Disclosure of Invention
The utility model provides an engine blade electroplating support frame, and aims to solve the problem that a blade electroplating support frame in the prior art only supports a blade through an elastic piece and is unstable.
In order to solve the technical problems, the utility model adopts the following technical scheme:
the engine blade electroplating supporting frame comprises a mounting assembly and a traction assembly, wherein the mounting assembly is used for fixing a blade body, and the traction assembly is used for traction of the mounting assembly;
the mounting assembly comprises a frame body and clamping structures, wherein the frame body is used for being mounted in the electrolytic cell and is rotationally connected with the electrolytic cell, a plurality of mounting areas are formed in the frame body, each mounting area is internally provided with a blade body, each clamping structure is provided with a plurality of groups, each group of clamping structures is used for clamping one blade body, and each group of clamping structures is used for being mounted in one mounting area;
The traction assembly comprises a first winder and a first motor, wherein the first motor and the first winder are both arranged on the electrolytic cell, the first winder is fixedly connected with an output shaft of the first motor, a first rope is wound on the first winder, one end of the first rope is fixedly connected with the bottom of the frame body, and the other end of the first rope is wound on the first winder and is fixedly connected with the first winder.
Further, the frame body is in sliding fit with the electrolytic cell through the sliding component.
Further, the sliding component comprises a waist-shaped chute, a connecting rod and a sliding block, both sides of the electrolytic cell are provided with the waist-shaped chute, the connecting rod is arranged on the frame body, the sliding block is slidably arranged in the waist-shaped chute, and the connecting rod is rotationally connected with the sliding block.
Further, the traction assembly further comprises a traction slideway, a second motor and a second winder, the traction slideway is arranged on one side of the electrolytic cell, the second motor is installed on the ground, a rotating shaft is arranged at the end part of the second motor, the rotating shaft is rotationally connected with the traction slideway, the second winder is fixedly installed on the rotating shaft, a second rope is wound on the second winder, one end of the second rope is connected with the top of the frame body, the other end of the second rope is fixedly connected with the second winder, and the position of the frame body is fixed after the first rope and the second rope are straightened.
Further, the sliding assembly further comprises two limiting rails, the two limiting rails are arranged on two sides of the traction slide way, the sliding area of the traction slide way is communicated with the sliding area on the waist-shaped slide way, and the sliding block is used for sliding in the limiting rails.
Further, connecting plates are arranged on two sides of the limiting rail, and the rotating shaft is rotationally connected with the connecting plates.
Further, the clamping structure comprises mounting plates, ejector blocks and screws, each mounting region is internally provided with two mounting plates, the screws are connected to the two mounting plates through threads, the ejector blocks are arranged at the end parts of the screws, the ejector blocks are also arranged on the mounting plates, the two ejector blocks in the same mounting region are oppositely arranged, and the two ejector blocks which are oppositely arranged are used for clamping the blade body.
Further, a handle is arranged on the frame body, and the end part of the second rope is fixedly connected with the handle.
Further, a rotating part is installed at one end of the screw rod far away from the top block.
Compared with the prior art, the utility model has the following beneficial effects:
The utility model mainly comprises a mounting assembly and a traction assembly, in the actual use process, a worker controls the first motor to rotate, the first motor drives the first winder to rotate after rotating, the first winder winds the first rope after rotating, and the frame body is rotatably mounted in the electrolytic cell, so that the frame body is rotated in the electrolytic cell after being wound and retracted, the worker clamps the blade body through the clamping structure until the frame body is lifted, one blade body is mounted in each mounting area, after the mounting is completed, the first motor is controlled to rotate in the opposite direction, the first motor drives the first winder to rotate reversely, the first winder releases the first rope, the frame body rotates under the action of gravity to the direction of the bottom of the electrolytic cell until all the blade bodies are positioned in the electrolytic cell, the electrolytic solution in the electrolytic cell completely soaks all the blade bodies, and finally the electrolytic cell body is electroplated.
Detailed Description
The present utility model is further described below in conjunction with embodiments, which are merely some, but not all embodiments of the present utility model. Based on the embodiments of the present utility model, other embodiments that may be used by those of ordinary skill in the art without making any inventive effort are within the scope of the present utility model.
