Optical Encoder
The optical encoder improves light reception and sensitivity by using a reflecting unit with inclined surfaces and offset light receiving groups, effectively addressing light reduction and phase shift issues in reflective encoders.
Patent Information
- Application Number
- JP2023503733
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-03-04
- Filing Date
- 2022-02-22
- Publication Date
- 2025-12-01
- Estimated Expiration
- 2042-02-22
AI Technical Summary
Reflective optical encoders face challenges with reduced light incidence on the light receiving unit, which can lead to decreased sensitivity and difficulty in handling phase shifts and foreign matter detection.
The optical encoder employs a reflecting unit with multiple M code areas having different inclined surfaces and a light receiving unit with offset light receiving groups to enhance light reception, allowing for improved light capture and phase shift handling.
This configuration increases light reception by approximately two times, enhances sensitivity, and improves resolution while addressing phase shifts and foreign matter interference.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present disclosure relates generally to optical encoders, and more particularly to reflective optical encoders. [Background technology]
[0002] Patent Document 1 discloses a reflective optical encoder. This reflective optical encoder includes a light source, a reflective scale, a light detection unit, and a calculation unit. The reflective scale is a disk attached to the rotating shaft that is the object to be measured. In this reflective optical encoder, reflected light from two first reflecting units on the reflective scale is received by two first light receiving units in the light detection unit. In addition, in this reflective optical encoder, reflected light from two second reflecting units that are tilted differently from the first reflecting units is received by two second light receiving units in the light detection unit. The calculation unit performs calculations based on the outputs of the first light receiving unit and the second light receiving unit. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2011-145118 Summary of the Invention
[0004] However, a reflective optical encoder is easier to make thinner than a transmissive optical encoder. However, a reflective optical encoder is prone to a reduction in the amount of light incident on the light receiving unit. In particular, when attempting to provide a function to deal with phase shifts in the received light signal or to detect errors due to the inclusion of foreign matter, there is a concern that the sensitivity may decrease due to an insufficient amount of light received by the light receiving unit.
[0005] The present disclosure has been made in view of the above-mentioned circumstances, and aims to provide an optical encoder that can improve the insufficient amount of light received by the light receiving section.
[0006] An optical encoder according to one embodiment of the present disclosure includes a light source, a reflecting unit, and a light receiving unit. The reflecting unit has multiple reflecting areas including multiple M code areas arranged in a line according to a specific bit pattern representing an M code. The reflecting unit displaces in response to movement of an object to reflect light from the light source at an area of the multiple M code areas corresponding to n bits (n is a natural number). The light receiving unit receives the reflected light from the reflecting unit and photoelectrically converts the reflected light. The multiple M code areas have a first surface corresponding to first code information, which is one of the bit information of the M code, and a second surface corresponding to second code information, which is one of the bit information of the M code, and has a sloped structure different from that of the first surface. The light receiving unit includes a first light receiving group and a second light receiving group. The first light receiving group includes multiple first light receiving elements arranged in one direction to receive the reflected light reflected by the first surface. The second light receiving group is disposed farther from the reflecting portion than the first light receiving group and includes a plurality of second light receiving elements arranged along the one direction so as to receive the reflected light reflected by the second surface. The first light receiving group and the second light receiving group are disposed such that the positions of the plurality of first light receiving elements and the positions of the plurality of second light receiving elements are shifted from each other in the one direction.
[0007] An optical encoder according to another aspect of the present disclosure includes a light source, a reflecting unit, and a light receiving unit. The reflecting unit has a plurality of reflecting areas including a plurality of code areas arranged in a row according to a specific bit pattern. The reflecting unit displaces in response to the movement of an object, and reflects light from the light source at an area of the plurality of code areas corresponding to n bits (n is a natural number). The light receiving unit receives reflected light from the reflecting unit and photoelectrically converts the reflected light. The reflecting unit has three or more types of reflecting areas having different inclined structures. The light receiving unit has three or more light receiving groups that receive light corresponding to the three or more types of reflecting areas, respectively. The plurality of code regions have different slope structures every m bits (m is a natural number smaller than n), and are arranged such that adjacent bit patterns in the m-bit unit do not overlap. [Brief explanation of the drawings]
[0008] [Figure 1]1A is a schematic perspective view of a main part of an optical encoder according to one embodiment, and FIG. 1B is a schematic perspective view of a rotating plate and a part of a measurement target in the optical encoder according to the embodiment. [Figure 2] FIG. 2 is a diagram for explaining the positional relationship between a reflecting portion and a light receiving portion in the optical encoder. [Figure 3] FIG. 3 is a diagram illustrating a manufacturing process of the reflecting portion of the optical encoder. [Figure 4] FIG. 4 is a schematic diagram showing a reflecting portion of a comparative example for explaining advantages of the optical encoder of the same embodiment. [Figure 5] 5A to 5C are diagrams illustrating the inclined structure of the reflecting portion in the first modification of the optical encoder. [Figure 6] FIG. 6 is a diagram for explaining the positional relationship between the reflecting portion and the light receiving portion in the second modification of the optical encoder. [Figure 7] FIG. 7 is a diagram for explaining the positional relationship between the reflecting portion and the light receiving portion in the third modification of the optical encoder. [Figure 8] FIG. 8 is a diagram for explaining the positional relationship between the reflecting portion and the light receiving portion in the fourth modification of the optical encoder. [Figure 9] FIG. 9 is a diagram for explaining the positional relationship between the reflecting portion and the light receiving portion in the fifth modification of the optical encoder. [Figure 10] FIG. 10 is a diagram for explaining the positional relationship between the reflecting portion and the light receiving portion in another application of the fifth modification of the optical encoder. [Figure 11] FIG. 11 is a diagram for explaining the positional relationship between the reflecting portion and the light receiving portion in yet another application of the fifth modification of the optical encoder. [Figure 12] FIG. 12 is a schematic side view of a reflecting portion in another modified example of the optical encoder. [Figure 13] 13A and 13B are schematic side views of a reflecting portion in another modified example of the optical encoder. [Figure 14]FIG. 14 is a schematic cross-sectional view of a main part of a sixth modification of the optical encoder. [Figure 15] FIG. 15 is a diagram for explaining the positional relationship between the reflecting portion and the light receiving portion in the sixth modification of the above embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0009] (Embodiment) The optical encoder 1 according to this embodiment will be described below with reference to Figures 1A to 3. The drawings used in the following embodiments are all schematic drawings, and the ratios of the sizes and thicknesses of the components in the drawings do not necessarily reflect the actual dimensional ratios.
[0010] (1) Overview First, an overview of an optical encoder 1 according to this embodiment will be described with reference to FIGS. 1A to 2. FIG.
[0011] As an example, the optical encoder 1 according to one aspect of this embodiment is a rotary encoder, and the object of the optical encoder 1 (measurement object OB1) is a rotating body (see FIG. 1B). The optical encoder 1 is incorporated into, for example, a servo motor, and is capable of measuring the rotational movement (rotation angle or rotation position) of the measurement object OB1, which is the rotation axis of the servo motor, and outputting information on the measurement results. The optical encoder 1 in this disclosure is not limited to a rotary encoder, and may be a linear encoder that measures linear axis movement.
[0012] Specifically, as shown in FIG. 1A, the optical encoder 1 includes a light source 2, a reflecting unit 3, and a light receiving unit 4. The reflecting unit 3 has a plurality of reflecting areas 30 including a plurality of M code areas R1 arranged in a line according to a specific bit pattern representing an M code. The "M code (M sequence code)" here refers to a code consisting of two M code areas R1 per period. n It is composed of a combination of n (n is a natural number) pieces of code information of "0" and "1". The code information of n consecutive "0"s and "1"s (n bits) from a specific position in the code is unique within the code, and there are 2 nThe reflecting unit 3 is displaced in conjunction with the movement of the object (measurement object OB1) and reflects light from the light source 2 in an area (detection area X1: see Figure 2) corresponding to n bits among the multiple M code areas R1. For example, if it is 4 bits, the "M code" will have 2 4 Each bit of information has unique information, and the reflector 3 reflects light from the light source 2 in a detection area X1 corresponding to 4 bits. In short, the optical encoder 1 is, for example, a reflective optical absolute encoder that uses an M sequence.
[0013] The light receiving unit 4 receives the reflected light C2 from the reflecting unit 3. That is, the light receiving unit 4 receives the reflected light C2 and photoelectrically converts it. The multiple M code regions R1 have a first surface 31 corresponding to first code information B1, which is one of the bit information of the M code, and a second surface 32 corresponding to second code information B2, which is one of the bit information of the M code, and having a slope structure D1 different from that of the first surface 31. Here, the first code information B1 is "0" of the bit information (0,1), and the second code information B2 is "1" of the bit information (0,1). The slope structure D1 of the first surface 31 and the slope structure D1 of the second surface 32 being different means that the surfaces have different slope angles with respect to a reference plane (e.g., the surface of the rotating plate 5). In the example of FIG. 1A, the slope angle of the first surface 31 corresponding to "0" is smaller than that of the second surface 32 corresponding to "1."
[0014] 2, the light receiving unit 4 has a first light receiving group 41 and a second light receiving group 42. The first light receiving group 41 includes a plurality of first light receiving elements 401 arranged in one direction (column direction A1) so as to receive reflected light C2 reflected by the first surface 31. The second light receiving group 42 is arranged farther from the reflector 3 than the first light receiving group 41 and includes a plurality of second light receiving elements 402 arranged in the column direction A1 so as to receive reflected light C2 reflected by the second surface 32. The first light receiving group 41 and the second light receiving group 42 are arranged such that the positions of the plurality of first light receiving elements 401 and the plurality of second light receiving elements 402 are shifted from each other in the column direction A1.
[0015] According to this configuration, the reflector 3 has multiple reflective regions 30, each including multiple M code regions R1 arranged in a row. The positions of the multiple first light receiving elements 401 and the multiple second light receiving elements 402 that receive the reflected light C2 are offset from each other in one direction (the row direction A1). Therefore, the optical encoder 1 has a structure that can deal with chattering, such as detecting either "0" or "1" by shifting the phase by half to prevent chattering from making it difficult to distinguish between "0" and "1." Furthermore, the amount of light received by the light receiving unit 4 can be easily increased (by approximately two times). In other words, compared to when multiple M code regions R1 are provided in two rows to address the phase shift, the amount of light received by the light receiving unit 4 can be easily increased. As a result, the insufficient amount of light received by the light receiving unit 4 can be improved.
