The priority application number JP2008-82330, Operation Apparatus, Mar. 27, 2008, Yohko Naruse, Noriaki Kojima, upon which this patent application is based is hereby incorporated by reference.
1. Field of the Invention
The present invention relates to an operation apparatus, and more particularly, it relates to an operation apparatus comprising a first electrode and a second electrode arranged to be opposed to the first electrode and generating an electric field or a magnetic field.
2. Description of the Background Art
An operation apparatus comprising a first electrode and a second electrode (electret film) arranged to be opposed to the first electrode and generating an electric field or a magnetic field is known in general.
In a conventional operation apparatus (electrostatic induction conversion device), two substrates are arranged to be opposed to each other, and a plurality of electret films (second electrodes) and conductors (first electrodes) formed in oblong shapes or square shapes are formed on opposed surfaces of the respective substrate. In this electrostatic induction conversion device, the electret films (second electrodes) and the conductors (first electrodes) relatively move from a state where the electret films and the conductors are opposed to each other, thereby changing the quantity of charges stored in the conductors by electrostatic induction. This changed quantity of charges is extracted, thereby generating power.
An operation apparatus according to a first aspect of the present invention comprises a first electrode, and a second electrode arranged to be opposed to the first electrode, capable of moving relatively to the first electrode, and including an electric field or magnetic field generating region, wherein the first electrode and the second electrode are so arranged that a center of the first electrode in a movement direction and a center of the electric field or magnetic field generating region of the second electrode in the movement direction deviate from each other in an initial state.
A power generator according to a second aspect of the present invention comprises a collector, and an electret film arranged to be opposed to the collector, capable of moving relatively to the collector, and including an electric field generating region, wherein the collector and the electret film are so arranged that a center of the collector in a movement direction and a center of the electric field generating region of the electret film in the movement direction deviate from each other in an initial state, and power is generated by electrostatic induction generated by relative movement of the collector and the electret film.
An actuator according to a third aspect of the present invention comprises a first electrode, and a second electrode arranged to be opposed to the first electrode, capable of moving relatively to the first electrode, and including an magnetic field generating region, wherein the first electrode and the second electrode are so arranged that a center of the first electrode in a movement direction and a center of the magnetic field generating region of the second electrode in the movement direction deviate from each other in an initial state, and the first electrode and the second electrode relatively move by electromagnetic interaction between the first electrode and the second electrode.
The foregoing and other objects, features, aspects and advantages of the present invention will become more apparent from the following detailed description of the present invention when taken in conjunction with the accompanying drawings.
The embodiments of the present invention will be hereinafter described with reference to drawings.
A structure of an electrostatic power generator 100 according to a first embodiment of the present invention will be described with reference to
In this electrostatic power generator 100 according to the first embodiment, a stator 1 and a mover 2 are arranged at a prescribed interval therebetween to be opposed to each other, as shown in
In the stator 1, an electret film 12 is formed on a surface of a fixed substrate 11, as shown in
In the mover 2, a collector 22 and a collector 23 are formed on a surface of a movable substrate 21 as shown in
As shown in
As shown in
According to the first embodiment, in an initial state, the electret film 12 and the collector 22 are so arranged with deviation that centers A of the electrode portions 221 of the collector 22 in the direction X (short-direction) and ends 121A of regions 121, where an electric field is generated, on the surface of the electret film 12 coincide with each other in plan view, as shown in
(Simulation)
A simulation conducted for explaining the relation between a position of the collector and the changed quantity of potentials causing electrostatic induction in the collector will be described with reference to
As shown in
An intensity of a potential at a point at a distance of 9 μm from the electret film 41 will be now described. As shown in
The changed quantity of potentials causing electrostatic induction in the collector 43 before and after moving the collector 43, which is arranged to be opposed to the electret film 41 in the three electret films 41 shown in
A power generating operation of the electrostatic power generator 100 according to the first embodiment of the present invention will be now described with reference to
As shown in
When the mover 2 moves in the direction X (along arrow X1, for example), the collector 22 and the guard electrodes 13 are opposed to each other and the collector 23 and the regions 121 of the electret film 12 are opposed to each other. Thus, the quantity of positive charges stored in the collector 23 are increased and the quantity of positive charges stored in the collector 22 are reduced. When the mover 2 moves along arrow X2, the collector 23 and the guard electrodes 13 are opposed to each other and the collector 22 and the regions 121 of the electret film 12 are opposed to each other. Thus, the quantity of positive charges stored in the collector 23 are reduced and the quantity of positive charges stored in the collector 22 are increased. The changed quantity of positive charges stored in the collector 22 and the collector 23 are extracted by the circuit 3, thereby generating power.