Referring to fig. 1-3, the embodiment discloses an engine blade electroplating support frame, which comprises a mounting assembly and a traction assembly, wherein the mounting assembly is used for fixing a blade body 104, and the traction assembly is used for traction of the mounting assembly;
The mounting assembly comprises a frame body 101 and clamping structures, wherein the frame body 101 is used for being mounted in an electrolytic cell 102 and is rotationally connected with the electrolytic cell 102, a plurality of mounting areas 103 are formed on the frame body 101, each mounting area 103 is internally provided with a blade body 104, each clamping structure is provided with a plurality of groups, each group of clamping structures is used for clamping one blade body 104, and each group of clamping structures is used for being mounted in one mounting area 103;
The traction assembly comprises a first winder 105 and a first motor 106, the first motor 106 and the first winder 105 are both arranged on the electrolytic cell 102, the first winder 105 is fixedly connected with an output shaft of the first motor 106, a first rope 107 is wound on the first winder 105, one end of the first rope 107 is fixedly connected with the bottom of the frame 101, and the other end of the first rope 107 is wound on the first winder 105 and is fixedly connected with the first winder 105;
The utility model mainly comprises a mounting assembly and a traction assembly, in the actual use process, a worker controls the first motor 106 to rotate, the first motor 106 drives the first winder 105 to rotate after rotating, the first winder 105 winds the first rope 107 after rotating, and the frame body 101 rotates and is arranged in the electrolytic cell 102, so when the first rope 107 is wound and retracted, the frame body 101 is pulled to enable the frame body 101 to rotate in the electrolytic cell 102 until the frame body 101 is lifted, the worker clamps the blade body 104 through a clamping structure, a blade body 104 is arranged in each mounting area 103, after the mounting is completed, the first motor 106 is controlled to rotate reversely, at the moment, the first motor 106 drives the first winder 105 to rotate reversely, the first rope 107 is released, the frame body 101 rotates under the action of gravity to the bottom of the electrolytic cell 102 until all the blade bodies 104 are all positioned in the electrolytic cell 102, at the moment, electrolyte in the electrolytic cell 102 completely soaks all the blade bodies 104, and finally, the blade body 104 is easy to clamp through the clamping structure, and the blade body 104 can be clamped by the clamping assembly through the clamping structure, so that the blade body 104 can be more easily fixed when the blade body 104 is arranged.
In some embodiments, the frame 101 is a sliding fit with the electrolytic cell 102 via a sliding assembly.
In actual use, the purpose of setting up slip subassembly is so that the slip of support body 101 can obtain spacingly for support body 101 is more stable and smooth in the gliding in-process.
In some embodiments, the sliding assembly comprises a waist-shaped chute 108, a connecting rod 109 and a sliding block 110, wherein the waist-shaped chute 108 is arranged on two sides of the electrolytic cell 102, the connecting rod 109 is arranged on the frame 101, the sliding block 110 is slidably arranged inside the waist-shaped chute 108, and the connecting rod 109 is rotatably connected with the sliding block 110.
In the actual use process, the traction assembly pulls the position of the frame body 101, so that the position of the frame body 101 is fixed, and when the first rope 107 pulls the frame body 101, the frame body 101 drives the connecting rod 109 to rotate on the sliding block 110.
In some embodiments, the traction assembly further includes a traction slide 111, a second motor 112, and a second reel 113, the traction slide 111 is disposed on one side of the electrolytic cell 102, the second motor 112 is installed on the ground, a rotating shaft is disposed at an end of the second motor 112, the rotating shaft is rotatably connected with the traction slide 111, the second reel 113 is fixedly installed on the rotating shaft, a second rope 114 is wound on the second reel 113, one end of the second rope 114 is connected with the top of the frame 101, the other end of the second rope 114 is fixedly connected with the second reel 113, and the position of the frame 101 is fixed after the first rope 107 and the second rope 114 are straightened.
In the practical use process, because the height of the electrolytic cell 102 is higher, the installation of the blade body 104 by workers is inconvenient, the traction slide way 111 is arranged, when the frame body 101 is pulled by the first rope 107, the second motor 112 and the first motor 106 synchronously rotate, the second motor 112 controls the second winder 113 to rotate, the second winder 113 winds the second rope 114, the second rope 114 pulls the frame body 101 to slide in the waist-shaped slide groove 108, at the moment, the sliding block 110 is in sliding fit with the waist-shaped slide groove 108, the second rope 114 and the first rope 107 are always kept in a straightened state, the rotating speeds of the first motor 106 and the second motor 112 are the same, the frame body 101 slides onto the traction slide way 111 from the waist-shaped slide groove 108, when the frame body 101 moves to the low-point position of the traction slide way 111, the workers fixedly clamp the blade body 104, and then reset the frame body 101 through the rotation of the first motor 106 and the second motor 112, and the arrangement has the advantages that the frame body 101 is positioned at the low-point under the action of the traction device, the installation of the blade body 104 is more convenient for the workers.