[0016] Incidentally, in the optical encoder 1 of the present disclosure, the "specific bit pattern" is not limited to an M code. An optical encoder 1 according to another aspect of the present embodiment includes a light source 2, a reflecting unit 3, and a light-receiving unit 4. The reflecting unit 3 has multiple reflective regions 30 including multiple code regions R0 arranged in a row according to a specific bit pattern. The reflecting unit 3 displaces in conjunction with the movement of an object (measurement object OB1) and reflects light from the light source 2 at a region (detection region X1) corresponding to n bits (n is a natural number) of the multiple code regions R0. The light-receiving unit 4 receives reflected light C2 from the reflecting unit 3 and photoelectrically converts the reflected light C2. The reflecting unit 3 has three or more types of reflective regions 30 having different inclined structures D1. The light-receiving unit 4 has three or more light-receiving groups 40 that receive light corresponding to the three or more types of reflective regions 30, respectively. According to this configuration, the reflector 3 has a plurality of reflective regions 30 including a plurality of code regions R0 arranged in a row, and the light-receiving unit 4 has three or more light-receiving groups 40 that receive light corresponding to the three or more types of reflective regions 30. Therefore, it is easier to increase the amount of light received by the light-receiving unit 4 compared to when multiple rows of multiple code regions R0 are provided. As a result, it is possible to improve the insufficient amount of light received by the light-receiving unit 4.
[0017] (2) Details Next, the optical encoder 1 according to this embodiment will be described in detail with reference to FIGS. 1A to 3. FIG.
[0018] (2.1) Overall structure As shown in FIG. 1A, the optical encoder 1 according to this embodiment includes a light source 2, a reflecting section 3, a light receiving section 4, a rotating plate 5, a substrate 6, a processing section 7, and the like.
[0019] Fig. 1A is a schematic diagram showing the overall configuration of an optical encoder 1. Fig. 1A does not show a housing that houses or holds the light source 2, light receiving unit 4, rotating plate 5, substrate 6 (printed circuit board), processing unit 7, etc. Fig. 1A shows only a portion of the rotating plate 5 in an enlarged view. In Fig. 1A, of the light source 2, processing unit 7, and light receiving unit 4, only the light receiving unit 4 is provided on the substrate 6, but the light source 2, processing unit 7, etc. may also be provided on the same substrate 6.
[0020] The light source 2 is a point light source with a relatively small light-emitting surface or a diffuse light source. The light source 2 includes an LED (Light Emitting Diode) or a laser diode. The light source 2 may further include a collimator lens. The light source 2 is disposed opposite one surface 50 of the rotating plate 5 on which the reflecting section 3 is disposed, and emits light (emitted light C1) toward the reflecting section 3. The light source 2 may be mounted on the substrate 6 or on a substrate separate from the substrate 6.
[0021] The rotating plate 5 is a portion on which a reflecting portion 3 is provided on one surface 50 (top surface in FIG. 1A). The rotating plate 5 is a circular or doughnut-shaped portion formed, for example, by resin molding or the like. As the optical encoder 1 is a rotary encoder as described above, the rotating plate 5 is attached to the rotating shaft (measurement object OB1) of a servo motor or the like. The rotating plate 5 displaces (rotates) in conjunction with the movement (rotation) of the measurement object OB1.
[0022] The reflecting portion 3 is a portion that reflects the emitted light C1 from the light source 2. The reflecting portion 3 is provided on a rotating plate 5 that rotates in conjunction with the rotation of the measurement object OB1. The reflecting portion 3 is annular when viewed along the axial direction of the rotating plate 5. The central axis of the reflecting portion 3 and the central axis of the rotating plate 5 are approximately aligned. The reflecting portion 3 includes a resin layer and a metal film. The resin layer may be part of the rotating plate 5. The metal film faces the light source 2 so as to reflect the emitted light C1. The material of the metal film is not particularly limited as long as it is a film that reflects the emitted light C1; for example, gold, silver, aluminum, chromium, or the like is formed on the resin layer by vapor deposition, plating, or the like.
[0023] The reflecting section 3 is formed, for example, around the entire circumference of the rotating plate 5. In particular, the reflecting section 3 is configured to be able to identify the absolute angular position of the rotating shaft (measurement object OB1) in one rotation. Here, the reflecting section 3 has a plurality of reflecting areas 30 including a plurality of code areas R0 arranged in a line according to a specific bit pattern. As described above, as an example, the "specific bit pattern" here is an M code, and the code area R0 includes an M code area R1. The multiple reflecting areas 30 are arranged in a line so as to draw a circle around the central axis of the rotating plate 5.
[0024] The reflector 3 is arranged so as to reflect the light C1 emitted from the light source 2 at a detection region X1 corresponding to (at least) n bits among the multiple code regions R0 (M code region R1). In other words, the light C1 emitted from the light source 2 is set to be irradiated onto at least the detection region X1. FIG. 2 shows the detection region X1 corresponding to 4 bits as an example. There are seven reflection regions 30 within the detection region X1 shown in FIG. 2, four of which correspond to the M code region R1.
[0025] The multiple M code regions R1 have multiple first surfaces 31 corresponding to the first code information B1 (here, "0" of the bit-wise information (0,1)) and multiple second surfaces 32 corresponding to the second code information B2 (here, "1" of the bit-wise information (0,1)). In the example of FIG. 2, the rotating plate 5 is positioned such that the first surface 31, the second surface 32, the second surface 32, and the first surface 31 corresponding to the 4-bit information "0,1,1,0" are within the detection area X1. When the emitted light C1 hits the M code region R1, the light receiving unit 4 outputs a signal corresponding to "0,1,1,0", and the processing unit 7 calculates an absolute angle position (e.g., 45 degrees) corresponding to the digital information "0,1,1,0".
[0026] Each first surface 31 is an inclined surface. The first surface 31 is inclined with respect to, for example, an imaginary plane (hereinafter, the imaginary plane is referred to as a "reference plane") that is perpendicular to the central axis of the rotation axis (measurement object OB1). In the present embodiment, as an example, the reference plane is approximately parallel to a flat surface 50 of the rotating plate 5, and the first surface 31 is inclined with respect to the surface 50.
[0027] In Figure 2, in order to make it easier to understand the correspondence between the bit information (0,1) and the reflective area 30, the first code information B1 "0" is shown in black and the second code information B2 "1" is shown in white, but these do not have any physical substance.
[0028] Each second surface 32 is an inclined surface. The second surfaces 32 are also inclined with respect to the reference plane, i.e., inclined with respect to the surface 50. Here, the second surfaces 32 have an inclined structure D1 different from that of the first surfaces 31. In this embodiment, the second surfaces 32 have an inclined structure D1 in which the inclination angle with respect to the reference plane is different from that of the first surfaces 31. Here, as an example, if the inclination angle of the first surfaces 31 with respect to the reference plane is θ1 and the inclination angle of the second surfaces 32 with respect to the reference plane is θ2, the inclination angles θ1 and θ2 are set to satisfy the relational expression 0<θ1<θ2. However, the inclination angles θ1 and θ2 may also be set to satisfy the relational expression 0<θ2<θ1.
[0029] In this embodiment, due to the positional relationship between the light source 2 and the light receiving unit 4, each of the first surfaces 31 and each of the second surfaces 32 is inclined such that the outer edge E1 of the multiple reflective regions 30 in the radial direction A2 (see FIG. 1A ) of the reflecting unit 3 is raised higher than the inner edge E2. That is, when viewed along the axial direction of the rotating plate 5, the light source 2 and the light receiving unit 4 are aligned along the radial direction A2. The light source 2 is disposed outward of the light receiving unit 4 in the radial direction A2. Each of the first surfaces 31 and each of the second surfaces 32 is inclined so that the farther outward from the center of the reflecting unit 3 in the radial direction A2, the closer they are to the light receiving unit 4 (the further they are from the surface 50 of the rotating plate 5), so that the emitted light C1 from the light source 2 is reflected by the reflecting unit 3 and directed toward the light receiving unit 4.
[0030] The height of the outer edges E1 of the multiple reflective areas 30 relative to one surface 50 of the rotating plate 5 is the same on the first surface 31 and the second surface 32 (see FIG. 1A). On the other hand, the height of the inner edges E2 of the multiple reflective areas 30 relative to one surface 50 of the rotating plate 5 is different on the first surface 31 and the second surface 32 (see FIG. 1A). That is, the inner edge E2 of the first surface 31 is set at a higher position than the inner edge E2 of the second surface 32 so that the inclination angles θ1 and θ2 satisfy the relational expression 0<θ1<θ2.
[0031] 2, the difference in the inclination angle of the plurality of reflective regions 30 in the reflective section 3 is indicated by the difference in the density of the dot hatching. The reflective regions 30 with the same density of dot hatching have the same inclination angle.
[0032] The multiple reflective regions 30 further include multiple incremental regions R2. In this embodiment, as an example, the multiple incremental regions R2 are periodically arranged at predetermined intervals in the same row as the multiple M-code regions R1. The multiple incremental regions R2 correspond to incremental tracks. In other words, the optical encoder 1, as an example, is an encoder that combines both absolute and incremental tracks, and has a unique structure in which these tracks are realized in a row. The incremental region R2 is an area provided for acquiring a signal using an incremental method that measures relative position changes. When the emitted light C1 hits the incremental region R2, the output signal on the light receiving unit 4 is turned ON. As the rotating plate 5 rotates, this output signal repeatedly turns ON and OFF, becoming a pulse-like signal (analog signal).
[0033] In this embodiment, as an example, the M code regions R1 and the incremental regions R2 are alternately arranged. In other words, one incremental region R2 is interposed between two adjacent M code regions R1. In the example of FIG. 2, the detection region X1 corresponding to 4 bits includes four M code regions R1 and three incremental regions R2. When the rotating plate 5 rotates by one reflection region 30 from this state in FIG. 2, the detection region X1 now includes three M code regions R1 and four incremental regions R2.
[0034] The surfaces of the multiple incremental regions R2 (hereinafter also referred to as "third surfaces 33") have different inclined structures D1 with respect to both the first surface 31 and the second surface 32. In other words, the reflecting section 3 of this embodiment has three types of reflecting regions 30 having different inclined structures D1.
