Robot grinding device based on PLC
Through the PLC-based robot grinding device, the gravity of the magnetic displacement sensor and angle sensor calculation tool, and the thrust of the cylinder drive part is controlled by the electrical proportional valve, the problems of poor control accuracy and insufficient pressure feedback at different spatial angles are solved, and high-precision constant contact force control is achieved.
Patent Information
- Application Number
- CN202422557364.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-22
- Publication Date
- 2025-08-19
- Estimated Expiration
- 2034-10-22
AI Technical Summary
The existing constant force grinding device has load weight affects the output pressure at different spatial angles, poor control accuracy, and lacks pressure feedback function, so it is impossible to accurately understand the current output pressure.
Using a PLC-based robot grinding device, combining magnetic displacement sensors, electrical proportional valves, solenoid valves and angle sensors, the gravity of the tool in three-dimensional space is calculated by the PLC controller to accurately control the thrust of the cylinder drive member to maintain constant contact force.
It realizes the constant contact force with the workpiece under any spatial attitude, has high-precision control and pressure feedback functions, automatically compensates for the impact of load weight, and improves control accuracy.
Smart Images

Figure CN223236047U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the field of grinding equipment, and in particular relates to a PLC-based robot grinding device. Background Art
[0002] Currently, equipment used to polish industrial products such as die-castings, injection molded parts, and machined parts requires constant force control to maintain uniformity in the surface texture and constant contact force along all polishing paths. However, most constant force polishing devices on the market simply use a cylinder to provide thrust, using this thrust to keep the polishing device in close contact with the workpiece surface. The force applied to the workpiece surface increases as the cylinder is compressed. Currently, traditional floating constant force polishing devices have the following problems:
[0003] 1. The load weight at different spatial angles will affect the output pressure;
[0004] 2. Poor control accuracy;
[0005] 3. It does not have pressure feedback function and cannot accurately know the current output pressure; Utility Model Content
[0006] In order to overcome the above-mentioned shortcomings of the prior art, the purpose of the present invention is to provide a PLC-based robot grinding device.
[0007] The technical solution adopted by the utility model to solve its technical problems is:
[0008] A PLC-based robotic polishing device includes a device housing, wherein a mounting block, a cylinder drive member, a magnetic displacement sensor, a linear guide rail, an electric proportional valve, a solenoid valve, an angle sensor, and a PLC controller are arranged in the device housing;
[0009] The PLC controller is electrically connected to the magnetic displacement sensor, the electrical proportional valve, the solenoid valve, and the angle sensor;
[0010] The driving end of the cylinder driving member is connected to the mounting block, the mounting block is slidably matched with the linear guide rail, and a floating flange is provided on the mounting block;
[0011] The magnetic displacement sensor is used to detect the displacement of the driving end of the cylinder driving member;
[0012] The cylinder driving component is connected to the electrical proportional valve and the electromagnetic valve respectively.
[0013] Preferably, the device housing includes a base plate, an outer shell and an upper cover, the outer shell is connected to the base plate and forms a cavity for placing the mounting block, cylinder drive, magnetic displacement sensor, linear guide, electric proportional valve, solenoid valve, angle sensor and PLC controller, the upper cover is installed at the cavity mouth of the cavity, and an opening is provided at the upper cover, the floating flange is relatively arranged on the outside of the device housing, and one end of the floating flange passes through the opening and is connected to the mounting block.
[0014] Preferably, connecting bolts for connecting the upper cover are provided at the four corners of the base plate, and the outer shell is sleeved on the connecting bolts.
[0015] Preferably, the cavity is divided into a first area, a second area, a third area and a fourth area, wherein the first area, the second area, the third area and the fourth area are arranged around the center of the cavity in a clockwise direction;
[0016] The electric proportional valve, solenoid valve, angle sensor and PLC controller are arranged in the first area, the cylinder drive component is arranged in the second area, the magnetic displacement sensor is arranged in the third area, and the linear guide rail and mounting block are arranged in the fourth area;
[0017] The cylinder driving member includes a cylinder piston rod, which is the driving end of the cylinder driving member. One end of the cylinder piston rod is connected to the mounting block, and the detection end of the magnetic displacement sensor is arranged toward the cylinder piston rod.
[0018] Preferably, a mounting seat for fixing the cylinder drive component is provided in the second area.
[0019] Preferably, an elastic dust cover is provided at the connection between the floating flange and the mounting block, and the elastic dust cover is provided at the opening.
[0020] Preferably, it further comprises a limit block, wherein the limit block is provided at both ends of the linear guide rail;
[0021] The linear guide rail includes two guide rail parts arranged in parallel, and the limit block is arranged between the two guide rail parts.