In some embodiments, the sliding assembly further comprises two limit rails 115, two limit rails 115 are disposed on two sides of the traction slideway 111, a sliding area of the traction slideway 111 is communicated with a sliding area on the waist-shaped chute 108, and the sliding block 110 is used for sliding in the limit rails 115.
In the actual use process, the limiting rail 115 limits the lateral sliding of the sliding block 110, so that the sliding block 110 is more stable when sliding on the traction slideway 111.
In some embodiments, the two sides of the limit rail 115 are provided with connecting plates 116, and the rotating shaft is rotatably connected with the connecting plates 116.
In the actual use process, the connecting plates 116 are provided for installing the rotating shaft, and two ends of the rotating shaft are respectively connected with the two connecting plates 116 in a rotating way.
In some embodiments, the clamping structure includes mounting plates 117, top blocks 118 and screws 119, each mounting region 103 has two mounting plates 117 therein, the screws 119 are screwed onto two of the mounting plates 117, the top blocks 118 are disposed at ends of the screws 119, the top blocks 118 are also disposed on the mounting plates 117, the two top blocks 118 in the same mounting region 103 are disposed opposite to each other, and the two top blocks 118 disposed opposite to each other are used for clamping the blade body 104.
As an alternative implementation manner, in this embodiment, six mounting areas 103 are six, three of the six mounting areas 103 are a group, two groups of mounting areas 103 are longitudinally arranged on the frame 101, five mounting plates 117 are arranged in the three mounting areas 103, two mounting plates 117 are arranged in the first mounting area 103 and the second mounting area 103, one mounting plate 117 is arranged in the third mounting area 103, the left mounting plate 117 of the first mounting area 103 is in threaded connection with a screw 119, the top part of the screw 119 is provided with the top block 118, the right mounting plate 117 is fixedly connected with the top block 118, the left mounting plate 117 of the second mounting area 103 is fixedly provided with the top block 118, the right mounting plate 117 is in threaded connection with two screws 119, the ends of the two screws are all provided with the top block 118, one screw 119 is located in the first mounting area 103, the top block 118 of the other screw 119 is located in the third mounting area 103, the right mounting area 103 is located in the third mounting area 103 is fixedly connected with the top block 118, and when the right mounting plate 117 is fixedly connected with the blade, the top block 118 is in the body 104 is clamped by the opposite to the body, and the body is clamped by the top block 104.
In some embodiments, the handle 120 is disposed on the frame 101, and an end of the second rope 114 is fixedly connected to the handle 120.
The purpose of the handle 120 is to facilitate the installation of the second cord 114 during actual use.
In some embodiments, the end of the screw 119 remote from the top piece 118 is mounted with a turning portion 121.
In actual use, the purpose of the rotating portion 121 is to facilitate the rotation of the screw 119 by a worker.
In some embodiments, a rotating roller is arranged at the connection of the traction slideway 111 and the electrolytic cell 102, and the frame 101 is used for contacting with the rotating roller.
In the description of the present utility model, it should be understood that the directions or positional relationships indicated by the terms "coaxial," "bottom," "one end," "top," "middle," "other end," "upper," "one side," "top," "inner," "front," "center," "both ends," etc., are based on the directions or positional relationships shown in the drawings, are merely for convenience of description and to simplify the description, and do not indicate or imply that the devices or elements referred to must have a specific orientation, be constructed and operated in a specific orientation, and thus should not be construed as limiting the utility model.
Furthermore, the terms "first," "second," "third," "fourth," and the like are used for descriptive purposes only and are not to be construed as indicating or implying a relative importance or implying a number of such features in order to be construed as indicating the features of the technology being indicated, whereby features defining "first," "second," "third," "fourth" may explicitly or implicitly include at least one such feature.
In the present utility model, unless explicitly specified and defined otherwise, terms such as "mounted," "configured," "connected," "secured," "screwed," and the like are to be construed broadly, and for example, may be fixedly connected, may be detachably connected, or may be integrally formed, may be mechanically connected, may be electrically connected, may be directly connected, may be indirectly connected through an intermediate medium, may be communication between two elements or an interaction relationship between two elements, unless explicitly defined otherwise, and it will be understood to those of ordinary skill in the art that the above terms have a specific meaning in the present utility model according to circumstances.
Although embodiments of the present utility model have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made therein without departing from the principles and spirit of the utility model, the scope of which is defined in the appended claims and their equivalents.