[0035] In the present embodiment, as an example, each third surface 33 is a surface that is approximately parallel to the reference plane, i.e., approximately parallel to one surface 50. In other words, if the inclination angle of the third surface 33 with respect to the reference plane is θ3, the relational expression for the inclination angle is θ3≈0<θ1<θ2. However, θ3>0 may also be satisfied. Satisfying the relational expression for the inclination angle "θ3<θ1<θ2" results from the positional relationship between the first light-receiving group 41, the second light-receiving group 42, and the third light-receiving group 43 of the light-receiving unit 4, which will be described later, but this is merely an example and is not limited to the above relational expression.
[0036] The light receiving unit 4 is configured to receive the reflected light C2 from the reflecting unit 3, i.e., to photoelectrically convert the reflected light C2 when the reflected light C2 is incident on it. The light receiving unit 4 has a plurality of light receiving elements 400. The light receiving elements 400 are, for example, photodiodes. The light receiving unit 4 is configured, for example, by a photodiode array. An image sensor may also be used for the light receiving unit 4. The light receiving unit 4 is mounted on a substrate 6 (printed circuit board) so that the light receiving surface of each light receiving element 400 faces the reflecting unit 3. The light receiving unit 4 is electrically connected to the processing unit 7 and outputs an electrical signal (light receiving signal: for example, a voltage signal) to the processing unit 7 according to the amount of reflected light C2 received by each light receiving element 400.
[0037] 2, the light receiving unit 4 has a first light receiving group 41, a second light receiving group 42, and a third light receiving group 43. A In other words, the light receiving section 4 is disposed on the back surface (lower surface) of the substrate 6, which faces the reflecting section 3. A 1 is a schematic perspective view of the light receiving section 4 when the substrate 6 is viewed from above.
[0038] The first light receiving group 41, the second light receiving group 42, and the third light receiving group 43 are arranged, for example, from the outside to the inside in the radial direction A2 in the order of the third light receiving group 43, the first light receiving group 41, and the second light receiving group 42.
[0039] The first light receiving group 41 includes a plurality of first light receiving elements 401 (light receiving elements 400) arranged in one direction (column direction A1) so as to receive reflected light C2 reflected by the first surface 31. The column direction A1 here is, for example, a direction perpendicular to a line that passes through the detection area X1 and is parallel to the radial direction A2 when viewed along the axial direction of the rotating plate 5. In FIG. 2, seven first light receiving elements 401 are arranged in a row along the column direction A1 in the first light receiving group 41, matching the number (seven) of reflection areas 30 included in the detection area X1. In FIG. 2, for ease of understanding, the area (first light irradiation area Op1) that is irradiated with reflected light C2 reflected by the first surface 31 is indicated by hatching (diagonal lines). In Figure 2, there are two first light irradiation areas Op1 in the first light receiving group 41, corresponding to the positions of the two M code areas R1 (first surface 31) corresponding to the first code information B1 "0" among the seven reflection areas 30 in the detection area X1.
[0040] The second light receiving group 42 is arranged farther from the reflector 3 than the first light receiving group 41, and includes a plurality of second light receiving elements 402 (light receiving elements 400) arranged along the column direction A1 so as to receive reflected light C2 reflected by the second surface 32. The second light receiving elements 402 are, for example, a common component to the first light receiving elements 401, and the shape and dimensions of the light receiving surfaces are the same as those of the first light receiving elements 401.
[0041] As with the first light-receiving group 41, the second light-receiving group 42 has seven second light-receiving elements 402 arranged in a row along the column direction A1, corresponding to the number (seven) of reflective areas 30 included in the detection area X1. In FIG. 2, for ease of understanding, the area (second light-irradiated area Op2) onto which the reflected light C2 reflected by the second surface 32 is irradiated is indicated by hatching (diagonal lines). In FIG. 2, of the seven reflective areas 30 in the detection area X1, the second light-receiving group 42 has two second light-irradiated areas Op2, corresponding to the positions of the two M code areas R1 (second surface 32) corresponding to the second code information B2 "1".
[0042] In this embodiment, the first light receiving group 41 and the second light receiving group 42 are arranged such that the positions of the plurality of first light receiving elements 401 and the plurality of second light receiving elements 402 are shifted from each other in the column direction A1. This "shift" is provided in consideration of a phase shift, such as a half-phase shift (90 degrees), that may occur in a light receiving signal due to chattering noise, and here the second light receiving group 42 is shifted from the first light receiving group 41 by half the number of light receiving elements 400 in the column direction A1.
[0043] In short, in the optical encoder 1 of this embodiment, during normal operation when no "phase shift" due to chattering noise occurs, the processing unit 7 reads digital information based on the light receiving signals obtained from the seven first light receiving elements 401 of the first light receiving group 41. In the example of Fig. 2, the processing unit 7 determines the first light irradiation area Op1 as "0" and the non-irradiated areas (skipping one) as "1", and reads the digital information of "0,1,1,0".
[0044] On the other hand, when a "phase shift" occurs due to chattering noise and digital information cannot be read from the light receiving signals obtained from the first light receiving group 41, digital information is read based on the light receiving signals obtained from the seven second light receiving elements 402 of the second light receiving group 42. In the example of FIG. 2, no "phase shift" occurs, so each second light irradiation area Op2 spans two corresponding second light receiving elements 402. When a phase shift occurs, the processing unit 7 reads digital information of "0, 1, 1, 0" based on the position of the second light irradiation area Op2 in the second light receiving group 42.
[0045] The third light receiving group 43 includes a plurality of third light receiving elements 403 (light receiving elements 400) arranged along the column direction A1 so as to receive reflected light C2 reflected by the surfaces (third surfaces 33) of the plurality of incremental regions R2. The third light receiving elements 403 are, for example, elements having a different shape and size of the light receiving surface from the first light receiving elements 401 and the second light receiving elements 402. In the example of FIG. 2, the dimension of the third light receiving element 403 in the column direction A1 is the same as that of the first light receiving element 401 and the second light receiving element 402, while the dimension in the radial direction A2 is approximately half that of each of the first light receiving element 401 and the second light receiving element 402.
[0046] The third light-receiving group 43 has two rows of seven third light-receiving elements 403 each (a total of 14 third light-receiving elements 403). That is, the third light-receiving group 43 includes a first row 43A and a second row 43B, and each of the first row 43A and the second row 43B has seven third light-receiving elements 403 arranged along the row direction A1. The first row 43A and the second row 43B are arranged so as to be shifted by half the number of third light-receiving elements 403 in the row direction A1 in order to obtain two-phase (A-phase / B-phase) analog signals whose phases are shifted by 90 degrees from each other. The first row 43A is a row for obtaining an A-phase analog signal (sinusoidal phase), and the second row 43B is a row for obtaining a B-phase analog signal (cosine phase). The processing unit 7 obtains the two-phase (A-phase / B-phase) analog signals to calculate the rotation speed and rotation direction of the measurement object OB1.
[0047] 2, for ease of understanding, the area (third light irradiation area Op3) irradiated with reflected light C2 reflected by the third surface 33 is shown by hatching (diagonal lines). In FIG. 2, three third light irradiation areas Op3 exist in the third light receiving group 43, corresponding to the positions of three incremental areas R2 (third surface 33) among the seven reflection areas 30 in the detection area X1. Note that in the example of FIG. 2, in the first row 43A, each third light irradiation area Op3 irradiates one corresponding third light receiving element 403, while in the second row 43B, each third light irradiation area Op3 irradiates across two corresponding third light receiving elements 403.
[0048] In the present embodiment, as an example, the third light receiving group 43 is arranged closer to the reflector 3 than the first light receiving group 41 and the second light receiving group 42. However, the third light receiving group 43 may be arranged farther from the reflector 3 than the first light receiving group 41 and the second light receiving group 42, or may be arranged separately on both the side closer to the reflector 3 and the side farther from the reflector 3.
[0049] The processing unit 7 (signal processing unit) can be realized by a computer system including one or more processors (microprocessors) and one or more memories. That is, the one or more processors execute one or more programs (applications) stored in one or more memories to function as the processing unit 7. Here, the programs are pre-recorded in the memory of the processing unit 7, but they may also be provided via a telecommunications line such as the Internet or by being recorded on a non-transitory recording medium such as a memory card.
[0050] The processing unit 7 is electrically connected to the light receiving unit 4. The processing unit 7 has the function of performing signal processing and arithmetic processing on the electrical signal (light receiving signal) output from the light receiving unit 4. Specifically, for example, the processing unit 7 amplifies and digitally processes the light receiving signal output from the first light receiving group 41 (or the second light receiving group 42) to calculate the absolute angular position of the rotating shaft (measurement object OB1) per rotation. The processing unit 7 also amplifies and digitally processes the light receiving signal output from the third light receiving group 43 to calculate the rotation speed and rotation direction of the rotating shaft (measurement object OB1). The processing unit 7 outputs the calculation results to an external device (for example, a motor control device, etc.).
[0051] As described above, the processing unit 7 normally performs calculation processing of the absolute angular position based on the light receiving signals obtained from the first light receiving group 41. When a "phase shift" due to chattering noise occurs, the processing unit 7 determines, based on, for example, an analog signal, which of the light receiving signals obtained from the first light receiving group 41 and the second light receiving group 42 to use, and performs calculation processing of the absolute angular position based on the light receiving signals from the determined light receiving group.
[0052] The processing unit 7 also has a function of detecting "errors" caused by foreign matter entering the optical encoder 1 and light reflection or light blocking by the foreign matter. Here, the processing unit 7 monitors whether or not the reciprocal relationship is broken based on the light receiving signals obtained from the first light receiving group 41 and the second light receiving group 42. Specifically, under normal conditions where no foreign matter has entered, the first light receiving group 41 and the second light receiving group 42 have a reciprocal relationship with each other with respect to the positions of the first light irradiation area Op1 and the second light irradiation area Op2, as shown in FIG. 2 . For example, if the emitted light C1 toward the first surface 31 or the reflected light C2 reflected by the first surface 31 is blocked by a foreign matter, causing the first light irradiation area Op1 to be absent in the first light receiving group 41, then the reciprocal relationship will be broken even if the second light irradiation area Op2 is normally present in the second light receiving group 42. Conversely, if light is reflected by a foreign object and more first light irradiation areas Op1 are present in the first light receiving group 41 than normal, the reciprocal relationship will be disrupted if the second light irradiation areas Op2 are present normally in the second light receiving group 42. When the processing unit 7 detects the disruption of the reciprocal relationship, it determines that an "error" due to a foreign object has occurred. The processing unit 7 outputs the determination result to an external device (for example, a motor control device, etc.).
