Structure for improving precision of circular grating encoder
Through the structural design of the circular grating encoder, the problem of cumbersome disassembly and occlusion of the circuit board is solved, and the circuit board is easily disassembled and installed and heat dissipated, which improves the positioning accuracy of the encoder.
Patent Information
- Application Number
- CN202422744186.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-12
- Publication Date
- 2025-08-29
- Estimated Expiration
- 2034-11-12
AI Technical Summary
The circuit board disassembly and assembly process of existing optical absolute encoders is complicated and easy to block the passive grating, which affects the convenience of disassembly and assembly and the heat dissipation effect.
A circular grating encoder structure is designed, using fixed seats, shaft components, circuit board components, chip components and upper cover components. By symmetrically installing the circuit board and setting heat dissipation slots, combined with radially distributed angle chip processing, the circuit board can be flexible disassembled and heat dissipated, and the positioning accuracy is improved.
It realizes convenient disassembly and heat dissipation of the circuit board, improves the positioning accuracy and reliability of the encoder, and avoids the problem of passive grating occlusion of the circuit board.
Smart Images

Figure CN223283671U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of absolute rotary encoders, in particular to a structure for improving the precision of a circular grating encoder. Background Art
[0002] An encoder is a device that converts angle or displacement information into electrical signals for transmission and communication. Encoders are mainly divided into absolute rotary encoders and incremental rotary encoders. Compared with incremental rotary encoders, absolute rotary encoders have the advantages of not requiring counting and having unique position data. Existing optical absolute encoders include a moving grating, an angle chip, a processing circuit, etc. The angle chip is a reflective principle, with the light source and the optical receiving part integrated on the same chip. When light shines on the moving grating, the chrome stripes of the moving grating emit light and project it onto the optical detection part. The moving grating is fixed to the encoder main shaft. When the encoder main shaft rotates, the moving grating rotates accordingly. The chip detects the changes in the stripes on the moving grating and resolves the light signal into a digital signal, thus forming angle data corresponding to the position. To reduce product thickness, absolute rotary encoders place the circuit board below the moving grating, completely obscuring the passive grating. Furthermore, the traditional circuit board wraps around the encoder spindle as a whole. To remove the circuit board, the moving grating must first be removed, making the circuit board removal and assembly process cumbersome. Therefore, it is necessary to create a circular grating encoder structure that improves accuracy to address the above issues. Utility Model Content
[0003] The purpose of the utility model is to provide a structure for improving the precision of a circular grating encoder to solve the problems mentioned in the background technology.
[0004] In order to achieve the above purpose, the present invention provides the following technical solutions:
[0005] A structure for improving the accuracy of a circular grating encoder includes a fixed base, a rotating shaft assembly, a circuit board assembly, a chip assembly, a movable grating, and an upper cover assembly. The rotating shaft assembly is rotatably mounted in the middle of the fixed base, the circuit board assembly is fixed above the fixed base, the chip assembly is fixed above the circuit board assembly and is electrically connected to the circuit board assembly, the movable grating is fixed to the power output end of the rotating shaft assembly and corresponds to the upper part of the chip assembly, the lower end of the upper cover assembly is fixed to the fixed base, and the upper end of the upper cover assembly covers the upper part of the movable grating;
[0006] The fixing base includes a mounting body, a spring piece and a mounting flange. The mounting body is fixed on the mounting flange by screws. The spring piece is arranged between the mounting body and the mounting flange. The shaft assembly is rotatably mounted on the mounting body.
[0007] The upper end of the mounting body is provided with a first mounting groove, a second mounting groove and a wiring groove. The first mounting groove and the second mounting groove are symmetrically arranged on both sides of the rotating shaft assembly. The two ends of the wiring groove are respectively connected to the first mounting groove and the second mounting groove. The circuit board assembly is fixed to the mounting body through the first mounting groove and the second mounting groove.
[0008] The circuit board assembly includes a first circuit board, a second circuit board and a connecting wire. The outer side of the first circuit board is fixed to the top of the installation body by screws, and the inner side of the first circuit board corresponds to the top of the first installation groove. The outer side of the second circuit board is fixed to the top of the installation body by screws, and the inner side of the second circuit board corresponds to the top of the second installation groove. The two ends of the connecting wire are electrically connected to the first circuit board and the second circuit board respectively, and the connecting wire corresponds to the wiring groove. The chip assembly is installed on the first circuit board and the second circuit board.
