1. Field of the Invention
The present invention relates to a rotary encoder for detecting a rotational position, a rotational velocity and the like of a rotary shaft, and more specifically to an attachment structure of the rotary encoder to the rotary shaft.
2. Description of Related Art
An ultra-precision motor requires high-precision positioning. Therefore, the motor is provided with a rotary encoder that is supported for example by an air bearing and also carries out position detection.
In case that a rotary encoder is combined with the ultra-precision motor that requires the high-precision positioning, a disk of the rotary encoder provided with slits for position detection is fitted to the rotary shaft of the motor in the conventional arts. Detecting means is mounted on a stationary portion supporting the rotary shaft to detect slits provided to the disk and to find a rotation angle. It is required that positional relation between the disk of the rotary encoder and the detecting means be properly adjusted in order to realize the accurate positioning.
As for the motor attached with a rotary encoder, it is advantageous in terms of maintenance to prepare a working part of the rotary encoder in advance and fix the working part of the rotary encoder to the shaft of the motor. In the working part of the rotary encoder, positional relation between the disk rotationally supported and the detecting means can be previously adjusted at the time of construction of the mechanism, so that the positional relation does not have to be adjusted when the rotary encoder is combined with the motor.
In case that the positional relation between the disk and the detecting means is adjusted after they are individually installed, it is necessary to utilize a special adjustment device or the like. When the rotary encoder is constructed as one working part, however, no such special adjustment device is needed.
An example of a configuration in which a rotary encoder is attached to a rotary shaft as one working part is disclosed in for example JP 2605362B.
The detector 103 is mounted on the retainer 109 fixed to the stationary portion 110.
Axis alignment includes the steps of measuring the eccentricity of the hollow rotary shaft 10 by using a dial gauge or the like while rotating the rotary shaft 111 and forcibly displacing the hollow rotary shaft 101 on the basis of an eccentricity amount and direction found through the measurement to change the positional relation between the chevron sleeves and the wedge sleeves.
As seen in the above example, in the unitized rotary encoder, a bearing, such as a ball bearing, is generally applied to support the disk to be rotatable in relation to the detecting means in the unit.
When the unitized rotary encoder is combined with the ultra high-precision motor, if a ball bearing or the like is used to rotationally support the disk in the unit like the above example, the ball bearing is left in the encoder unit to rotationally support the disk and a member for supporting the disk after the encoder unit is fitted to the shaft, and the ball bearing rotates along with the rotation of the shaft. This causes rotational unstableness at the time of ultra high-precision rotation and positioning, and there is fear that the rotational unstableness has an adverse affect on rotational smoothness and accuracy in angle detection.
It is possible to reduce effects of abrasion of the bearing by utilizing a low friction bearing, such as a fluid bearing, in place of the ball bearing. Such a countermeasure makes the encoder unit large in size and complicates the construction of the unit.
The present invention provides a rotary encoder capable of easily adjusting positional relation between a rotary disk and a detector in attachment of the rotary encoder to a rotary shaft, and also preventing deterioration of detection accuracy of the rotary encoder after the attachment to the rotary shaft. According to the present invention, a bearing for rotatably supporting the rotary disk relative to the detector is eliminated in the state where the rotary encoder is attached to the rotary shat.
A rotary encoder of the present invention is attached to a rotary shaft for outputting signals with rotation of the rotary shaft. According to one aspect of the present invention, the rotary encoder comprises: a rotary disk; a disk holder holding the rotary disk to be fixedly attached to the rotary shaft with the rotary disk; a detector for detecting a rotational position of the rotary disk; and a housing for supporting the detector to be stationary in confronting relation to the rotary disk, wherein the disk holder and the housing are held by a retainer such that positional relation between the disk holder and the housing is retained in attachment of the rotary encoder to the rotary shaft.
According to another aspect of the present invention, the rotary encoder comprises: a rotary disk; a disk holder holding the rotary disk to be fixedly attached to the rotary shaft with the rotary disk; a detector for detecting a rotational position of the rotary disk; a housing for supporting the detector to be stationary in confronting relation to the rotary disk; and a retainer provided to be attachable to and detachable from the disk holder and the housing. The retainer is attached to the disk holder and the housing such that positional relation between the disk holder and the housing is retained. The retainer is detached from the disk holder and the housing in a state where the disk holder is fixedly attached to the rotary shaft.