[0053] (2.2) Manufacturing method Hereinafter, a method for manufacturing the reflecting portion 3 having the inclined structure D1 of the optical encoder 1 will be described with reference to FIG.
[0054] The reflecting portion 3 having the inclined structure D1 can be manufactured using nanoimprint technology. For example, a resist Y1 such as an ultraviolet-curable resin is applied to a substrate Y2, which serves as a base material. Then, a mold 8 (metal mold) on which a nano-sized fine inclined structure 80 is formed is pressed against the resist Y1, applying pressure. The resist Y1 is then hardened by irradiating it with ultraviolet light. The mold is then released, and gold, silver, aluminum, chromium, or the like is vapor-deposited on the surface of the resist Y1 to which the fine inclined structure has been transferred, thereby forming the reflecting portion 3 having a first surface 31, a second surface 32, and a third surface 33, each with a different inclined structure D1. Note that FIG. 3 is a schematic front view of the reflecting portion 3 as viewed along the radial direction A2.
[0055] [advantage] The advantages of the optical encoder 1 according to this embodiment will be described below with reference to FIG. 4. As described above, the reflecting unit 3 of the optical encoder 1 has a plurality of reflecting regions 30, each including a plurality of M code regions R1 arranged in a row. Furthermore, the positions of the first light-receiving elements 401 and the second light-receiving elements 402 that receive the reflected light C2 are shifted from each other in the column direction A1. Therefore, the optical encoder 1 has a structure that can deal with the occurrence of a phase shift in the light-receiving signal due to, for example, chattering noise. Furthermore, it is easy to increase the amount of light from the light-receiving unit 4.
[0056] FIG. 4 shows a main part of an optical encoder 1X of the comparative example, specifically a partially enlarged view of a reflecting section 3X in which a plurality of M code regions R1X are arranged in two rows. Between the two rows of M code regions R1X, an incremental region R2X is arranged in a single row, separate from the M code regions R1X. The two rows of M code regions R1X are arranged with a half-phase shift from each other. In other words, the optical encoder 1X of the comparative example also has a structure that can deal with the occurrence of phase shift due to chattering noise.
[0057] Suppose that the vertical length (length in the radial direction A2) of the reflective areas 30 arranged in a row in the optical encoder 1 according to this embodiment is set to be approximately the same as the vertical length W1 shown in Fig. 4. If the light irradiation areas of the reflective sections 3, 3X of the optical encoder 1 and the optical encoder 1X are the same, the amount of light received by each light receiving element 400 of the optical encoder 1 is likely to be greater than the amount of light received by each light receiving element of the optical encoder 1X.
[0058] In the optical encoder 1 according to this embodiment, incremental regions R2 are interposed between the M code regions R1 arranged in a row. Therefore, although the width of each reflective region 30 may be narrower than that of the optical encoder 1X, the amount of light received by the light receiving unit 4 for the M code region R1 can be increased by approximately two times compared to that of the optical encoder 1X.
[0059] Reflective optical encoders are easier to make thinner overall than transmissive optical encoders. However, arranging the reflecting portion within a limited area on the rotating plate can easily cause problems with insufficient light reception by the light receiving portion. In the optical encoder 1 according to this embodiment, the above configuration makes it easier to increase the amount of light received by the light receiving portion 4. Furthermore, the increased amount of light received by the light receiving portion 4 can further improve resolution.
[0060] Furthermore, in the optical encoder 1, the multiple reflective regions 30 further include multiple incremental regions R2 that are periodically arranged in a row at predetermined intervals. This makes it easier to increase the amount of light received by the light-receiving unit 4 compared to the case where the incremental regions R2 are arranged in a row separate from the multiple M code regions R1, as in the optical encoder 1X of the comparative example. The amount of light received by the light-receiving unit 4 for the incremental regions R2 can be increased by approximately two times compared to the optical encoder 1X.
[0061] Furthermore, the third surfaces 33 of the multiple incremental regions R2 have different inclined structures D1 with respect to both the first surface 31 and the second surface 32. This makes it easier to distinguish between analog signals based on the incremental method and digital signals (first code information B1 and second code information B2).
[0062] Furthermore, in the optical encoder 1 according to this embodiment, the reflecting unit 3 has a plurality of reflecting areas 30 including a plurality of code areas R0 arranged in a row, and the light receiving unit 4 has three light receiving groups 40 that receive light corresponding to the three types of reflecting areas 30, respectively. Therefore, compared to when a plurality of code areas are provided in multiple rows (see, for example, the optical encoder 1X of the comparative example), it is easier to increase the amount of light received by the light receiving unit 4. As a result, it is possible to improve the insufficient amount of light received by the light receiving unit 4.
[0063] (3) Variations The above-described embodiment is merely one of various embodiments of the present disclosure. The above-described embodiment can be modified in various ways depending on the design, etc., as long as the object of the present disclosure can be achieved. Below, modifications of the above-described embodiment are listed. Hereinafter, the optical encoder 1 of the above-described embodiment may be simply referred to as the "basic example." Each of the modifications described below can be applied in appropriate combination with the basic example and / or other modifications.
[0064] In the following, components that are substantially the same as those in the basic example will be given the same reference numerals as those in the basic example, and their description may be omitted as appropriate.
[0065] (3.1) Variation 1 Modification 1 will be described below with reference to Figures 5A to 5C. For ease of explanation, the incremental region R2 (third surface 33) is not shown in Figures 5A to 5C.
[0066] For ease of comparison, Fig. 5A schematically shows the first surface 31 and the second surface 32 having different inclination structures D1 in the reflecting unit 3 of the basic example. The first surface 31 has a first reflecting structure 301 whose inclination angle with respect to the reference plane is set to θ1. The second surface 32 has a second reflecting structure 302 whose inclination angle with respect to the reference plane is set to θ2. In the basic example, the relational expression for the inclination angles is 0 < θ1 < θ2. Both the first surface 31 and the second surface 32 are inclined so as to approach the light receiving unit 4 (upward) as they move away from the center of the reflecting unit 3 outward in the radial direction A2.
[0067] However, first surface 31 and second surface 32 may have different inclined structures D1 as shown in Fig. 5B. Fig. 5B schematically shows first surface 31 and second surface 32 having different inclined structures D1 in reflector 3A of this modified example. In the example of Fig. 5B, second surface 32 has second reflecting structure 302 whose inclination angle with respect to the reference plane is set to θ2, as in the basic example. Meanwhile, first surface 31 has third reflecting structure 303 whose inclination angle with respect to the reference plane is set to θ1A.
[0068] In the reflector 3A of this modified example, the relational expression for the inclination angles is also 0<θ1A<θ2. However, the inclination directions of the first surface 31 and the second surface 32 are different from each other. The first surface 31 inclines (downward) so as to move away from the light receiving unit 4 as it moves outward from the center of the reflector 3A in the radial direction A2. The height of the inner edge E2 of the first surface 31 from one surface 50 of the rotating plate 5 is higher than in the basic example. θ1A may be approximately 0 degrees, and in that case, it is preferable that the inclination angle θ3 of the third surface 33 be set to a value other than 0 degrees. In the reflector 3A of this modified example, the first light receiving group 41 of the light receiving unit 4 can be positioned closer to the outside in the radial direction A2 than in the basic example.
[0069] Next, Fig. 5C schematically shows first surface 31 and second surface 32 having different inclined structures D1 in another example (reflecting section 3B) of this modified example. In the example of Fig. 5C, second surface 32 has second reflecting structure 302 whose inclination angle with respect to the reference plane is set to θ2, as in the basic example. Meanwhile, first surface 31 has fourth reflecting structure 304 whose inclination angle with respect to the reference plane is set to θ1B.
[0070] In this reflector 3B, the relational expression for the inclination angles is 0<θ1B<θ2. However, the inclination directions of the first surface 31 and the second surface 32 are different from each other. The first surface 31 inclines (downward) away from the light receiving unit 4 as it moves outward from the center of the reflector 3B in the radial direction A2. Furthermore, unlike the basic example, the inner edge E2 of the first surface 31 is aligned with the inner edge E2 of the second surface 32, while the outer edge E1 of the first surface 31 is lower than the outer edge E1 of the second surface 32. θ1B may be approximately 0 degrees. In this case, it is preferable that the inclination angle θ3 of the third surface 33 be set to a value other than 0 degrees. In the reflector 3B of this modified example, the first light receiving group 41 of the light receiving unit 4 can also be positioned closer to the outside in the radial direction A2 than in the basic example.
[0071] (3.2) Variation 2 The second modification will be described below with reference to FIG.
[0072] FIG. 6 schematically illustrates a reflector 3C and a light-receiving section 4C of this modified example. The reflector 3C has multiple reflector regions 30, each including a plurality of M-code regions R1 and incremental regions R2 arranged in a line. The light-receiving section 4C has three light-receiving groups 40 (first to third light-receiving groups 41 to 43) that receive light corresponding to the first to third surfaces 31 to 33 of the reflector 3C, respectively (similar to the basic example, a three-tone system with three light-receiving groups 40). Note that in FIG. 6, the different shades of dot hatching indicate different angles of inclination of the multiple reflector regions 30. Reflector regions 30 with dot hatching of the same shade have the same angle of inclination.
[0073] Here, the reflecting section 3C of this modified example differs from the basic example in that the incremental areas R2 are periodically arranged so as to be interposed between every two M code areas R1 (every M code area R1 in the basic example). Note that FIG. 6 illustrates a detection area X1 corresponding to 5 bits as an example. There are seven reflection areas 30 within the detection area X1 shown in FIG. 6, five of which correspond to the M code areas R1. In the example of FIG. 6, the light receiving section 4 C On the other side, a signal corresponding to "0,0,1,1,0" is output.