[0009] Further description of the present invention: The chip assembly includes an angle chip, a processing chip and an interface chip, all of which are electrically connected to the circuit board assembly. The angle chips are arranged in two groups and symmetrically correspond to the two sides of the shaft assembly. The processing chip is electrically connected to the two groups of angle chips respectively, and the interface chip is electrically connected to the processing chip.
[0010] Further description of the utility model: The rotating shaft assembly includes a bearing, a rotating shaft body and a locking ring. The outer side of the bearing is fixed on the fixed seat, and the rotating shaft body is rotatably installed on the inner side of the bearing. The upper end of the rotating shaft body is provided with a limit ring protruding outward, and the limit ring corresponds to the top of the bearing. The inner side of the locking ring is connected to the outer periphery of the lower end of the rotating shaft body through a thread, and the locking ring corresponds to the bottom of the bearing. Two groups of bearings are arranged between the limit ring and the locking ring.
[0011] Further description of the utility model: The upper cover assembly includes an upper cover body and a sealing ring. The lower end of the upper cover body is fixed on the fixed seat, the upper end of the upper cover body covers the upper part of the moving grating, the inner end of the sealing ring is sleeved on the outer periphery of the upper end of the rotating shaft assembly, and the upper end surface of the sealing ring corresponds to the lower inner side of the upper cover body.
[0012] The beneficial effects of the present invention are as follows: the mounting flange is used to secure to a fixed part on the periphery of the rotating shaft being measured, and a spring is provided between the mounting body and the mounting flange to provide a shock-absorbing effect. The provision of the first and second mounting slots enables the first and second circuit boards to be mounted diametrically, that is, symmetrically, on either side of the rotating shaft assembly. Furthermore, the first and second circuit boards are secured to the mounting body via external screws, eliminating obstruction by the passive grating and facilitating flexible assembly and disassembly of the circuit boards. Furthermore, the first and second mounting slots also provide heat dissipation space for the circuit boards. BRIEF DESCRIPTION OF THE DRAWINGS
[0013] Figure 1 It is the overall structural diagram of the utility model;
[0014] Figure 2 It is a cross-sectional view of the utility model;
[0015] Figure 3 This is a partial structural diagram of the utility model (in which the circuit board assembly, chip assembly, dynamic grating and upper cover assembly are hidden);
[0016] Figure 4 This is a partial structural diagram of the utility model (where the dynamic grating and upper cover assembly are hidden);
[0017] Description of reference numerals:
[0018] 1. Fixing seat; 11. Mounting body; 111. First mounting slot; 112. Second mounting slot; 113. Wiring trough; 12. Spring clip; 13. Mounting flange; 2. Shaft assembly; 21. Bearing; 22. Shaft body;
[0019] 221. Limiting ring; 23. Locking ring; 3. Circuit board assembly; 31. First circuit board; 32. Second circuit board; 33. Connecting wire; 4. Chip assembly; 41. Angle chip; 42. Processing chip; 43. Interface chip; 5. Moving grating; 6. Upper cover assembly; 61. Upper cover body; 62. Sealing ring. DETAILED DESCRIPTION
[0020] The present invention will be further described below with reference to the accompanying drawings:
[0021] like Figures 1 to 4 As shown, a structure for improving the accuracy of a circular grating encoder includes a fixed base 1, a rotating shaft assembly 2, a circuit board assembly 3, a chip assembly 4, a moving grating 5, and an upper cover assembly 6. The rotating shaft assembly 2 is rotatably mounted in the middle of the fixed base 1, the circuit board assembly 3 is fixed above the fixed base 1, the chip assembly 4 is fixed above the circuit board assembly 3 and is electrically connected to the circuit board assembly 3, the moving grating 5 is fixed to the power output end of the rotating shaft assembly 2 and corresponds to the upper part of the chip assembly 4, the lower end of the upper cover assembly 6 is fixed to the fixed base 1, and the upper end of the upper cover assembly 6 covers the upper part of the moving grating 5;
[0022] The fixing base 1 includes a mounting body 11, a spring piece 12 and a mounting flange 13. The mounting body 11 is fixed above the mounting flange 13 by screws. The spring piece 12 is arranged between the mounting body 11 and the mounting flange 13. The shaft assembly 2 is rotatably mounted on the mounting body 11.