[0022] Preferably, a positioning pin and a stopper are provided on the limit block, the limit block is connected to the device housing via the positioning pin, the stopper is made of a soft material, and the stopper is arranged toward the mounting block.
[0023] Compared with the prior art, the beneficial effects of the present invention include:
[0024] This application uses an angle sensor to identify the position state of the entire grinding device in three-dimensional space, and then uses a PLC controller combined with the above-mentioned control method to calculate the gravity of the tool in the corresponding spatial position, and then uses a precision electrical proportional valve to accurately control the thrust provided by the cylinder drive. In this way, in any posture in space, the cylinder can compensate for the gravity of the tool while following user requirements to change the thrust in real time, thereby maintaining a constant contact force with the workpiece. BRIEF DESCRIPTION OF THE DRAWINGS
[0025] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following briefly introduces the drawings required for use in the description of the embodiments. Obviously, the drawings described below are some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.
[0026] Figure 1 It is a front view of the utility model.
[0027] Figure 2 for Figure 1 AA section view of the .
[0028] Figure 3 This is the internal structure diagram of the utility model.
[0029] Figure 4 It is a schematic diagram of the structural decomposition of the present utility model.
[0030] Figure 5 It is a schematic diagram of the present invention in an inclined state relative to the horizontal plane.
[0031] in:
[0032] 1-Mounting block, 2-Cylinder drive, 3-Magnetic displacement sensor, 4-Linear guide, 5-Electric proportional valve, 6-Solenoid valve, 7-Angle sensor, 8-Floating flange, 9-Base plate, 10-Casing, 11-Upper cover, 12-Connecting bolts, 13-Limit block, 14-Stop block, 15-Opening, 16-Mounting seat. DETAILED DESCRIPTION
[0033] In order to more clearly understand the above-mentioned purposes, features and advantages of the present invention, the present invention is described in detail below in conjunction with the accompanying drawings and specific embodiments. It should be noted that, in the absence of conflict, the embodiments of this application and the features in the embodiments can be combined with each other. In the following description, many specific details are set forth in order to fully understand the present invention. The embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments in the present invention, all other embodiments obtained by ordinary technicians in this field without making creative work are within the scope of protection of the present invention.
[0034] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as those commonly understood by those skilled in the art in the art of the present invention. The terms used herein in the specification of the present invention are only for the purpose of describing specific embodiments and are not intended to limit the present invention.
[0035] Example:
[0036] like Figure 1-4 As shown, this embodiment provides a PLC-based robotic grinding device, including a device housing, in which a mounting block 1, a cylinder drive 2, a magnetic displacement sensor 3, a linear guide 4, an electric proportional valve 5, a solenoid valve 6, an angle sensor 7 and a PLC controller are arranged;
[0037] The PLC controller is electrically connected to the magnetic displacement sensor 3, the electrical proportional valve 5, the solenoid valve 6, and the angle sensor 7;
[0038] The driving end of the cylinder driving member 2 is connected to the mounting block 1, the mounting block 1 is in sliding cooperation with the linear guide rail 4, and a floating flange 8 is provided on the mounting block 1;
[0039] The magnetic displacement sensor 3 is used to detect the displacement of the driving end of the cylinder driving member 2;
[0040] The cylinder driving component 2 is connected to the electric proportional valve 5 and the solenoid valve 6 respectively.
[0041] In the above structure, the floating flange 8 is connected to the external tool. When the tool is working with the outside world, its force is transmitted to the cylinder driver 2 through the mounting block 1 and the linear guide 4, causing the driving end of the cylinder driver 2 to be displaced. The displacement value is monitored in real time by the magnetic displacement sensor 3, and is fed back to the PLC controller for precise control of the electric proportional valve 5 to achieve constant force control. At the same time, this embodiment needs to reduce its own friction to achieve the effect of constant force control. Therefore, the linear guide 4 and the cylinder driver 2 used have low friction characteristics. The comprehensive performance is reflected in that the overall grinding device can be tilted without applying external force, and the internal structure of the grinding device is displaced under its own gravity.
[0042] The specific structure of the device shell of this embodiment is as follows:
[0043] The device housing includes a base plate 9, an outer shell 10 and an upper cover 11. The outer shell 10 is connected to the base plate 9 and forms a cavity for placing the mounting block 1, the cylinder drive 2, the magnetic displacement sensor 3, the linear guide 4, the electric proportional valve 5, the solenoid valve 6, the angle sensor 7 and the PLC controller. The upper cover 11 is installed at the cavity mouth of the cavity. An opening 15 is provided at the upper cover 11. The floating flange 8 is relatively arranged on the outside of the device housing. One end of the floating flange 8 passes through the opening and is connected to the mounting block 1.
[0044] Specifically, connecting bolts 12 for connecting the upper cover 11 are provided at the four corners of the bottom plate 9 , and the outer shell 10 is sleeved on the connecting bolts 12 .