[0074] The light receiving unit 4C of this modified example also differs from the basic example in that the first light receiving group 41 and the second light receiving group 42 are not misaligned in the column direction A1. In other words, the optical encoder 1 of this modified example does not have a structure that can deal with the occurrence of phase shifts due to chattering noise. Note that in this modified example, the first surface 31 and the second surface 32 have different inclined structures D1, and the light receiving unit 4C also has the first light receiving group 41 and the second light receiving group 42, so that, like the basic example, it is possible to detect "errors" caused by light reflection from or light blocking by foreign objects.
[0075] Furthermore, in the light receiving section 4C of this modification, the third light receiving group 43 has only one column, which differs from the basic example that has the first column 43A and the second column 43B for obtaining a two-phase analog signal.
[0076] The light receiving unit 4C of this modified example also differs from the basic example in that the third light receiving group 43 is arranged farther from the reflecting unit 3C than the first light receiving group 41 and the second light receiving group 42. In the case of this modified example, the reflecting unit 3C may be configured so that the relational equation of the inclination angles of the first surface 31 to the third surface 33 with respect to the reference plane satisfies "θ1<θ2<θ3".
[0077] In this modification, it is easier to increase the amount of light received by the light receiving unit 4C compared to when multiple code regions are provided in multiple rows (see, for example, the optical encoder 1X of the comparative example). As a result, it is possible to improve the insufficient amount of light received by the light receiving unit 4C.
[0078] (3.3) Variation 3 The third modification will be described below with reference to FIG.
[0079] FIG. 7 shows a schematic diagram of a reflector 3D and a light-receiving section 4D of this modified example. The reflector 3D has multiple reflector regions 30, each including multiple M-code regions R1 and incremental regions R2 arranged in a line. This modified example differs from the basic example in that the reflector 3D has two types of third surfaces 33 (third surfaces 33A and 33B). Note that in FIG. 7, the different shades of dot hatching indicate different inclination angles of the multiple reflector regions 30. Reflector regions 30 with dot hatching of the same shade have the same inclination angle.
[0080] The light receiving section 4D has four light receiving groups 40 that receive light corresponding to the first surface 31, the second surface 32, the third surface 33A, and the third surface 33B of the reflecting section 3D, respectively (four-tone system).
[0081] The reflecting section 3D of this modified example is substantially the same as that of modified example 2 except for the third surfaces 33A and 33B, and therefore description thereof will be omitted. The third surfaces 33A and 33B have different inclined structures D1. If the inclination angle of the third surface 33A relative to the reference plane is θ3A and the inclination angle of the third surface 33B relative to the reference plane is θ3B, for example, the reflecting section 3D is configured so that the relational equation of the inclination angles satisfies "θ3A<θ1<θ2<θ3B".
[0082] The light receiving unit 4D of this modified example has a first light receiving group 41, a second light receiving group 42, and two third light receiving groups 43 (43C, 43D). The two third light receiving groups 43C, 43D are arranged closer to the reflecting unit 3D and farther from the reflecting unit 3D than the first light receiving group 41 and the second light receiving group 42, respectively. Reflected light C2 reflected by the third surface 33A is received by the third light receiving group 43C. Reflected light C2 reflected by the third surface 33B is received by the third light receiving group 43D.
[0083] The third light-receiving group 43C is a light-receiving group corresponding to "even numbers on both sides." For example, if the sum of the code information in the M code areas R1 on both sides of the incremental area R2 is an even number, the third surface 33A is set in the incremental area R2. The third light-receiving group 43C is a light-receiving group that receives reflected light C2 from the third surface 33A set in this way. In the example of FIG. 7, the code information on both sides of the upper incremental area R2 is "0,0," and the sum is 0 + 0 = 0 (an even number), so the third surface 33A is set.
[0084] On the other hand, the third light receiving group 43D is a light receiving group corresponding to "odd numbers on both sides." For example, if the sum of the code information in the M code areas R1 on both sides of the incremental area R2 is an odd number, the third surface 33B is set in the incremental area R2. The third light receiving group 43D is a light receiving group that receives reflected light C2 from the third surface 33B set in this way. In the example of FIG. 7, the code information on both sides of the lower incremental area R2 is "1,0," and the sum is 1 + 0 = 1 (odd number), and the third surface 33B is set.
[0085] This modification (four-level gradation system) also makes it easier to increase the amount of light received by the light receiving section 4D, thereby improving the insufficient amount of light received by the light receiving section 4D.
[0086] In particular, in this modification, third surfaces 33A and 33B having different inclined structures D1 are provided, and third light-receiving group 43 has a light-receiving group corresponding to "both even numbers on both sides" and a light-receiving group corresponding to "both odd numbers on both sides." Therefore, based on the light-receiving signals from the "both even numbers on both sides" light-receiving group and the "both odd numbers on both sides" light-receiving group, processing unit 7 can detect error codes caused by unintended reflection or light blocking due to the intrusion of foreign matter.
[0087] For example, suppose that a third light receiving element 403 in the "even number on both sides" third light receiving group 43C receives light. However, if "0, 1" is detected from the light receiving signals of the first light receiving elements 401 on both sides in the column direction A1 of the first light receiving element 401 next to the third light receiving element 403, the processing unit 7 determines that an "error" due to a foreign object has occurred. In short, this modified example functions as a parity check, so to speak.
[0088] In this manner, the third light receiving group 43 of this modified example includes two light receiving groups 43C and 43D for parity check. The two light receiving groups 43C and 43D are disposed on both the side closer to the reflector 3D and the side farther from the reflector 3D than the first light receiving group 41 and the second light receiving group 42, respectively.
[0089] The processing unit 7 outputs the determination result to an external device (for example, a motor control device, etc.). When combined with the determination of the disruption of the reciprocal relationship based on the light receiving signals obtained from the first light receiving group 41 and the second light receiving group 42 described in the basic example, it becomes possible to more accurately detect "errors" caused by foreign objects.
[0090] (3.4) Variation 4 The fourth modification will be described below with reference to FIG.
[0091] FIG. 8 shows a schematic diagram of a reflector 3E and a light-receiving section 4E of this modified example. The reflector 3E has a plurality of reflector regions 30, each including a plurality of M-code regions R1 and incremental regions R2 arranged in a line. Similar to Modification 3, this modified example differs from the basic example in that the reflector 3E has two types of third surfaces 33 (third surfaces 33A and 33B). Note that in FIG. 8, the differences in the inclination angles of the plurality of reflector regions 30 are indicated by the differences in the shade of the dot hatching. Reflector regions 30 with the same shade of dot hatching have the same inclination angle.
[0092] The light receiving unit 4E of this modified example has a first light receiving group 41 and a second light receiving group 42 that receive light corresponding to the first surface 31 and the second surface 32 of the reflecting unit 3E, respectively. Here, the light receiving unit 4E of this modified example differs from the basic example in that the first light receiving group 41 and the second light receiving group 42 also receive reflected light C2 from the third surface 33A and the third surface 33B (two-tone method).
[0093] In this modification, as in the third modification, the light receiving unit 4E has two third light receiving groups 43 (43E, 43F). However, the first light receiving group 41 and the third light receiving group 43E are common to each other. Also, the second light receiving group 42 and the third light receiving group 43F are common to each other. The third light receiving group 43E is a light receiving group corresponding to "even numbers on both sides." The third light receiving group 43F is a light receiving group corresponding to "odd numbers on both sides."
[0094] The third surface 33A is set for the incremental area R2 where the sum of the code information in the M code areas R1 on both sides is an even number, as in the modification 3. The third surface 33B is set for the incremental area R2 where the sum of the code information in the M code areas R1 on both sides is an odd number, as in the modification 3.
[0095] Here, when the inclination angle of the third surface 33A of this modified example with respect to the reference plane is θ3A, it is set to be the same as the inclination angle θ1 of the first surface 31 (θ3A=θ1). As a result, the reflected light C2 from the third surface 33A is received by the same first light receiving group 41 (third light receiving group 43E) as the first surface 31.
[0096] Furthermore, when the inclination angle of the third surface 33B of this modified example with respect to the reference plane is θ3B, it is set to be the same as the inclination angle θ2 of the second surface 32 (θ3B=θ2). As a result, the reflected light C2 from the third surface 33B is received by the same second light receiving group 42 (third light receiving group 43F) as the second surface 32.
[0097] As described above, in this modification, the plurality of incremental regions R2 include a first incremental region whose surface (third surface 33A) has the same inclined structure as the first surface 31, and a second incremental region whose surface (third surface 33B) has the same inclined structure as the second surface 32. The first light-receiving group 41 receives reflected light C2 reflected by the first incremental region (third surface 33A). The second light-receiving group 42 receives reflected light C2 reflected by the second incremental region (third surface 33B).
[0098] This modification also has a parity check function, similar to modification 3. Furthermore, this modification simplifies the structure of the light receiving section 4E and makes it easier to reduce its size compared to modification 3. Furthermore, the number of types of inclination angles of the reflecting section 3E can be reduced (as shown in FIG. 8, there are only two types of shades of dot hatching), which may make manufacturing easier.
[0099] (3.5) Variation 5 The fifth modification will be described below with reference to FIG.
[0100] 9 is a schematic diagram of a reflecting section 3F and a light-receiving section 4F of this modified example. The reflecting section 3F has a plurality of reflecting regions 30, each including a plurality of M code regions R1 arranged in a line. In this modified example, the description focuses on only the two M code regions R1, "0" and "1," included in the plurality of reflecting regions 30, but the plurality of reflecting regions 30 may further include an incremental region R2.
[0101] In the basic example, each of the first surface 31 and the second surface 32, which correspond to the code information "0" and "1," respectively, is a flat surface having an inclined structure D1 composed of one type of inclined surface. In this modified example, each of the first surface 31 and the second surface 32 is composed of two or more types of inclined surfaces (three types in FIG. 9) (multi-stage inclined system). Note that in FIG. 9, the differences in the inclination angles of the multiple reflective areas 30 are indicated by differences in the shade of the dot hatching. Reflective areas 30 with dot hatching of the same shade have the same inclination angle. However, the inclination directions are different between the first surface 31 and the second surface 32.
[0102] The first surface 31 is made up of five inclined surfaces 311 to 315, starting from the top. The inclined surfaces 311 and 315 have the same inclination angle. The inclined surfaces 312 and 314 have the same inclination angle. The inclined surface 313 is, for example, a surface that is approximately parallel to the reference plane. The inclined surfaces 311, 312, 314, and 315 are arranged in such a manner that the ... F It slopes downwards away from
[0103] If the inclination angle of inclined surfaces 311 and 315 is θ11, the inclination angle of inclined surfaces 312 and 314 is θ12, and the inclination angle of inclined surface 313 is θ13, these inclination angles are set to satisfy, for example, the relational expression "0 ≒ θ13 < θ12 < θ11".