[0023] The upper end of the mounting body 11 is provided with a first mounting groove 111, a second mounting groove 112, and a wiring groove 113. The first mounting groove 111 and the second mounting groove 112 are symmetrically arranged on both sides of the shaft assembly 2. The two ends of the wiring groove 113 are respectively connected to the first mounting groove 111 and the second mounting groove 112. The circuit board assembly 3 is fixed to the mounting body 11 through the first mounting groove 111 and the second mounting groove 112.
[0024] The circuit board assembly 3 includes a first circuit board 31, a second circuit board 32 and a connecting wire 33. The outer side of the first circuit board 31 is fixed above the installation body 11 by screws, and the inner side of the first circuit board 31 corresponds to the top of the first installation groove 111. The outer side of the second circuit board 32 is fixed above the installation body 11 by screws, and the inner side of the second circuit board 32 corresponds to the top of the second installation groove 112. The two ends of the connecting wire 33 are electrically connected to the first circuit board 31 and the second circuit board 32 respectively. The connecting wire 33 corresponds to the wiring groove 113, and the chip assembly 4 is installed on the first circuit board 31 and the second circuit board 32.
[0025] The mounting flange 13 is used to secure to a fixed part on the periphery of the rotating shaft being measured. A spring 12 is provided between the mounting body 11 and the mounting flange 13 to provide shock absorption. By providing the first mounting slot 111 and the second mounting slot 112, the first and second circuit boards 31, 32 can be mounted diametrically, that is, symmetrically, on either side of the rotating shaft assembly 2. Furthermore, the first and second circuit boards 31, 32 are secured to the mounting body 11 via external screws, preventing them from being obstructed by the passive grating 5 and facilitating flexible assembly and disassembly of the circuit boards. Furthermore, the first and second mounting slots 111, 112 also provide space for heat dissipation.
[0026] The chip assembly 4 includes an angle chip 41, a processing chip 42 and an interface chip 43, all of which are electrically connected to the circuit board assembly 3. The angle chips 41 are arranged in two groups and symmetrically correspond to the two sides of the shaft assembly 2. The processing chip 42 is electrically connected to the two groups of angle chips 41 respectively, and the interface chip 43 is electrically connected to the processing chip 42.
[0027] The angle chip 41 is reflective, with the light source and optical receiving part integrated into the same chip. When light shines on the moving grating 5, the chrome stripes on the moving grating 5 reflect the light and project it onto the optical detection part. The moving grating 5 is fixed to the encoder shaft assembly 2. When the shaft assembly 2 rotates, the moving grating 5 rotates accordingly. The angle chip 41 detects the changes in the stripes on the moving grating 5 and analyzes the light signal into a digital signal, thus forming angle data corresponding to the position. Two groups of angle chips 41 are set up and placed symmetrically on both sides of the shaft assembly 2. The processing chip 42 reads the angle data of the two groups of angle chips 41, takes the average of the two angle data, and then packages them into the relevant communication protocol. After processing, it is sent to the host computer through the interface chip 43. The advantage of this design is that the two groups of angle chips 41 are radially distributed, and the angle data obtained by the two light receiving elements are processed. The fitted angle data can greatly improve the encoder positioning accuracy.
[0028] The rotating shaft assembly 2 includes a bearing 21, a rotating shaft body 22 and a locking ring 23. The outer side of the bearing 21 is fixed on the fixed seat 1, and the rotating shaft body 22 is rotatably installed on the inner side of the bearing 21. The upper end of the rotating shaft body 22 is provided with a limiting ring 221 protruding outward, and the limiting ring 221 corresponds to the upper side of the bearing 21. The inner side of the locking ring 23 is connected to the outer periphery of the lower end of the rotating shaft body 22 through a thread, and the locking ring 23 corresponds to the lower side of the bearing 21. Two groups of bearings 21 are arranged between the limiting ring 221 and the locking ring 23.
