The present invention relates to a power acquisition device and a power acquisition method and, more particularly, to a power acquisition device and a power acquisition method that acquire power from an illuminating device. This application is based upon and claims the benefit of priority from the Japanese Patent Application No. 2007-130427, filed on May 16, 2007, the entire contents of which are incorporated herein by reference.
In recent years, as a method for acquiring power from an illuminating device, a method for acquiring power by utilizing a magnetic field generated from a fluorescent tube of the illuminating device having the fluorescent tube and a reflective plate has been developed as disclosed in Non-Patent Document 1.
Such a power acquisition method and device that convert a magnetic field to an electric current are likely to be connected to various power consuming nodes and, therefore, a power acquisition device capable of acquiring a required power needs to be designed and applied.
Non-Patent Document 1: NEC, Research Planning Division, Strategic Planning Group “Power supply technique for acquiring power from fluorescent lamp by electromagnetic induction has been developed” Feb. 9, 2006, NEC Corporation [searched on Apr. 26, 2007], Internet <URL: http://www.nec.co.jp/press/ja/0602/0903.html>.
As a power acquisition device relating to the present invention, a power acquisition device provided with a core (magnetic body) and a coil wound around the core can be taken.
This power acquisition device may be covered by a cover so as to prevent the core and coil from being seen directly from the outside.
Further, a space may be provided or not provided between the core and coil and the cover in the power acquisition device.
Since the cross-section of a fluorescent tube in the direction perpendicular to the surface of the fluorescent tube is a circle, a commonly-used toroidally-shaped core may be used as the core of the power acquisition device.
Therefore, when the toroidally-shaped core is used in the power acquisition device, the power acquisition device may have also a toroidal shape.
There are the following four parameters for designing and determining the amount of power to be acquired in the power acquisition device using the toroidally-shaped core: core's relative magnetic permeability, loss coefficient, number of turns of a secondary coil, core length, and core thickness.
An example of the above power acquisition device is illustrated in
In the power acquisition device illustrated in
As to the parameters described above, the higher the relative magnetic permeability becomes, the larger the amount of power to be acquired becomes, and the smaller the loss coefficient becomes, the larger the amount of power to be acquired becomes.
Further, a core to be used is determined with the price in mind. The number of turns does not depend on the amount of power to be acquired.
That is, in order to design and determine the amount of power to be acquired in the power acquisition device, parameters of the core length and core thickness need to be designed and determined.
However, as illustrated in
That is, the amount of power to be acquired in the power acquisition device using a toroidally-shaped core has been designed and determined based on only the core length.
As illustrated in
Accordingly, as the length of the power acquisition device is increased, the illuminance becomes lower, with the result that the original function of the fluorescent tube as an illuminating device cannot be fulfilled.
The present invention has been made in view of the above problems, and an object thereof is to achieve a power acquisition device and method capable of preventing the luminance from being lowered even when the length of the power acquisition device is increased and thereby fulfilling the original function as an illuminating device.
According to an aspect of the present invention, there is provided a power acquisition device to be fixed to an illuminating device having a fluorescent tube and a reflective plate so as to acquire power from a magnetic field generated by an alternating current flowing through the fluorescent tube by electromagnetic induction, wherein the power acquisition device is fixed so as to surround the fluorescent tube, and at least either the thickness in the direction perpendicular to the surface of the fluorescent tube or the length in the direction parallel to the length direction of the fluorescent tube is non-uniformly.
According to another aspect of the present invention, there is provided a power acquisition method of a power acquisition device to be fixed to an illuminating device having a fluorescent tube and a reflective plate so as to acquire power from a magnetic field generated by an alternating current flowing through the fluorescent tube by electromagnetic induction, wherein the power acquisition device is fixed so as to surround the fluorescent tube, and at least either the thickness in the direction perpendicular to the surface of the fluorescent tube or the length in the direction parallel to the length direction of the fluorescent tube is non-uniformly.