[0104] The second surface 32 is made up of five inclined surfaces 321 to 325, starting from the top. The inclined surfaces 321 and 325 have the same inclination angle. The inclined surfaces 322 and 324 have the same inclination angle. The inclined surfaces 321 to 325 are arranged in such a manner that the inclined surfaces 321 to 325 are gradually inclined toward the light receiving portion 4F as they move outward from the center of the reflecting portion 3F along the radial direction A2. F It slopes (upward) to approach .
[0105] If the inclination angle of inclined surfaces 321 and 325 is θ21, the inclination angle of inclined surfaces 322 and 324 is θ22, and the inclination angle of inclined surface 323 is θ23, these inclination angles are set to satisfy, for example, the relational expression "θ11<θ21<θ22<θ23".
[0106] On the other hand, the light receiving section 4F of this modified example has a total of six light receiving groups 40. Three of the six light receiving groups 40 are first light receiving groups 41 (411 to 413), and the remaining three are second light receiving groups 42 (421 to 423).
[0107] The reflecting unit 3F employs a multi-stage inclination method in which the first surface 31 and the second surface 32 are each composed of multiple types of inclined surfaces, and the light receiving unit 4F outputs an analog-graded light receiving signal for each code information of "0" and "1" as shown in Figure 9.
[0108] In this modified example, it is easier to increase the amount of light received by the light-receiving unit 4F compared to when multiple code regions are provided in multiple rows (see, for example, the optical encoder 1X of the comparative example). As a result, it is possible to improve the insufficient amount of light received by the light-receiving unit 4F.
[0109] Furthermore, in this modified example, a multi-stage inclination system is adopted in which each of the first surface 31 and the second surface 32 is made up of two or more types of inclined surfaces, so that not only the M code but also the Gray code can be supported.
[0110] In particular, if a multi-stage gradient is used as in this modified example, it becomes possible to obtain more information from one sequence (high data compression). For example, consider the following 9-bit M code sequence.
[0111] [Table 1]
[0112] This 9-bit M code sequence can also be ramped in steps of 3 bits. That is, the first 3 bits, "001" = "1 (decimal)," create one ramp. The next 3 bits, "011" = "3 (decimal)," create one ramp. The next 3 bits, "010" = "2 (decimal)," create another ramp, and so on. By using multiple ramps, data can be compressed. By grouping this 9-bit sequence into 3-bit sequences, the resulting array has different adjacent bit patterns. This means that the array does not overlap as the rotating plate 5 rotates, moving from "1 (decimal)" to "3 (decimal)," and then to "2 (decimal)." This allows for the generation of patterns similar to the M code. Specifically, multiple code regions R0 have different ramp structures D1 every m bits (m is a natural number less than n; in the example above, n = 9, m = 3), and the adjacent bit patterns in m-bit units do not overlap.
[0113] As an application example of this modification, the optical encoder 1 can also be applied to the Manchester encoding format (see the reflecting unit 3G and the light-receiving unit 4G in FIG. 10). In the example of FIG. 10, the first surface 31 corresponding to the code information of "0" has, from top to bottom, two types of inclined surfaces 311 and 312. The second surface 32 corresponding to the code information of "1" has, from top to bottom, two types of inclined surfaces 321 and 322. However, the inclination angle and inclination direction of the inclined surface 311 of the first surface 31 are the same as those of the inclined surface 322 of the second surface 32. The inclination angle and inclination direction of the inclined surface 312 of the first surface 31 are the same as those of the inclined surface 321 of the second surface 32. Here, in the light-receiving unit 4G, the light-receiving group 40 in the left column is designated "low" and the light-receiving group 40 in the right column is designated "high." A photodetection signal that falls (high to low) when it is "0" and rises (low to high) when it is "1" can be obtained (see light irradiation areas Op1A and Op1B in FIG. 10).
[0114] As a further application example of this modification, the optical encoder 1 can also be applied to the decimal system if, for example, ten types of inclination are prepared (see the reflecting unit 3H and the light-receiving unit 4H in FIG. 11). In the example of FIG. 11, the reflecting unit 3H has reflective areas 30 with ten inclined surfaces (only four inclined surfaces with code information "3," "9," "0," and "5" are shown in FIG. 11), and the light-receiving unit 4H has ten rows of light-receiving groups 40 aligned along the radial direction A2. In the light-receiving unit 4H, reflected light C2 from the reflective areas 30 with inclined surfaces corresponding to "3," "9," "0," and "5" is irradiated onto the light irradiation area Op4 of the light-receiving group 40 in the corresponding row.
[0115] (3.6) Variation 6 The sixth modification will be described below with reference to FIGS.
[0116] FIG. 14 is a schematic cross-sectional view of the main parts of the optical encoder 1 of this modified example. FIG. 15 is a diagram for explaining the positional relationship between the reflecting section 3K and the light receiving section (first light receiving section 4I) provided in the optical encoder 1. In the optical encoder 1 of this modified example, the multiple reflective areas 30 of the reflecting section 3K include multiple code areas R0 (M code areas R1) arranged in a row, as shown in FIG. 15. The multiple reflective areas 30 of the reflecting section 3K further include multiple incremental areas R2 (see FIG. 14). Note that the incremental area R2 is not shown in FIG. 15.
[0117] The rotating plate 5 is formed in a disk shape, and Figure 14 shows a cross-sectional view of the vicinity of the peripheral edge of the rotating plate 5 when the rotating plate 5 is cut along its central axis. The multiple M code regions R1 (code region R0) are arranged along the circumferential direction of the rotating plate 5 on the peripheral edge of the rotating plate 5. The multiple incremental regions R2 are arranged adjacent to the multiple M code regions R1 along the circumferential direction of the rotating plate 5, inside the multiple M code regions R1 (towards the central axis of the rotating plate 5). In other words, when one surface 50 (top surface) of the rotating plate 5 is viewed from the front, the multiple M code regions R1 are arranged in a circular ring shape along the peripheral edge of the rotating plate 5, and the multiple incremental regions R2 are arranged in a circular ring shape inside the multiple M code regions R1 and concentric with the multiple M code regions R1.
[0118] That is, the incremental region R2 in this modified example is arranged in a row different from the row of the multiple M code regions R1. In other words, the multiple reflective regions 30 further include multiple incremental regions R2 corresponding to incremental tracks, and the multiple incremental regions R2 are periodically arranged at predetermined intervals in a row different from the row of the multiple code regions R0 (M code regions R1).
[0119] Furthermore, the surfaces of the multiple incremental regions R2 in this modified example have a planar structure that is not inclined relative to the reference plane, as shown in Fig. 14. In the example of Fig. 14, the surfaces of the multiple incremental regions R2 are substantially flush with one surface 50 (top surface) of the rotating plate 5.
[0120] As shown in Figure 14, the optical encoder 1 of this modified example has, as light receiving units for receiving reflected light C2, a first light receiving unit 4I that receives reflected light C2 reflected from the M code region R1 and a second light receiving unit 4J that receives reflected light C2 reflected from the incremental region R2.
[0121] The multiple M code regions R1 of this modified example include four types of inclined surfaces (reflective surfaces): a first inclined surface 30A, a second inclined surface 30B, a third inclined surface 30C, and a fourth inclined surface 30D. The first to fourth inclined surfaces 30A to 30D all have different inclination angles, as shown in FIGS. 14 and 15. The first to fourth inclined surfaces 30A to 30D all have a curved inclined structure that is gently recessed downward from one surface 50 (upper surface) of the rotating plate 5. In FIG. 15, the different inclination angles of the first to fourth inclined surfaces 30A to 30D are indicated by different shades of dot hatching.
[0122] If the inclination angles of the first to fourth inclined surfaces 30A to 30D with respect to the reference plane (for example, the inclination angles of the line segment connecting both ends of the curvedly inclined inclined surface) are θ31, θ32, θ33, and θ34, respectively, the inclination angles are set to satisfy, for example, the relational expression "θ31<θ32<θ33<θ34." Furthermore, each of the first to fourth inclined surfaces 30A to 30D has a radius of curvature that causes the reflected light C2 to be collected at the first light receiving unit 4I (see light irradiation areas Op1, Op2, Op3, and Op4 in FIG. 15).
[0123] 14, in order to make the reflected light C2 easier to understand, the first inclined surface 30A, the second inclined surface 30B, the third inclined surface 30C, and the fourth inclined surface 30D are shown from the back to the front in this order. This order differs from the order in FIG. 15 (in FIG. 15, the second inclined surface 30B, the first inclined surface 30A, the fourth inclined surface 30D, and the third inclined surface 30C are arranged from the top).
[0124] The first to fourth inclined surfaces 30A to 30D of this modification have four inclined structures D1 corresponding to the number of gradations of the M code sequence compressed to four gradations. Specifically, for example, "00 (M code sequence)" = "0 (quaternary)" is associated with the first inclined surface 30A with an inclination angle of "θ31." Furthermore, "01 (M code sequence)" = "1 (quaternary)" is associated with the second inclined surface 30B with an inclination angle of "θ32." Furthermore, "10 (M code sequence)" = "2 (quaternary)" is associated with the third inclined surface 30C with an inclination angle of "θ33." Furthermore, "11 (M code sequence)" = "3 (quaternary)" is associated with the fourth inclined surface 30D with an inclination angle of "θ34."
[0125] In short, the reflecting section 3K has three or more types (four types in this modification) of reflecting regions having different inclined structures.
[0126] Therefore, since one inclined structure contains data of an M code sequence compressed twice, it is possible to narrow the area onto which the reflected light C2 is irradiated in order to obtain absolute position information with the same resolution as the optical encoder 1X of the comparative example (see FIG. 4). Furthermore, the light-condensing effect due to the curvatures (radii) of the first to fourth inclined surfaces 30A to 30D ultimately improves the light utilization efficiency.
[0127] 15, the first light receiving section 4I has four light receiving groups 40 (a first light receiving group 41, a second light receiving group 42, a third light receiving group 43, and a fourth light receiving group 44) that receive light corresponding to the first to fourth inclined surfaces 30A to 30D of the reflecting section 3K, respectively. The four light receiving groups 40 are aligned along the radial direction A2.