[0029] The upper cover assembly 6 includes an upper cover body 61 and a sealing ring 62. The lower end of the upper cover body 61 is fixed on the fixed seat 1, and the upper end of the upper cover body 61 covers the upper part of the moving grating 5. The inner end of the sealing ring 62 is sleeved on the outer periphery of the upper end of the rotating shaft assembly 2, and the upper end surface of the sealing ring 62 corresponds to the lower inner side of the upper cover body 61.
[0030] The sealing ring 62 can effectively prevent dust from entering the encoder, thereby preventing dust from adversely affecting the encoder's detection results.
[0031] The above does not limit the technical scope of the present invention. Any modifications, equivalent changes and modifications made to the above embodiments based on the technical essence of the present invention are still within the scope of the technical solution of the present invention.
Claims
1. A structure for improving the accuracy of a circular grating encoder, characterized by: The device comprises a fixed seat, a rotating shaft assembly, a circuit board assembly, a chip assembly, a dynamic grating, and an upper cover assembly. The rotating shaft assembly is rotatably mounted in the middle of the fixed seat. The circuit board assembly is fixed above the fixed seat. The chip assembly is fixed above the circuit board assembly and electrically connected to the circuit board assembly. The dynamic grating is fixed to the power output end of the rotating shaft assembly and corresponds to the upper part of the chip assembly. The lower end of the upper cover assembly is fixed to the fixed seat. The upper end of the upper cover assembly covers the upper part of the dynamic grating. The fixing base includes a mounting body, a spring piece and a mounting flange, the mounting body is fixed above the mounting flange by screws, the spring piece is arranged between the mounting body and the mounting flange, and the rotating shaft assembly is rotatably mounted on the mounting body; The upper end of the mounting body is provided with a first mounting groove, a second mounting groove, and a wiring groove. The first mounting groove and the second mounting groove are symmetrically arranged on both sides of the rotating shaft assembly. The two ends of the wiring groove are respectively connected to the first mounting groove and the second mounting groove. The circuit board assembly is fixed to the mounting body through the first mounting groove and the second mounting groove. The circuit board assembly includes a first circuit board, a second circuit board and a connecting wire. The outer side of the first circuit board is fixed above the mounting body by screws, and the inner side of the first circuit board corresponds to the top of the first mounting groove. The outer side of the second circuit board is fixed above the mounting body by screws, and the inner side of the second circuit board corresponds to the top of the second mounting groove. The two ends of the connecting wire are electrically connected to the first circuit board and the second circuit board respectively. The connecting wire corresponds to the wiring groove, and the chip assembly is mounted on the first circuit board and the second circuit board.
2. The structure for improving the accuracy of a circular grating encoder according to claim 1, characterized in that: The chip assembly includes an angle chip, a processing chip and an interface chip, all of which are electrically connected to the circuit board assembly. The angle chips are arranged in two groups and symmetrically correspond to the two sides of the shaft assembly. The processing chip is electrically connected to the two groups of angle chips respectively, and the interface chip is electrically connected to the processing chip.
3. The structure for improving the accuracy of a circular grating encoder according to claim 1, characterized in that: The rotating shaft assembly includes a bearing, a rotating shaft body and a locking ring. The outer side of the bearing is fixed on the fixed seat, and the rotating shaft body is rotatably installed on the inner side of the bearing. The upper end of the rotating shaft body is provided with a limiting ring protruding outward, and the limiting ring corresponds to the upper side of the bearing. The inner side of the locking ring is threadedly connected to the outer periphery of the lower end of the rotating shaft body, and the locking ring corresponds to the lower side of the bearing. The bearings are arranged in two groups between the limiting ring and the locking ring.
4. The structure for improving the accuracy of a circular grating encoder according to claim 1, characterized in that: The upper cover assembly includes an upper cover body and a sealing ring. The lower end of the upper cover body is fixed on the fixed seat, the upper end of the upper cover body covers the upper part of the dynamic grating, the inner end of the sealing ring is sleeved on the outer periphery of the upper end of the rotating shaft assembly, and the upper end surface of the sealing ring corresponds to the lower inner side of the upper cover body.