1. Field of the Invention
The present invention relates to a position detecting apparatus that detects a position of a driving member which linearly moves or rotates, and particularly to a magnetic position detecting apparatus using magnetism.
2. Description of the Related Art
As a position detecting apparatus of this kind, Examined Japanese Patent Publication No. 54-41335 (patent document 1) discloses a structure in which one and the other magnetic resistance circuits, each having multiple magnetic resistance elements connected in series, are formed in a comblike shape and one and the other magnetic resistance circuits are horizontally arranged along a magnetic pole array direction.
Unexamined Japanese Patent Publication No. 7-4987 (patent document 2) discloses a technique in which a groove is formed on a magnetized surface to shape an output waveform from a magnetic resistance circuit at a reference position.
However, in the technique of patent document 1, since the multiple magnetic resistance circuits in the magnetic position detecting apparatus are arranged along the magnetic pole array direction, when one magnetic resistance circuit has numerous magnetic resistance elements or numerous magnetic resistance circuits are provided, there is a problem in which the length in the circuit in the magnetic pole array direction is increased to cause enlargement in size of the position detecting apparatus and a decrease in resolution of the output waveform.
Moreover, in patent document 2, when the multiple magnetic resistance circuits are provided, there occurs a problem of enlargement in size of the position detecting apparatus, similar to patent document 1. Moreover, in the position detecting apparatus of the driving member that rotates, there is a problem in which when a length of a position detecting apparatus in a width direction is increased, electric field strength received at both ends of the width direction of the position detecting apparatus is reduced by its positional shift, so that resolution of the output waveform is decreased.
The present invention has been made with consideration given to the aforementioned circumstances and an object of the present invention is to miniaturize a position detecting apparatus and provide a magnetic position detecting apparatus that is excellent in resolution.
According to the present invention, there is provided a magnetic position detecting apparatus includes one and the other magnetic resistance circuits each having multiple magnetic resistance elements arranged to be opposite to a magnetized surface where different magnetic poles are alternatively provided and each outputting current according to magnetic field strength of the magnetized surface. The magnetic position detecting apparatus further includes a power supply terminal provided in each magnetic resistance circuit. The magnetic position detecting apparatus further includes output terminals provided in each magnetic resistance circuit. One and the other magnetic resistance circuits may be arranged in such a way that the resistance elements of each of one and the other magnetic resistance circuits are connected to one another in series and arranged in a comblike shape to be parallel to one another along a current path of each magnetic resistance element and the magnetic resistance elements of the other magnetic resistance circuit are placed between the magnetic resistance elements of one magnetic resistance circuit.
According to the configuration of the present invention, one magnetic resistance circuit and the other magnetic resistance circuit are formed in a comblike shape and the magnetic resistance elements of the other magnetic resistance circuit are placed between the magnetic resistance elements of one magnetic resistance circuit. This makes it possible to reduce an area where the magnetic resistance circuits are arranged and improve miniaturization of the magnetic position detecting apparatus. Moreover, arrangement of the magnetic resistance elements can be integrated with respect to the magnetic pole width λ (referred to
In the present invention, it is preferable that the magnetic resistance elements, which configure at least either one or the other magnetic resistance circuit, include a reference magnetic resistance element and correction magnetic resistance elements that are shifted by (λ/n) or (λ2m) from the reference magnetic resistance element, and it is preferable that λ be a width of a magnetic pole in an array direction of magnetic poles on the magnetized surface, “n” be an even number excepting 0, and “m” be an odd number excepting 1.
According to the configuration of the present invention, an even harmonic component of the output wavelength is corrected by the magnetic resistance elements shifted by λ/n and an odd harmonic component of the output wavelength is corrected by the magnetic resistance elements shifted by λ/2m, thereby making it possible to obtain a sine waveform S and a cosine waveform C in a state that a reference wavelength h is adjusted as illustrated in
Moreover, in the present invention, it is preferable that a phase difference between output waveforms of one magnetic resistance circuit and the other magnetic resistance circuit be shifted by 90°.
The sine waveform S and the cosine waveform C are output simultaneously as illustrated in
Furthermore, in the present invention, it is preferable that a portion for connecting the respective magnetic resistance elements in series be formed of conductive material.