[0045] In the above structure, the base plate 9, the outer shell 10 and the upper cover 11 are made of aluminum alloy, and are connected by connecting bolts 12, and the outer shell 10 is sleeved and nested between the base plate 9 and the upper cover 11, which is convenient for installation and can also ensure the overall lightness.
[0046] The device components of this embodiment adopt a modular layout. Specifically, the cavity of the device housing is divided into a first area, a second area, a third area, and a fourth area. The first area, the second area, the third area, and the fourth area are arranged clockwise around the center of the cavity.
[0047] The electric proportional valve 5, the solenoid valve 6, the angle sensor 7 and the PLC controller are arranged in the first area, the cylinder drive 2 is arranged in the second area, the magnetic displacement sensor 3 is arranged in the third area, and the linear guide 4 and the mounting block 1 are arranged in the fourth area;
[0048] The cylinder driving component 2 includes a cylinder piston rod, which is the driving end of the cylinder driving component 2. One end of the cylinder piston rod is connected to the mounting block 1, and the detection end of the magnetic displacement sensor 3 is arranged toward the cylinder piston rod.
[0049] Specifically, a mounting seat 16 for fixing the cylinder driving component 2 is provided in the second area.
[0050] The above structure can ensure that the various device components are arranged compactly within the device housing. At the same time, the various device components are arranged in various areas so that they do not interfere with each other while achieving their respective functions, which is convenient for installation.
[0051] In this embodiment, an elastic dust cover is provided at the connection between the floating flange 8 and the mounting block 1. The elastic dust cover is provided at the opening. The elastic dust cover covers and seals the opening. When the mounting block 1 moves relative to the opening, the elastic structure of the elastic dust cover does not affect the movement process.
[0052] This embodiment further includes a limit block 13, which is provided at both ends of the linear guide rail 4;
[0053] The linear guide rail 4 includes two parallel guide rail members, and the limit block 13 is arranged between the two guide rail members.
[0054] Specifically, a positioning pin and a stopper 14 are provided on the limit block 13 . The limit block 13 is connected to the device housing via the positioning pin. The stopper 14 is made of a soft material and is arranged toward the mounting block 1 .
[0055] In the above limiting structure, the positioning pin ensures the accuracy of the mounting block 1 under the action of repeated impact on the limiting block 13 during operation; at the same time, the limiting block 13 is made of aluminum alloy, and the stopper 14 installed at its front end is made of soft material to reduce the impact and noise caused by the collision.
[0056] At the same time, the utility model also includes a control method for a PLC-based robotic grinding device, based on the above-mentioned PLC-based robotic grinding device, comprising the following steps:
[0057] S1. Determine the load gravity on the floating flange 8, where the parallel component of the load gravity is calculated as: F parallel = mg*sin(θ), the load gravity on the floating flange 8 is obtained; where m is the mass of the object, g is the acceleration of gravity, and θ is the inclination angle of the inclined plane. Figure 5 Specifically, the angle sensor 7 can detect the position state of the grinding device in three-dimensional space to obtain the inclination angle of the workpiece and the end face of the floating flange 8, that is, the inclination angle of the bevel.
[0058] S2. Add the floating flange output pressure setting value and the load gravity, and calculate the output direction of the actuator cylinder based on the positive or negative value of the value;
[0059] S3. According to the above output direction, it is determined whether the driving end of the cylinder driving part 2 is a thrust or a pull. According to the formula: the thrust on the driving end of the cylinder driving part 2 is: F1 = π / 4*D2*P, the pull on the driving end of the cylinder driving part 2 is: F2 = π / 4*(D2-d 2 )*P, where F1 is the thrust when the driving end of the cylinder driving member 2 is pushed out, F2 is the pulling force when the driving end of the cylinder driving member 2 is pulled back, D is the inner diameter of the cylinder tube of the cylinder driving member 2, d is the diameter of the cylinder piston rod, and P is the pressure of the input air source of the cylinder driving member 2 for calculating the output air pressure required;
[0060] S4, burr friction coefficient compensation in the thrust and pull directions;
[0061] S5, according to the calculated required air pressure and direction, output analog quantities to control the output air pressure of the electrical proportional valve 5 and the switching direction of the solenoid valve 6;
[0062] S6. By feeding back the actual output pressure from the electric proportional valve 5, the current output pressure is obtained by reverse calculation and serves as a feedback prompt.
[0063] Specifically, in step S4, the friction force is determined as follows:
[0064] s41. Gravity components: First calculate the total gravity of the object on the inclined surface of the floating flange 8, and then decompose it into two components parallel and perpendicular to the inclined surface. The formula is as follows:
[0065] Parallel component: F parallel = mg*sin(θ);
[0066] Vertical component: F normal = mg*cos(θ);
[0067] Where m is the mass of the object, g is the acceleration due to gravity, and θ is the inclination angle of the inclined plane.