[0128] Although detailed description will be omitted, the second light receiving section 4J has a light receiving group including a plurality of light receiving elements that receive the reflected light C2 reflected by the incremental region R2.
[0129] In this modified example, the first light receiving unit 4I and the second light receiving unit 4J are mounted on the same substrate 6 on which the light source 2 is mounted. In particular, in this modified example, the first light receiving unit 4I and the second light receiving unit 4J are mounted on one surface (the bottom surface in FIG. 14) of the same substrate 6 so as to be aligned outward from the central axis of the rotating plate 5 in the order of the second light receiving unit 4J, the light source 2, and the first light receiving unit 4I. As shown in FIG. 14, the light source 2 is mounted on the substrate 6 so as to be substantially opposite the boundary region between the M code region R1 and the incremental region R2.
[0130] The first light receiving group 41 includes a plurality of (four in this example) first light receiving elements 401 arranged in one direction (column direction A1) so as to receive reflected light C2 reflected by the first inclined surface 30A.
[0131] The second light receiving group 42 is arranged farther from the reflector 3K than the first light receiving group 41. The second light receiving group 42 includes a plurality of (four in this example) second light receiving elements 402 arranged along the column direction A1 so as to receive reflected light C2 reflected by the second inclined surface 30B.
[0132] The third light receiving group 43 is arranged farther from the reflector 3K than the second light receiving group 42. The third light receiving group 43 includes a plurality of (four in this example) third light receiving elements 403 arranged along the column direction A1 so as to receive reflected light C2 reflected by the third inclined surface 30C.
[0133] The fourth light receiving group 44 is arranged farther from the reflector 3K than the third light receiving group 43. The fourth light receiving group 44 includes a plurality of (here, four) fourth light receiving elements 404 arranged along the column direction A1 so as to receive reflected light C2 reflected by the fourth inclined surface 30D.
[0134] In short, the light receiving section (first light receiving section 4I) has three or more (four in this modified example) light receiving groups that receive light corresponding to three or more types (four types in this modified example) of reflective areas of the reflective section 3K.
[0135] In this modification, the reflected light C2 reflected from each of the first to fourth inclined surfaces 30A to 30D is collected by one of the four first to fourth light receiving elements 401 to 404 arranged in the radial direction A2 in the same row. That is, one of "1,0,0,0," "0,1,0,0," "0,0,1,0," and "0,0,0,1" is detected from the light receiving signals of the four first to fourth light receiving elements 401 to 404 arranged in the radial direction A2 in the same row. In the example of FIG. 15 , among the first to fourth light receiving elements 401 to 404 in the top row, only the second light receiving element 402 receives the reflected light C2 (see the light irradiation area Op2), and "0,1,0,0" is detected from the light receiving signals of these first to fourth light receiving elements 401 to 404.
[0136] Therefore, for example, if "0,0,0,0" is detected from the light receiving signals of the first to fourth light receiving elements 401 to 404 that are lined up in the radial direction A2 in the same row and are blocked by a foreign object, the processing unit 7 determines that an "error" has occurred due to the foreign object.
[0137] (3.7) Other Modifications In the basic example, both the first surface 31 and the second surface 32 are linear, flat, inclined surfaces when viewed from the side (see FIG. 13A). FIG. 13A is a schematic side view of the first surface 31 of the basic example. However, at least one of the first surface 31 and the second surface 32 may include a curved surface. FIG. 12 is a schematic side view of a reflecting unit 3I of another modified example. In the reflecting unit 3I, the first surface 31 has a curved inclined structure 305 including an inclined curved surface. In this case, there is an advantage that the reflected light C2 is more easily condensed and irradiated onto the light receiving unit 4, further improving the insufficient amount of received light. Note that when both the first surface 31 and the second surface 32 have the curved inclined structure 305, the radii of curvature of the first surface 31 and the second surface 32 may be different from each other.
[0138] In the basic example, both the first surface 31 and the second surface 32 are linear, flat, inclined surfaces when viewed from the side (see FIG. 13A). However, at least one of the first surface 31 and the second surface 32 may be inclined and have an uneven surface structure F1 (see FIG. 13B). FIG. 13B is a schematic side view of a reflecting section 3J of another modified example. In the reflecting section 3J, the first surface 31 has an uneven surface structure F1 that is inclined in a sawtooth shape when viewed from the side. This has the advantage that reflected light C2 is more easily irradiated onto the light receiving section 4 depending on the position of the light source 2.
[0139] In the basic example, the dimensional ratio in the radial direction A2 between the M code region R1 and the incremental region R2 and the dimensional ratio in the circumferential direction of the rotary plate 5 were both 1:1, but these dimensional ratios may be changed as appropriate.
[0140] In the basic example, the multiple incremental regions R2 may be periodically arranged at predetermined intervals in a row different from the row of the multiple M code regions R1, as in Modification 6. In this case, the surface of the incremental region R2 may have a planar structure that is not inclined relative to the reference plane, as in Modification 6.
[0141] (summary) As described above, the optical encoder (1) according to the first aspect includes a light source (2), reflectors (3, 3A to 3K), and light-receiving units (4, 4C to 4J). The reflectors (3, 3A to 3K) have a plurality of reflecting regions (30) including a plurality of M code regions (R1) arranged in a row according to a specific bit pattern representing an M code. The reflectors (3, 3A to 3K) are displaced in conjunction with the movement of an object (measurement object OB1) and reflect light from the light source (2) at a region (detection region X1) corresponding to n bits (n is a natural number) of the plurality of M code regions (R1). The light-receiving units (4, 4C to 4J) receive reflected light (C2) from the reflectors (3, 3A to 3K) and perform photoelectric conversion of the reflected light (C2). The plurality of M code regions (R1) have a first surface (31) corresponding to first code information (B1), which is one of the bit information of the M code, and a second surface (32) corresponding to second code information (B2), which is one of the bit information of the M code, and having a slope structure (D1) different from that of the first surface (31). The light receiving unit (4, 4C to 4J) has a first light receiving group (41) and a second light receiving group (42). The first light receiving group (41) includes a plurality of first light receiving elements (401) arranged in one direction (column direction A1) so as to receive reflected light (C2) reflected by the first surface (31). The second light receiving group (42) is arranged farther from the reflecting portions (3, 3A to 3K) than the first light receiving group (41), and includes a plurality of second light receiving elements (402) arranged in one direction (column direction A1) so as to receive reflected light (C2) reflected by the second surface (32). The first light receiving group (41) and the second light receiving group (42) are arranged such that the positions of the plurality of first light receiving elements (401) and the plurality of second light receiving elements (402) are shifted from each other in one direction (column direction A1).
[0142] According to this aspect, the reflecting unit (3, 3A to 3K) has a plurality of reflecting regions (30) including a plurality of M code regions (R1) arranged in a row. The positions of the plurality of first light receiving elements (401) and the plurality of second light receiving elements (402) that receive the reflected light (C2) are shifted from each other in one direction (the row direction A1). Therefore, in a structure that can deal with, for example, the occurrence of a phase shift in the received light signal, it is easy to increase (approximately double) the amount of light from the light receiving units (4, 4C to 4J). In other words, compared to a case where two rows of a plurality of M code regions (R1) are provided to deal with the phase shift, it is easy to increase the amount of light from the light receiving units (4, 4C to 4J). As a result, it is possible to improve the insufficient amount of light received by the light receiving units (4, 4C to 4J).
[0143] Regarding the optical encoder (1) of the second aspect, in the first aspect, the multiple reflective areas (30) are arranged periodically at predetermined intervals in a row and further include multiple incremental areas (R2) corresponding to incremental tracks.
[0144] According to this embodiment, the incremental area (R2) for acquiring analog signals by the incremental method can more easily increase the amount of light from the light receiving section (4, 4C to 4J) compared to when the incremental area (R2) is arranged in a separate row from, for example, multiple M code areas (R1).
[0145] Regarding the optical encoder (1) according to the third aspect, in the second aspect, the surface (third surface 33) of the multiple incremental regions (R2) has a different inclined structure (D1) relative to both the first surface (31) and the second surface (32).
[0146] According to this embodiment, it becomes easier to distinguish between an analog signal based on the incremental method and a digital signal (first code information B1 and second code information B2).
[0147] Regarding the optical encoder (1) of the fourth aspect, in the first aspect, the multiple reflective areas (30) are arranged periodically at predetermined intervals in a row different from the above row, and further include multiple incremental areas (R2) corresponding to incremental tracks.
[0148] According to this embodiment, it is easier to distinguish between analog signals and digital signals obtained by the incremental method compared to when the incremental area (R2) for acquiring analog signals by the incremental method is arranged in the same column as multiple M code areas (R1).
[0149] With respect to the optical encoder (1) according to the fifth aspect, in the fourth aspect, the surfaces of the plurality of incremental regions (R2) have a planar structure.
[0150] According to this embodiment, the structure can be simplified compared to when the surfaces of the plurality of incremental regions (R2) have an inclined structure.
[0151] With respect to the optical encoder (1) according to the sixth aspect, in any one of the second to fifth aspects, the light receiving unit (4, 4C to 4J) further includes a third light receiving group (43). The third light receiving group (43) includes a plurality of third light receiving elements (403) arranged in one direction (column direction A1) so as to receive reflected light (C2) reflected by the surfaces (third surfaces 33) of the plurality of incremental regions (R2).
[0152] According to this aspect, it becomes easier to distinguish between an analog signal based on the incremental method and a digital signal (first code information B1 and second code information B2).
[0153] With respect to the optical encoder (1) according to the seventh aspect, in the sixth aspect, the third light receiving group (43) is arranged on at least one of the side closer to the reflecting portion (3, 3A to 3K) and the side farther from the reflecting portion (3, 3A to 3K) than the first light receiving group (41) and the second light receiving group (42).
[0154] According to this aspect, it becomes easier to distinguish between an analog signal based on the incremental method and a digital signal (first code information B1 and second code information B2).
[0155] In the seventh aspect of the optical encoder (1) according to the eighth aspect, the third light-receiving group (43) includes two light-receiving groups (43C, 43D) for parity check. The two light-receiving groups (43C, 43D) are arranged on both the side closer to the reflecting portions (3, 3A to 3K) and the side farther from the reflecting portions (3, 3A to 3K) than the first light-receiving group (41) and the second light-receiving group (42).