Since the respective magnetic resistance elements are placed in parallel to one another along the current path, the connecting portion of each magnetic resistance element cannot be placed in parallel to the current path. Accordingly, the connecting portion is formed of not the magnetic resistance element but conductive material, so that output can be obtained in a state that no influence of the magnetic field of the magnetized surface is exerted upon the connecting portion and the waveform accuracy of the output waveform can be further improved.
These objects and other objects and advantages of the present invention will become more apparent upon reading of the following detailed description and the accompanying drawings in which:
An embodiment of the present invention will be explained with reference to FIGS. 1 to 5.
A magnetic position detecting apparatus 1 according to this embodiment is one that detects a position of a zoom lens or a focus lens of an autofocus camera built in a cellular phone as an example. The camera has a magnetized surface 3 formed according to the drive of the zoom lens or the focus lens. On the magnetized surface 3, magnetic poles 5 including N poles and S poles are connected to one another in series and the N poles and S poles are alternatively formed. A width of one magnetic pole 5 in the array direction of the magnetic pole 5 is λ.
In the magnetic position detecting apparatus 1, a circuit 9 (pattern circuit) is formed on a base surface, and a surface of the circuit 9 is coated with resin material. The pattern circuit 9 includes a first magnetic resistance circuit +A, a second magnetic resistance circuit −A, a third magnetic resistance circuit +B, a fourth magnetic resistance circuit −B. The first to fourth magnetic resistance circuits +A, −A, +B, −B are connected to a common power source Vcc and a common earth GND, respectively.
In the present embodiment, one magnetic resistance circuit A includes the first magnetic resistance circuit +A and the second magnetic resistance circuit −A. The other magnetic resistance circuit B includes the third magnetic resistance circuit +B and the fourth magnetic resistance circuit −B.
In one magnetic resistance circuit A, the first magnetic resistance circuit +A and the second magnetic resistance circuit −A are placed at a position shifted by λ (360°) to make it possible to obtain output waveforms where both outputs are amplified. Similarly, the third magnetic resistance circuit +B and the fourth magnetic resistance circuit −B are placed at a position shifted by λ (360°) to make it possible to obtain output waveforms where both outputs are amplified.
In the first magnetic resistance circuit +A, a correction magnetic resistance element +A3 for an even harmonic component is placed at a position shifted by λ/2 with respect to a reference magnetic resistance element +A1. Also, a correction magnetic resistance element +A2 for an odd harmonic component is placed at a position shifted by λ/6. Moreover, a correction magnetic resistance element +A4 for an odd harmonic component is placed at a position shifted by λ/6 with respect to the correction magnetic resistance element +A3.
The correction magnetic resistance element +A3 for an even harmonic component may be placed at a position shifted by λ/n (“n” is an even number excepting 0) with respect to the reference magnetic resistance element +A1 and n=2 is given in the present embodiment. The correction magnetic resistance element +A2 for an odd harmonic component may be placed at a position shifted by λ/2m (“m” is an odd number excepting 1) with respect to the reference magnetic resistance element +A1 and m=3 is given in the present embodiment. Moreover, the correction magnetic resistance element +A4 may be placed at a position shifted by λ/2m (m is an odd number excepting 1) with respect to the correction magnetic resistance element +A3 for an even harmonic component and m=3 is given in the present embodiment.
In connection with the second to fourth magnetic resistance circuits −A, +B, −B, similar to the first magnetic resistance circuit +A, correction magnetic resistance elements −A3, +B3, −B3 for an even harmonic component are arranged with respect to the reference magnetic resistance circuits −A1, +B1, −B1, respectively, and correction magnetic resistance elements −A2, −A4, +B2, +B4, −B2, −B4 for an even harmonic component are arranged, respectively.
Furthermore, in the circuit 9 of the magnetic position detecting apparatus 1, an output terminal of the first magnetic resistance circuit +A is +A0, an output terminal of the second magnetic resistance circuit −A is −A0, and an output terminal of the third magnetic resistance circuit +B is +B0.