The retainer may comprise a stationary member and a rotary member rotatably supported by the stationary member. In this case, the stationary member is attached to the housing and the rotary member is attached to the disk holder so that positional relation between the rotary disk in rotation and the detector is adjustable. The rotary member may be rotatably supported by the stationary member through a bearing.
The rotary encoder of the present invention is constituted as a unit capable of adjusting positional relation between the rotary disk and the detector and retaining the positional relation using a retainer before the encoder is installed in a component such as an electric motor having a rotary shaft. Thus, the rotary encoder is installed in the component in a state where the rotary disk retains adjusted position with respect to the detector. After the rotary encoder is installed to the component, the retainer is detached so that the disk holder holding the rotary disk is supported only by the rotary shaft.
According to the present invention, since the relative position between the rotary disk and the detector can be adjusted before the rotary encoder is installed to the component, the adjustment in installing the rotary encoder in the component is facilitated. Furthermore, since there is not remained a bearing for rotatably supporting the rotary shaft in the encoder after the encoder is installed in the component, deterioration in detection accuracy due to the rotation unstableness of the rotary disk caused by the bearing, is prevented.
a through 1c are schematic views of a configuration, for explaining a first embodiment of a rotary encoder of the present invention;
a and 2b are views for explaining attachment of a position-adjusted rotary encoder of the present invention to a motor;
A rotary encoder of the present invention will be described referring to the attached drawings.
a-1c, 2a-2b and 3 are schematic views of a configuration, for explaining a first embodiment of the rotary encoder of the present invention.
Referring to
In the case of the optical detecting method, the detection portion 3 formed on the rotary disk 2 consists of a portion that transmits or reflects light incident from the outside. The transmitted light or the reflected light is detected by the detector 4 including a light sensor and the like, to thereby detect a rotation angle and rotational frequency of the rotary disk 2.
As a consequence, the detection portion 3 is formed of a portion that transmits light or a portion that reflects light or a portion that absorbs light or the like on the rotary disk 2, while the detector 4 is made up of a light-emitting portion that irradiates light directed to the detection portion 3 and a light-receiving portion that receives the light transmitted through a transmitting portion of the detection portion 3 or the light reflected from a reflecting portion of the detection portion 3.
The rotary disk 2 has the detection portion 3 on a circumference thereof. The rotation angle and rotational frequency of the rotary disk 2 can be detected from a detection state of the detection portion 3.
In the rotary encoder of the present invention, the rotary disk 2 is attached to and supported by a disk holder 6. The disk holder 6 has a cylindrical shape and includes an inner circumferential portion interfitted with an outer circumferential portion of a rotary shaft, not shown, of the motor. Once the disk holder 6 is rotated along with rotation of the rotary shaft, the rotary disk 2 is rotated, too.
An attachment position (axial and radial directions) of the rotary disk 2 in relation to the disk holder 6 may be adjustable.
The detector 4 is attached to and supported by a housing 7. The housing 7 is so formed as to have a sectional shape of a pair of U's facing each other and accommodates the disk holder 6 attached with the rotary disk 2 in the inside thereof, to thereby make the rotary disk 2 rotatable in the inside.
In an inner circumferential surface of the housing 7, there is disposed the detector 4 including a light source, a light sensor and the like in one portion opposed to the rotary disk 2. A rotational position of the rotary disk 2 is detected, based on a detection signal of the detector 4.
An attachment position (axial and radial directions) of the detector 4 in relation to the housing 7 may be adjustable.
By adjusting the attachment position of the rotary disk 2 in relation to the disk holder 6 and that of the detector 4 in relation to the housing 7, a position adjustment of the rotary disk 2 and the detector 4 can be carried out.
It is also possible to make the position adjustment of the rotary disk 2 and the detector 4 by adjusting positional relation between the disk holder 6 and the housing 7.
The position adjustment of the rotary disk and the detecting means can be carried out in the following manner. To make the position adjustment, as illustrated in
In the above state, the rotary shaft 21 of the adjustment device 20 is rotated, to thereby obtain a detection signal by using the detector 4.
If the detection portion 3 of the rotary disk 2 and the detector 4 are correctly positioned, a prescribed signal waveform can be obtained from the detector 4. On the contrary, if the positioning is improper, a detected signal waveform deviates from the prescribed signal waveform.
