a bracket 32 fixed at the end of the slider 31, the surface of which is slidably connected with the placement frame 11;
an aeration pump 33 is mounted on the bracket 32.
In the embodiment, the sliding block 31 is slidably connected in the sliding groove 22, the bracket 32 is fixed at the end part of the sliding block 31, the surface of the sliding block is slidably connected with the placement frame 11, and the aeration pump 33 is mounted on the bracket 32.
The aeration pump 33 is started, and the aeration pump 33 can inject air into the water in the cleaning tank 1, so that bubbles are generated in the water in the cleaning tank 1, and the bubbles can destroy residues on the surface of the 3D printing part. The sliding unit 4 can drive the sliding block 31 to synchronously slide in the sliding groove 22 during sliding, and the sliding directions of the sliding block 31 and the sliding piece 23 are opposite, so that the sliding block 31 can drive the bracket 32 to reversely slide on the surface of the placing frame 11. The support 32 can drive the aeration pump 33 of its side and slide in step when sliding, has improved the scope that aeration pump 33 produced the bubble to rack 11 also is constantly driving 3D and is printing the piece and shake, makes the surface that 3D printed the piece can clean under the effect of bubble, thereby can wash the residue of 3D printing piece surface dead angle department, has improved the cleaning performance to 3D printing piece surface.
The aeration unit 3 can also be replaced by an ultrasonic cleaner, and 3D printing pieces on the placing frame 11 can be cleaned by the ultrasonic cleaner.
In one embodiment of the present utility model, as shown in fig. 1 and 2, the sliding unit 4 includes:
a rotation shaft 41 rotatably connected to the inside of the cleaning tank 1 and the slider 31;
A driving part 42 installed at a side of the washing tank 1, the rotation shaft 41 being connected to an output end of the driving part 42;
A rotating frame 43 mounted on the rotating shaft 41, the ends of which are rotatably connected to the slider 23 through a connecting rod 44;
The first elastic piece 45 is connected between the inner wall of the chute 22 and the side surface of the slide block 31;
The second elastic member 46 is connected between the side surface of the slider 23 and the inner wall of the chute 22.
In this embodiment, the rotating shaft 41 is rotatably connected to the inside of the washing tank 1 and the slider 31, the driving member 42 is mounted on the side of the washing tank 1, the rotating shaft 41 is connected to the output end of the driving member 42, the rotating frame 43 is mounted on the rotating shaft 41, the end is rotatably connected to the slider 23 through a connecting rod 44, the first elastic member 45 is connected between the inner wall of the chute 22 and the side of the slider 31, and the second elastic member 46 is connected between the side of the slider 23 and the inner wall of the chute 22.
The driving piece 42 is opened, the output end of the driving piece 42 can drive the rotating shaft 41 to rotate in the cleaning box 1 and the sliding piece 31, the rotating shaft 41 can drive the rotating frame 43 on the surface of the cleaning box to rotate in the rotating process, the rotating frame 43 can drive the sliding piece 23 to slide in the sliding groove 22 through connection with the connecting rod 44, the sliding piece 31 can slide in the sliding groove 22 under the action of the rotating shaft 41, the sliding piece 31 and the sliding piece 23 can periodically slide in the same direction or in the opposite direction in the sliding groove 22 under the action of the rotating frame 43 and the connecting rod 44, and the sliding piece 31 and the sliding piece 23 can respectively compress the first elastic piece 45 and the second elastic piece 46 in the opposite sliding process, so that hard mechanical collision of the sliding piece 31, the sliding piece 23 and the inner wall of the sliding groove 22 can be prevented.
The first elastic member 45 and the second elastic member 46 may be springs or elastic rubber, which is not limited herein.
In one embodiment of the present utility model, as shown in fig. 3, the surface of the rack 11 is provided with a through hole, and the through hole facilitates the impurities to pass through. In this embodiment, a through hole is formed on the surface of the placement frame 11, and the through hole is convenient for impurities to pass through. A drain valve is further arranged at the bottom of the cleaning box 1, so that sewage in the cleaning box 1 can be conveniently discharged.
The utility model has the working principle that when the residual supporting structure, residues and grease on the surface of the 3D printing part are cleaned, the 3D printing part is placed in the placing frame 11, water and cleaning agent are added into the cleaning box 1, the driving part 42 is started, the output end of the driving part 42 can drive the rotating shaft 41 to rotate in the cleaning box 1 and the sliding block 31, the rotating shaft 41 can drive the rotating frame 43 on the surface of the rotating shaft 41 to rotate in the rotating process, the rotating frame 43 can drive the sliding part 23 to slide in the sliding groove 22 through the connection with the connecting rod 44, the sliding block 31 can also slide in the sliding groove 22 under the action of the rotating shaft 41, the sliding block 31 and the sliding part 23 can slide in the sliding groove 22 in the same direction or in opposite direction under the action of the rotating frame 43 and the connecting rod 44, and the sliding part 23 can respectively compress the first elastic part 45 and the second elastic part 46 in the process of sliding in opposite directions, so that the inner walls of the sliding block 31, the sliding part 23 and the sliding groove 22 can be prevented from hard mechanical collision.
The aeration pump 33 is started, and the aeration pump 33 can inject air into the water in the cleaning tank 1, so that bubbles are generated in the water in the cleaning tank 1, and the bubbles can destroy residues on the surface of the 3D printing part. When the sliding block 31 and the sliding piece 23 slide in the same direction and in opposite directions, the sliding block 31 can drive the bracket 32 to slide synchronously on the surface of the placing frame 11. The support 32 can drive the aeration pump 33 of its side and slide in step when sliding, has improved the scope that aeration pump 33 produced the bubble to rack 11 also is constantly driving 3D and is printing the piece and shake, makes the surface that 3D printed the piece can clean under the effect of bubble, thereby can wash the residue of 3D printing piece surface dead angle department, has improved the cleaning performance to 3D printing piece surface.
In the description of the present utility model, unless explicitly specified and limited otherwise, the terms "mounted," "connected," and "connected" are to be construed broadly, and may be, for example, fixedly connected, detachably connected, or integrally connected, mechanically connected, electrically connected, or communicable with each other, directly connected, indirectly connected via an intermediary, or in communication between two elements or in an interaction relationship between two elements. The specific meaning of the above terms in the present utility model can be understood by those of ordinary skill in the art according to the specific circumstances.
The foregoing description of the preferred embodiments of the utility model is not intended to be limiting, but rather is intended to cover all modifications, equivalents, and alternatives falling within the spirit and principles of the utility model.