The respective magnetic resistance elements +A1 to +A4, −A1 to −A4, +B1 to +B4, −B1 to −B4 are arranged in parallel to one another along a current passage, respectively. Moreover, one magnetic resistance circuit +A and the other magnetic resistance circuit +B include magnetic resistance circuits +A1 to +A4 and +B1 to +B4 in such a way to form comblike shapes, respectively. The magnetic resistance elements +B2 and +B1 of the other magnetic resistance circuit +B are arranged between the comblike arranged magnetic resistance elements +A2 and +A3 of one magnetic resistance circuit +A. Similarly, in connection with the magnetic resistance circuits −A and −B, the magnetic resistance elements +B3 and +B4 are arranged between the magnetic resistance elements +A4 and −A4. The magnetic resistance elements −B4 and −B3 are arranged between the magnetic resistance elements −A3 and −A1. The magnetic resistance elements −A1 and −A2 are arranged between the magnetic resistance elements −B1 and −B3.
In the magnetic resistance circuits A and B, a connecting portion 13 for connecting each of the parallel-arranged magnetic resistance elements +A1 to +A4, −A1 to −A4, +B1 to +B4, −B1 to −B4 is formed of general conductive material.
An explanation will be next given of a function and an effect according to the present embodiment.
According to the present embodiment, one magnetic resistance circuit A and the other magnetic resistance circuit B are formed in such a way to have comblike shapes, respectively. The magnetic resistance elements +B1 to +B4 and −B1 to B-4 of the other magnetic resistance circuit B are arranged among the magnetic resistance elements +A1 to +A4 and −A1 to −A4 of one magnetic resistance circuit A, respectively. Accordingly, the circuit 9 of the magnetic position detecting apparatus (position sensor) 1 is integrated to make it possible to reduce an area and improve miniaturization of the position sensor 1.
Even when numerous magnetic resistance elements +B1 to +B4 and −B1 to −B4 are arranged, since the magnetic resistance elements +B1 to +B4 and −B1 to −B4 can be integrated with respect to the magnetic pole width λ of the magnetized surface 3, it is possible to reduce a detection width of the position sensor 1. Also, since numerous correction magnetic resistance elements can be arranged, accuracy in detection can be improved.
Particularly, the detection width of the position sensor is reduced to make it possible to decrease an interval error between each magnetic resistance element and the magnetized surface even when the magnetized surface is circularly shaped or curved. In addition, since a difference in magnetic field strength is reduced to make it possible to obtain an output waveform with high resolution.
In the magnetic resistance elements +A3, −A3, +B3, −B3 that are shifted by λ/n with respect to the reference magnetic resistance elements +A1, −A1, +B1, −B1, respectively, the even harmonic component of the output wavelength can be corrected. In the magnetic resistance elements +A4, +A2, −A4, −A2, +B4, +B2, −B4, −B2 that are shifted by λ/3m, respectively, the odd harmonic component of the output wavelength is corrected, thereby making it possible to obtain a sine waveform S and a cosine waveform C in a state that a reference wavelength h is adjusted as illustrated in
Moreover, in the present embodiment, as illustrated in
Since the respective magnetic resistance elements +A1 to +A4, −A1 to −A4, +B1 to +B4, −B1 to −B4 are arranged in parallel to one another along the current path, respectively, the connecting portion 13 for connecting each of the parallel-arranged magnetic resistance elements +A1 to +A4, −A1 to −A4, +B1 to +B4, −B1 to −B4 cannot be placed in parallel to the current path. However, the connecting portion 13 is formed of not the magnetic resistance element but conductive material, so that output can be obtained in a state that no influence of magnetic field of the magnetized surface is exerted upon the connecting portion 13 and the waveform accuracy of the output waveform can be further improved.
Various embodiments and changes may be made thereunto without departing from the broad spirit and scope of the invention. The above-described embodiment is intended to illustrate the present invention, not to limit the scope of the present invention. The scope of the present invention is shown by the attached claims rather than the embodiment. Various modifications made within the meaning of an equivalent of the claims of the invention and within the claims are to be regarded to be in the scope of the present invention.
For example, the magnetic position detecting apparatus 1 is not limited to the use of the linear driving. For example, the magnetized surface 3 may be formed along the circumference as illustrated in
The arrangement of the respective magnetic resistance elements in one magnetic resistance circuit A and the other magnetic resistance circuit B is not limited to the aforementioned embodiment. Arrangement where the respective magnetic resistance elements are rearranged to have substantially the same function and effect, for example, arrangement as illustrated in
The magnetic position detecting apparatus 1 according to the present invention is not limited to the camera. The magnetic position detecting apparatus 1 can be used in position control of a machine tool and can be used as a so-called encoder and the use thereof is not limited.
Number | Date | Country | Kind |
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2004-331619 | Nov 2004 | JP | national |