Rotor runout detection device
Technical Field
The utility model relates to the field of automatic machinery, in particular to a rotor runout detection device.
Background
The motor rotor is also a rotating part in the motor, and in the production process, the structure of clicking the motor rotor needs to achieve higher precision, wherein the structure comprises the rotating concentricity of the rotor, and in order to measure the rotating concentricity of the rotor, the operation mode of the conventional measuring equipment is complex, and the detection cannot be performed quickly.
Disclosure of utility model
The utility model mainly aims to provide a rotor runout detection device.
In order to achieve the above purpose, the technical scheme adopted by the utility model is as follows:
The utility model provides a rotor detection device that beats, includes the workstation body, the controller subassembly, high detection subassembly, beats detection subassembly and the fixed subassembly of centre gripping, fixed mounting has the fixed subassembly of centre gripping on the up end of this workstation body, has erect high detection subassembly directly over the fixed subassembly of this centre gripping, and this high detection subassembly fixed mounting is on the workstation body, and this detection subassembly that beats is located on the workstation body of the fixed subassembly one side of centre gripping, still fixed mounting has the controller subassembly on this workstation body.
Further, the clamping and fixing assembly comprises a rotating motor, a motor fixing frame, a rotating base and a pneumatic clamping seat, wherein the rotating motor is fixedly installed on the motor fixing frame, the motor fixing frame and the rotating base are fixedly installed on the workbench body, the rotating motor is in transmission connection with the rotating base through a transmission belt and a transmission wheel, and the pneumatic clamping seat is in transmission connection with the rotating base.
Further, the height detection assembly comprises a detection fixing frame, an angle adjusting plate and a laser detection device, wherein the angle adjusting plate is fixedly installed on the detection fixing frame, and the laser detection device is fixedly installed on the angle adjusting plate.
Further, the detection subassembly that beats includes servo electric jar, the installation mount, the linear slide rail, it detects the connecting plate to beat, translation device and detector of beating, this installation mount fixed mounting is on the workstation body, fixed mounting has linear slide rail and servo electric jar on this installation mount, the output shaft and the linear slide rail of this servo electric jar are parallel to each other, the output fixedly connected with of this servo electric jar detects the connecting plate that beats, this lateral surface that beats and detects the connecting plate passes through slider and linear slide rail sliding connection, this is beated and is detected and have translation device on the connecting plate, this translation device's output fixed mounting has the detector of beating.
Further, the jitter detector is a contact jitter measuring device.
Further, the translation device is one of a linear air cylinder, a linear electric cylinder and a screw rod linear guide rail.
Compared with the prior art, the utility model has the beneficial effects that:
According to the utility model, the height of the rotor is determined through the height detection assembly, the height of the rotor is adjusted through the runout detection assembly according to the height of the rotor, the runout detection is carried out on the rotor, the detection information is displayed through the controller, the control of the whole device is realized through the controller, the effect of automatic runout detection is realized, and the detection efficiency is improved.
Drawings
FIG. 1 is a perspective view of the present utility model;
FIG. 2 is a perspective view of a clamping and fixing assembly according to the present utility model;
fig. 3 is a perspective view of the runout detection assembly of the present utility model.
Reference numerals
1. The device comprises a workbench body, a controller assembly, a height detection assembly, a detection fixing frame, an angle adjusting plate, a laser detection device, a jump detection assembly, a servo electric cylinder, a mounting fixing frame, a linear sliding rail, a jump detection connecting plate, a translation device, a jump detector, a clamping fixing assembly, a rotating motor, a motor fixing frame, a rotating base, a pneumatic clamping seat, a driving belt and a driving wheel, wherein the height detection assembly, the detection fixing frame, the angle adjusting plate, the laser detection device, the jump detection assembly, the servo electric cylinder, the mounting fixing frame, the linear sliding rail, the jump detection connecting plate, the translation device, the jump detection device, the clamping fixing assembly, the rotating motor, the motor and the driving wheel are arranged in sequence, and the driving wheel is arranged in sequence.
Detailed Description
The preferred embodiments of the present utility model will be described in detail below with reference to the attached drawings so that the advantages and features of the present utility model can be more easily understood by those skilled in the art, thereby making clear and defining the scope of the present utility model.
Referring to fig. 1-3, a rotor runout detecting device comprises a workbench body 1, a controller component 2, a height detecting component 3, a runout detecting component 4 and a clamping fixing component 5, wherein the clamping fixing component 5 is fixedly installed on the upper end face of the workbench body 1, the height detecting component 3 is erected right above the clamping fixing component 5, the height detecting component 3 is fixedly installed on the workbench body 1, the runout detecting component 4 is arranged on the workbench body 1 on one side of the clamping fixing component 5, and the controller component 2 is fixedly installed on the workbench body 1.
The clamping and fixing assembly 5 comprises a rotating motor 51, a motor fixing frame 52, a rotating base 53 and a pneumatic clamping seat 54, wherein the rotating motor 51 is fixedly installed on the motor fixing frame 52, the motor fixing frame 52 and the rotating base 53 are fixedly installed on the workbench body 1, the rotating motor 51 and the rotating base 53 are in transmission connection through a transmission belt 55 and a transmission wheel 56, and the pneumatic clamping seat 54 is in transmission connection with the rotating base 53.
The rotating motor 51 is used for driving the rotor to rotate, the rotor is rapidly clamped through the pneumatic clamping seat 54, and the jumping amount of the outer ring of the rotor is conveniently detected through the rotation of the rotor.
The height detection assembly 3 comprises a detection fixing frame 31, an angle adjusting plate 32 and a laser detection device 33, wherein the angle adjusting plate 32 is fixedly installed on the detection fixing frame 31, and the laser detection device 33 is fixedly installed on the angle adjusting plate 32.
The laser detection device 33 is used for positioning the height information of the rotor, positioning the rotor position according to the height information of the rotor, and simultaneously, facilitating automatic adjustment of the monitoring position of the runout detection assembly 4 according to the rotor position information.
The jump detection assembly 4 comprises a servo electric cylinder 41, a mounting fixing frame 42, a linear sliding rail 43, a jump detection connecting plate 44, a translation device 45 and a jump detector 46, wherein the mounting fixing frame 42 is fixedly arranged on the workbench body 1, the linear sliding rail 43 and the servo electric cylinder 41 are fixedly arranged on the mounting fixing frame 42, an output shaft of the servo electric cylinder 41 is parallel to the linear sliding rail 43, the jump detection connecting plate 44 is fixedly connected with an output end of the servo electric cylinder 41, a side end face of the jump detection connecting plate 44 is in sliding connection with the linear sliding rail 43 through a sliding block, the translation device 45 is fixedly arranged on the jump detection connecting plate 44, and the jump detector 46 is fixedly arranged at an output end of the translation device 45.
The runout detector 46 is a contact runout measuring device.
The servo electric cylinder 41 adjusts the height of the runout detector 46 according to the rotor position information, guides the runout detector through the linear sliding rail 43, and after the height is matched, contacts the contact runout measuring device with the outer ring surface of the rotor through the translation device 45 to detect, measures different points of the outer ring surface of the rotor, and determines the runout amount of the rotor.
The translation device 45 is one of a linear cylinder, a linear electric cylinder and a screw rod linear guide rail.
The above description is merely of preferred embodiments of the present utility model, and the scope of the present utility model is not limited to the above embodiments, but all equivalent modifications or variations according to the present disclosure will be within the scope of the claims.