[0068] s42. Determine normal pressure: Normal pressure is equal to the component of the object's gravity perpendicular to the inclined plane, N = F normal ;
[0069] s43. Determine friction: The magnitude of friction depends on the friction coefficient (μ) and the normal pressure on the inclined surface, F friction =μ*N, and the burr friction coefficient is compensated according to the above friction force.
[0070] Through the above structure and control method, the grinding device first uses the angle sensor 7 to identify the posture state of the entire grinding device in three-dimensional space, and then uses the PLC controller combined with the above control method content to calculate the gravity of the tool in the corresponding spatial posture, and then accurately controls the thrust provided by the cylinder drive 2 through the precision electrical proportional valve 5. In this way, the cylinder can compensate for the gravity of the tool in any spatial posture while following the user's requirements to change the thrust in real time, thereby maintaining a constant contact force with the workpiece. The angle sensor 7 of the present application recognizes the angle and can maintain a constant output pressure at any spatial angle, automatically calculating and compensating for the influence of the load weight; by compensating for the burr friction coefficient in the thrust and pull directions, high-precision control is achieved; at the same time, the magnetic displacement sensor 3 enables it to have a pressure feedback function, accurately knowing the current actual output pressure.
[0071] The above description is only a preferred embodiment of the present invention and does not limit the present invention in any form. Therefore, any modifications, equivalent changes and modifications made to the above embodiments based on the technical essence of the present invention without departing from the content of the technical solution of the present invention are still within the scope of the technical solution of the present invention.
Claims
1. A PLC-based robotic polishing device, characterized in that: include: A device housing, wherein a mounting block, a cylinder drive, a magnetic displacement sensor, a linear guide, an electric proportional valve, a solenoid valve, an angle sensor, and a PLC controller are disposed within the device housing; The PLC controller is electrically connected to the magnetic displacement sensor, the electrical proportional valve, the solenoid valve, and the angle sensor; The driving end of the cylinder driving member is connected to the mounting block, the mounting block is slidably matched with the linear guide rail, and a floating flange is provided on the mounting block; The magnetic displacement sensor is used to detect the displacement of the driving end of the cylinder driving member; The cylinder driving component is connected to the electrical proportional valve and the electromagnetic valve respectively.
2. The PLC-based robotic polishing device according to claim 1, characterized in that: The device housing includes a base plate, an outer shell and an upper cover. The outer shell is connected to the base plate and forms a cavity for placing the mounting block, cylinder drive, magnetic displacement sensor, linear guide, electric proportional valve, solenoid valve, angle sensor and PLC controller. The upper cover is installed at the cavity mouth of the cavity. An opening is provided on the upper cover. The floating flange is relatively arranged on the outside of the device housing. One end of the floating flange passes through the opening and is connected to the mounting block.
3. The PLC-based robot polishing device according to claim 2, characterized in that: Connecting bolts for connecting the upper cover are provided at the four corners of the bottom plate, and the outer shell is sleeved on the connecting bolts.
4. The PLC-based robotic polishing device according to claim 2, characterized in that: The cavity is divided into a first area, a second area, a third area and a fourth area, wherein the first area, the second area, the third area and the fourth area are arranged around the center of the cavity in a clockwise direction; The electric proportional valve, solenoid valve, angle sensor and PLC controller are arranged in the first area, the cylinder drive component is arranged in the second area, the magnetic displacement sensor is arranged in the third area, and the linear guide rail and mounting block are arranged in the fourth area; The cylinder driving member includes a cylinder piston rod, which is the driving end of the cylinder driving member. One end of the cylinder piston rod is connected to the mounting block, and the detection end of the magnetic displacement sensor is arranged toward the cylinder piston rod.
5. The PLC-based robot polishing device according to claim 4, characterized in that: A mounting seat for fixing the cylinder driving component is provided in the second area.
6. The PLC-based robot polishing device according to claim 2, characterized in that: An elastic dust-proof sleeve is provided at the connection between the floating flange and the mounting block, and the elastic dust-proof sleeve is arranged at the opening.
7. The PLC-based robotic polishing device according to claim 1, characterized in that: It also includes limit blocks, which are arranged at both ends of the linear guide rail; The linear guide rail includes two guide rail parts arranged in parallel, and the limit block is arranged between the two guide rail parts.
8. The PLC-based robotic polishing device according to claim 7, characterized in that: The limit block is provided with a positioning pin and a stopper, the limit block is connected to the device housing through the positioning pin, the stopper is made of soft material, and the stopper is arranged toward the mounting block.
Citation Information
Cited By
Robot grinding device based on PLC and control method
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