[0156] According to this aspect, it is easy to increase the amount of light from the light receiving parts (4, 4C to 4J) while providing a parity check function.
[0157] In the second aspect of the optical encoder (1) according to the ninth aspect, the plurality of incremental regions (R2) have a first incremental region whose surface has the same inclined structure as the first surface (31), and the plurality of incremental regions (R2) also have a second incremental region whose surface has the same inclined structure as the second surface (32).
[0158] According to this aspect, it becomes easier to increase the amount of light from the light receiving parts (4, 4C to 4J).
[0159] In the optical encoder (1) according to the tenth aspect, in the ninth aspect, the first light receiving group (41) receives the reflected light (C2) reflected by the first incremental area, and the second light receiving group (42) receives the reflected light (C2) reflected by the second incremental area.
[0160] According to this aspect, each of the first light-receiving group (41) and the second light-receiving group (42) also serves as a light-receiving group that receives the reflected light (C2) reflected at the incremental region (R2), making it easier to increase the amount of light from the light-receiving sections (4, 4C to 4J).
[0161] With regard to the optical encoder (1) according to the eleventh aspect, in any one of the first to tenth aspects, at least one of the first surface (31) and the second surface (32) includes a curved surface.
[0162] According to this embodiment, the reflected light (C2) is condensed and easily irradiated onto the light receiving parts (4, 4C to 4J).
[0163] With regard to the optical encoder (1) according to the twelfth aspect, in any one of the first to eleventh aspects, at least one of the first surface (31) and the second surface (32) has a concave-convex structure (F1) and is inclined.
[0164] According to this aspect, the reflected light (C2) is more likely to be irradiated onto the light receiving parts (4, 4C to 4J) depending on the position of the light source (2).
[0165] With regard to the optical encoder (1) according to the thirteenth aspect, in any one of the first to twelfth aspects, each of the first surface (31) and the second surface (32) is configured with two or more types of inclined surfaces.
[0166] According to this aspect, it becomes easier to increase the amount of light from the light receiving parts (4, 4C to 4J) while improving the data compression rate.
[0167] With regard to the optical encoder (1) according to the fourteenth aspect, in any one of the first to thirteenth aspects, the object (measurement object OB1) is a rotating body. The reflecting portions (3, 3A to 3K) are provided on a rotating plate (5) that rotates in conjunction with the rotation of the object (measurement object OB1).
[0168] According to this aspect, the rotary encoder can be applied to improve the insufficient amount of light received by the light receiving portions (4, 4C to 4J).
[0169] An optical encoder (1) according to a fifteenth aspect includes a light source (2), reflecting units (3, 3A to 3K), and light receiving units (4, 4C to 4J). The reflecting units (3, 3A to 3K) have a plurality of reflecting regions (30) including a plurality of code regions (R0) arranged in a row according to a specific bit pattern. The reflecting units (3, 3A to 3K) are displaced in conjunction with the movement of an object (measurement object OB1) and reflect light from the light source (2) at a region (detection region X1) corresponding to n bits (n is a natural number) among the plurality of code regions (R0). The light receiving units (4, 4C to 4J) receive reflected light (C2) from the reflecting units (3, 3A to 3K) and photoelectrically convert the reflected light (C2). The reflecting units (3, 3A to 3K) have three or more types of reflecting regions (30) having different inclined structures (D1). The light receiving section (4, 4C to 4J) has three or more light receiving groups (41 to 43) that receive light corresponding to the three or more types of reflective regions (30), respectively.
[0170] According to this aspect, the reflective section (3, 3A to 3K) has a plurality of reflective regions (30) including a plurality of code regions (R0) arranged in a row. The light-receiving section (4, 4C to 4J) has three or more light-receiving groups (41 to 43) that receive light corresponding to the three or more types of reflective regions (30). Therefore, it is easier to increase the amount of light received by the light-receiving section (4, 4C to 4J) compared to when a plurality of code regions (R0) are provided in multiple rows. As a result, it is possible to improve the insufficient amount of light received by the light-receiving section (4, 4C to 4J).
[0171] Regarding the optical encoder (1) according to the 16th aspect, in the 15th aspect, the multiple code regions (R0) have different inclined structures (D1) every m bits (m is a natural number smaller than n), and are arranged so that adjacent bit patterns in m-bit units do not overlap.
[0172] According to this aspect, it becomes easier to increase the amount of light from the light receiving parts (4, 4C to 4J) while improving the data compression rate.
[0173] With respect to the optical encoder (1) according to the 17th aspect, in the 15th or 16th aspect, the plurality of reflective areas (30) are arranged periodically at predetermined intervals in a row different from the row, and further include a plurality of incremental areas (R2) corresponding to incremental tracks.
[0174] According to this embodiment, it is easier to distinguish between analog signals and digital signals using the incremental method compared to when the incremental area (R2) for acquiring analog signals using the incremental method is arranged in the same column as multiple code areas (R0).
[0175] With respect to the optical encoder (1) according to the eighteenth aspect, in the seventeenth aspect, the surfaces of the plurality of incremental regions (R2) have a planar structure.
[0176] According to this embodiment, the structure can be simplified compared to when the surfaces of the plurality of incremental regions (R2) have an inclined structure.
[0177] The configurations according to the second to fourteenth aspects are not essential for the optical encoder (1) according to the first aspect and can be omitted as appropriate. The configurations according to the sixteenth to eighteenth aspects are not essential for the optical encoder (1) according to the fifteenth aspect and can be omitted as appropriate. [Explanation of symbols]
[0178] 1 Optical Encoder 2 light source 3,3A~3K Reflector 30 reflective area 31 Page 1 32 2nd page 4,4C~4J Photodetector 41 1st receiving group 42 2nd receiving group 43 3rd receiving group 401 first light receiving element 402 Second light receiving element 5 Rotating Plate A1 column direction (one direction) B1 First code information B2 Second Code Information C2 reflected light D1 inclined structure F1 uneven structure OB1 Measurement target (target) R0 coding region R1 M code region R2 Incremental Region X1 detection area
Claims
1. A light source and a reflecting section having a plurality of reflecting areas including a plurality of M code areas arranged in a line according to a specific bit pattern representing an M code, the reflecting section being displaced in conjunction with the movement of the object to reflect light from the light source in an area corresponding to n bits (n is a natural number) of the plurality of M code areas; a light receiving section that receives the reflected light from the reflecting section and performs photoelectric conversion on the reflected light; Equipped with the plurality of M code regions have a first surface corresponding to first code information which is one of the bit information of the M code, and a second surface corresponding to second code information which is one of the bit information of the M code and having a slope structure different from that of the first surface, The light receiving unit a first light receiving group including a plurality of first light receiving elements arranged in one direction so as to receive the reflected light reflected by the first surface; a second light receiving group including a plurality of second light receiving elements arranged along the one direction so as to receive the reflected light reflected by the second surface, the second light receiving group being disposed farther from the reflecting portion than the first light receiving group; and the first light-receiving group and the second light-receiving group are arranged such that the positions of the first light-receiving elements and the positions of the second light-receiving elements are shifted from each other in the one direction; Optical encoder.
2. the plurality of reflective regions further include a plurality of incremental regions that are periodically arranged at predetermined intervals in the row and correspond to incremental tracks; The optical encoder according to claim 1 .
3. the surfaces of the plurality of incremental regions have different inclination structures with respect to both the first surface and the second surface; The optical encoder according to claim 2 .
4. the plurality of reflective regions further include a plurality of incremental regions that are periodically arranged at predetermined intervals in a row different from the one row and correspond to incremental tracks; The optical encoder according to claim 1 .
5. a surface of the plurality of incremental regions having a planar structure; 5. The optical encoder according to claim 4.
6. the light receiving unit further includes a third light receiving group including a plurality of third light receiving elements arranged along the one direction so as to receive the reflected light reflected on surfaces of the plurality of incremental regions; The optical encoder according to any one of claims 2 to 5.
7. the third light receiving group is disposed on at least one of a side closer to the reflecting portion and a side farther from the reflecting portion than the first light receiving group and the second light receiving group; The optical encoder according to claim 6 .
8. the third light receiving group includes two light receiving groups for parity check; the two light receiving groups are disposed on both a side closer to the reflecting unit and a side farther from the reflecting unit than the first light receiving group and the second light receiving group, respectively. The optical encoder according to claim 7 .
9. The plurality of incremental regions include: a first incremental region whose surface has the same inclined structure as the first surface; a second incremental region whose surface has the same gradient structure as the second surface; The optical encoder according to claim 2 .
10. the first light receiving group receives the reflected light reflected by the first incremental region; the second light receiving group receives the reflected light reflected by the second incremental region; 10. The optical encoder according to claim 9.
11. At least one of the first surface and the second surface includes a curved surface. The optical encoder according to any one of claims 1 to 10.
12. At least one of the first surface and the second surface has an uneven structure and is inclined. The optical encoder according to any one of claims 1 to 11.
13. Each of the first surface and the second surface is composed of two or more types of inclined surfaces. The optical encoder according to any one of claims 1 to 12.
14. the object is a rotating body, The reflecting portion is provided on a rotating plate that rotates in conjunction with the rotation of the object. The optical encoder according to any one of claims 1 to 13.
15. A light source and a reflecting section having a plurality of reflective areas including a plurality of code areas arranged in a line according to a specific bit pattern, the reflecting section being displaced in conjunction with the movement of the object to reflect light from the light source in an area corresponding to n bits (n is a natural number) among the plurality of code areas; a light receiving section that receives the reflected light from the reflecting section and performs photoelectric conversion on the reflected light; Equipped with the reflective portion has three or more types of reflective regions having different inclined structures, the light receiving unit has three or more light receiving groups that receive light corresponding to the three or more types of reflective regions, respectively; The plurality of code regions have different inclined structures every m bits (m is a natural number smaller than n), and are arranged such that adjacent bit patterns in the m-bit unit do not overlap. Optical encoder.
16. The plurality of reflective areas further includes a plurality of incremental areas that are periodically arranged at predetermined intervals in a row different from the one row and correspond to incremental tracks.
16. The optical encoder of claim 15.
17. The surface of the plurality of incremental regions has a planar structure.
17. The optical encoder of claim 16.
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