Therefore, a displacement state of the detection portion 3 and the detector 4 is found by reference to the detection signal obtained by the detector 4, to thereby make the position adjustment to resolve the displacement. As stated, the position adjustment can be carried out by making the position adjustment (axial and/or radial direction) of the rotary disk 2 in relation to the disk holder 6 or by making the position adjustment (axial and/or radial direction) of the detector 4 in relation to the housing 7 or by making the position adjustment (axial and/or radial direction) of the disk holder 6 in relation to the housing 7 or the like.
After the position adjustment shown in
If the disk holder 6 and the housing 7 are supported by the retainer 8 in a state where the position adjustment shown in
Next, attachment of the rotary encoder, in which the position adjustment is completed, to the motor will be described with reference to
As illustrated in
a shows a state where the rotary encoder 1, in which the positional relation is retained by the retainer 8 through the operation shown in
A rotary shaft 31 of the motor 30 is inserted into a bore of the disk holder 6 provided to the rotary encoder (
As mentioned above, the positional relation between the disk holder 6 and the housing 7 is retained as adjusted by the retainer 8. Therefore, even during the process for attaching the rotary encoder 1 to the motor 30 as illustrated in
As illustrated in
Therefore, the retainer 8 fastened onto the disk holder 6 and the housing 7 is detached therefrom. At this point, the disk holder 6 is fitted to the rotary shaft 31 of the motor, and the housing 7 to the stationary portion 32 of the motor through the process shown in
Due to the removal of the retainer 8, the disk holder 6 and the rotary disk 2 become rotatable along with rotation of the rotary shaft 21 of the motor. At this moment, the positional relation between the detection portion 3 of the rotary disk 2 and the detector 4 stays as determined, which enables detection of a correct angle position.
A second embodiment of the rotary encoder of the present invention will be described below with reference to
The second embodiment has a configuration in which the retainer 8 is divided into two parts, namely a rotating portion 8a and a stationary portion 8b. The rotating portion 8a and the stationary portion 8b are connected to each other through a rotation-supporting portion 8c, such as a bearing. With such a configuration, the rotating portion 8a and the stationary portion 8b are rotatable, so that the disk holder 6 and the rotary disk 2 attached to the rotating portion 8a and the housing 7 attached to the stationary portion 8b then become rotatable.
Since the disk holder 6 and the housing 7 are made to be rotatable, the rotary disk 2 can be rotated without using the adjustment device required for the rotating operation of the disk holder 6, which is performed during the position adjustment in the first embodiment.
The configuration of the second embodiment may be designed to be similar to that of the first embodiment apart from the above-described part of the configuration, and the common parts of the configuration will be omitted here.
Subsequently, the rotary encoder 1 is fitted to the motor 30 in a state where the retainer 8 is still attached thereto.
In this state, the motor 30 is used as a position adjustment device to make a position adjustment. At the time of the position adjustment, the disk holder 6 is fitted to the rotary shaft 31 of the motor 30 to make the rotary disk 2 rotatable, while the housing 7 attached with the detector 4 is fitted to the stationary portion 32 of the motor 30 to fasten the housing 7.
In the above state, the rotary shaft 31 of the motor 30 is rotated, to thereby obtain a detection signal by using the detector 4. If the detection portion 3 of the rotary disk 2 and the detector 4 are correctly positioned, the prescribed signal waveform is obtained from the detector 4. On the contrary, if the positioning is improper, a detected signal waveform deviates from the prescribed signal waveform.
Therefore, a displacement state of the detection portion 3 and the detector 4 is found by reference to the detection signal obtained by the detector 4, to thereby make the position adjustment to resolve the displacement. As stated, the position adjustment can be carried out by making the position adjustment (axial and/or radial direction) of the rotary disk 2 in relation to the disk holder 6 or by making the position adjustment (axial and/or radial direction) of the detector 4 in relation to the housing 7 or by making the position adjustment (axial and/or radial direction) of the disk holder 6 in relation to the housing 7 or the like.
Thereafter, as illustrated in
According to the second embodiment, since the rotary disk can be rotated in the encoder unit, it is possible to make a fine adjustment to a position of the angle-detecting mechanism 5, and the like. Moreover, it is not necessary to attach the disk holder 6 to the shaft that is rotationally supported by the bearing separately prepared, unlike the first embodiment. This facilitates assembly of the encoder unit.
The rotary encoder of the present invention can be applied not only to an optical encoder but also to a rotary encoder based on other detection principles including a magnetic type and the like.
Number | Date | Country | Kind |
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362015/2003 | Oct 2003 | JP | national |