According to the first embodiment, as hereinabove described, in the initial state, the collector 22 and the electret film 12 are so arranged with deviation that the centers A of the electrode portions 221 of the collector 22 in the direction X and the ends 121A of the regions 121 of the electret film 12 substantially coincide with each other in plan view, whereby change of the intensity (potential) of an electric field is large on the surfaces of the ends 121A of the regions 121 of the electret film 12 as shown in
According to the first embodiment, as hereinabove described, the center A of each of the plurality of electrode portions 221 of the collector 22 and the center B of each of the plurality of the regions 121, where an electric field is generated, of the electret film 12 deviate from each other by the substantially regular interval, whereby the quantities of charges induced in the plurality of electrode portions 221 can be rendered the same, and hence an operation of the electrostatic power generator 100 can be stabilized.
According to the first embodiment, as hereinabove described, the electrostatic power generator 100 comprises the electrode portions 221 of the collector 22 and the electrode portions 231 of the collector 23, whereby power can be generated by the two electrodes of the electrode portions 221 and the electrode portions 231 and hence the quantity of power generation can be increased.
According to the first embodiment, as hereinabove described, a plurality of the guard electrodes 13 are arranged at the prescribed intervals on the surface of the electret film 12 so that a plurality of the regions 121, where an electric field is generated, of the electret film 12 are provided, whereby the quantity of power generation can be increased as compared with a case of a single region 121.
Referring to
In this electrostatic power generator 101 according to the second embodiment, the collector 22 and the guard electrodes 13 are so arranged that the centers A of the electrode portions 221 in the direction X and the centers F of the guard electrodes 13 deviate from each other in an initial state, as shown in
According to the second embodiment, as hereinabove described, the collector 22 and the guard electrodes 13 are so arranged that the centers A of the electrode portions 221 in the direction X and the centers F of the guard electrodes 13 deviate from each other, whereby the changed quantity of potentials causing electrostatic induction in the collector 22 is not substantially 0, dissimilarly to a case where the centers A of the electrode portions 221 in the direction X and the centers F of the guard electrodes 13 coincide with each other (x=100 μm or −100 μm shown in
Referring to
In this electrostatic power generator 102 according to the third embodiment, the collector 22 and the electret film 12 are so arranged that the center A of each of the electrode portions 221 in the direction X and the center B of each of the regions 121 of the electret film 12 deviate from each other by at least the width W5 which is one-fourth of the width W4 of each of the regions 121 of the electret film 12 (at most one-half of the width W4 of each of the regions 121 of electret film 12), in the initial state, as shown in
According to the third embodiment, as hereinabove described, in the initial state, the collector 22 and the electret film 12 are so arranged that the center A of each of the electrode portions 221 of the collector 22 in the direction X and the center B of each of the regions 121, where an electric field is generated, of the electret film 12 in the direction X deviate from each other by at least the width W5 which is one-fourth of the width W4 of each of the regions 121 in the direction X and the collector 22 and the regions 121 of the electret film 12 overlap with each other in plan view. Thus, the center A of each of the electrode portions 221 and the center B of each of the regions 121 of the electret film 12 do not overlap with each other, and hence the quantity of power generation of the electrostatic power generator 102 can be inhibited from being substantially 0 even when relative movement of the collector 22 and the electret film 12 is small dissimilarly to a case where the center A of each of the electrode portions 221 and the center B of each of the regions 121 of the electret film 12 overlap with each other.
Referring to
In this electrostatic power generator 103 according to the fourth embodiment, the collector 22 and the electret film 12 are so arranged that the deviation between the center A of each of the electrode portions 221 in the direction X and the center B of each of the regions 121 of the electret film 12 in the direction X is smaller than the width W5 which is one-fourth of the width W4 of each of the regions 121 of the electret film 12 in an initial state, as shown in
According to the fourth embodiment, as hereinabove described, the collector 22 and the electret film 12 are so arranged that the deviation between the center A of each of the electrode portions 221 in the direction X and the center B of each of the regions 121 of the electret film 12 in the direction X is smaller than the width W5 which is one-fourth of a width W4 of each of the regions 121 of the electret film 12 in the initial state. Thus, the center A of each of the electrode portions 221 and the center B of each of the regions 121 of the electret film 12 do not overlap with each other, and hence the quantity of power generation of the electrostatic power generator 103 can be inhibited from being substantially 0 even when relative movement of the collector 22 and the electret film 12 is small, dissimilarly to a case where the center A of each of the electrode portions 221 and the center B of each of the regions 121 of the electret film 12 overlap with each other. The center A of each of the electrode portions 221 in the direction X deviates along arrow X1 with respect to the center B of each of the regions 121 of the electret film 12 in the direction X, whereby the quantity of power generation can be increased with respect to relative movement along arrow X1 (movement in a direction in which x is larger than 25 μm, shown in
Referring to
In this electrostatic power generator 104 according to the fifth embodiment, the collector 22 and the electret film 12 are so arranged that the deviation between the center A of each of the electrode portions 221 in the direction X and the center B of each of the regions 121 of the electret film 12 is smaller than the width W5 which is one-fourth of the width W4 of each of the regions 121 of the electret film 12 in an initial state, as shown in
According to the fifth embodiment, as hereinabove described, the collector 22 and the electret film 12 are so arranged that the deviation between the center A of each of the electrode portions 221 in the direction X and the center B of each of the regions 121 of the electret film 12 in the direction X is smaller than the width W5 which is one-fourth of a width W4 of each of the regions 121 of the electret film 12 in the initial state. Thus, the center A of each of the electrode portions 221 and the center B of each of the regions 121 of the electret film 12 do not overlap with each other, and hence the quantity of power generation of the electrostatic power generator 104 can be inhibited from being substantially 0 even when relative movement of the collector 22 and the electret film 12 is small, dissimilarly to a case where the center A of each of the electrode portions 221 and the center B of each of the regions 121 of the electret film 12 overlap with each other. The center A of each of the electrode portions 221 in the direction X deviates along arrow X2 with respect to the center B of each of the regions 121 of the electret film 12 in the direction X, whereby the quantity of power generation can be increased with respect to relative movement along arrow X2 (movement in a direction in which x is smaller than −25 μm, shown in
Referring to
In this electromagnetic actuator 105 according to the sixth embodiment, a stator 1B and a mover 2B are arranged at a prescribed interval therebetween to be opposed to each other, as shown in
As shown in
An operation of the electromagnetic actuator 105 according to the sixth embodiment of the present invention will be now described with reference to
A current is fed to the spiral coils 24 shown in FIGS. 11 and 12, thereby generating an magnetic field of a north or south pole on the spiral coils 24. A Direction of the current fed to the plurality of spiral coils 24 is so controlled that the magnet 14 is movable. Then the stator 1B and the mover 2B relatively move between the magnet 14 and the spiral coils 24 by repulsion or attraction.
The effects of the sixth embodiment are similar to those of the aforementioned first embodiment.
Although the present invention has been described and illustrated in detail, it is clearly understood that the same is by way of illustration and example only and is not to be taken by way of limitation, the spirit and scope of the present invention being limited only by the terms of the appended claims.
For example, while the collector 22 and the collector 23 are formed on the surface of the movable substrate 21 in the aforementioned first embodiment, the present invention is not restricted to this but only the collector 22 may be formed on the surface of the movable substrate 21 as shown in
While the electret film 12 is formed on the surface of the fixed substrate 11 in each of the aforementioned first to fifth embodiments, the present invention is not restricted to this but oblong guard electrodes 13A may be formed on a surface of a fixed substrate 11 and oblong electret films 12A may be formed on a surface of the guard electrodes 13A as shown in
While the collectors are interdigitally formed in the aforementioned first to fifth embodiments, the present invention is not restricted to this but the collectors may be oblongly formed.
While the electrostatic power generator are formed by the plurality of collectors and the plurality of regions, where an electric field is generated, of the electret film in each of the aforementioned first to fifth embodiments, the present invention is not restricted to this but the electrostatic power generator may be formed by a single collector and an single electret film.
While negative charges are injected into the electret film in each of the aforementioned first to fifth embodiments, the present invention is not restricted to this but positive charges may be injected into the electret film.
While each of the collectors includes the two electrode portions and the guard electrodes are formed by the two electrode portions in each of the aforementioned first to fifth embodiments, the present invention is not restricted to this but the collector may include three or more electrode portions and the guard electrodes may be formed by three or more electrode portions.
While the centers A of the plurality of electrode portions 221 of the collector 22 and the centers B of the plurality of regions 121 of the electret film 12 deviate from each other by the same width respectively in each of the aforementioned first to fifth embodiments, the present invention is not restricted to this but the center A of a part of the electrode portions 221 in the plurality of electrode portions 221 of the collector 23 and the center B of a part of the plurality of regions 121 of the electret film 12, corresponding to the part of the electrode portions 221 may be formed to deviate from each other by the same width respectively.
While each of the aforementioned first to sixth embodiments of the present invention is applied to the electrostatic power generator or the electromagnetic actuator which is an exemplary operation apparatus, the present invention is not restricted to this but the present invention may be applied to an electrostatic actuator or the like so far as the same is an operation apparatus having opposed electrodes.
Number | Date | Country | Kind |
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2008-82330 | Mar 2008 | JP | national |