According to the present invention, there can be provided a power acquisition device capable of preventing the luminance from being lowered even when the length of the power acquisition device is increased and thereby fulfilling the original function as an illuminating device.
Exemplary embodiments of a power acquisition device according to the present invention will be described below with reference to the accompanying drawings.
First, as an example of a power acquisition device according to the first exemplary embodiment of the present invention, an example of a shape of the power acquisition device is illustrated in
The power acquisition device has a shape in which a coil 103 is wound around the core 101. The core and coil may be covered by a cover member or may be resin-molded. The outer shape of the power acquisition device illustrated in
The power acquisition device illustrated in
In the lower portion (area B2) of
Further, of the entire surface portion (area A2) where the reflective plate exists in the direction perpendicular to the surface of the fluorescent tube, in a first surface portion (area A1) where the distance between the surface of the fluorescent tube and the reflective plate is less than the predetermined distance, the thickness of the power acquisition device is set in a range of from Db2 to Db1.
In
In the first exemplary embodiment, the hollow portion 102 of the core has a circular shape. It is desirable that the shape of the hollow portion be determined in accordance with the cross-sectional shape of the fluorescent tube 202.
The thickness Db2 of the core 101 in the second surface portion (area B1) is determined depending on the magnitude of the acquisition power to be required.
Although the thickness Db2 of the core 101 in the second surface portion (area B1) is set to a fixed value in this example, it may be non-uniformly.
The length (length Lb1 of the power acquisition device in the direction parallel to the length direction of the fluorescent tube) of the power acquisition device is determined with the allowable upper limit on the reduction in luminance. Further, although the coil 103 is wound around the core 101 four times in
Thus, in the present exemplary embodiment, the thickness of the power acquisition device can be set larger than the minimum distance between the surface of the fluorescent tube and the reflective plate, so that the length of the power acquisition device in the direction parallel to the length direction of the fluorescent tube, which is required for acquiring the same power, can be reduced as compared with a conventional toroidally-shaped power acquisition device, allowing a power acquisition device capable of preventing illuminance degradation to be occurred.
Although the core illustrated in
As described above, the shape of the power acquisition device may be formed by combining two toroidally-shaped parts having the first thickness Db12 and second thickness Db11.
Further, as illustrated in
In both the exemplary embodiments illustrated in
Further, in the upper portion (area A1) of
Further, as illustrated in
Further, as illustrated in
Further, although the thickness (core thickness) of the power acquisition device in the lower portion (area B2) where the reflective plate does not exist in the direction perpendicular to the surface of the fluorescent tube and an area obtained by subtracting the area A1 from the area A2 is set to a fixed value in the above examples, it may be non-uniformly.
Further, although the thickness of the power acquisition device in the area A1 is set equal to the distance between the surface of the fluorescent tube and the reflective plate in the example of
Further, the power acquisition device employed in the present exemplary embodiment may have a configuration obtained by simply winding a coil directly around a core (magnetic body). Further, the coil and the core may be covered by a cover material.
A cable for power supply may be extended from a part of the present configuration.
Next, as a power acquisition device according to a second exemplary embodiment of the present invention, an example of a shape of the power acquisition device is illustrated in
The thickness of the power acquisition device illustrated in
Further, in the area where the reflective plate 1001 exists in the direction perpendicular to the surface of the fluorescent tube and the distance between the surface of the fluorescent tube and the reflective plate is not more than a predetermined value, the thickness of the power acquisition device is set equal to the distance between the surface of the fluorescent tube and the reflective plate. The thickness of the power acquisition device at the portion at which the distance between the surface of the fluorescent tube and the reflective plate becomes a minimum is Db31.
Further, as a modification of the above second exemplary embodiment illustrated in
Although the core thickness is made equal between the lower portion where the reflective plate 1001 does not exist in the direction perpendicular to the surface of the fluorescent tube 1002 and the upper portion where the reflective plate 1002 exists in the direction perpendicular to the surface of the fluorescent tube 1002 but the distance between the surface of the fluorescent tube and the reflective plate is not less than a predetermined value, the thickness may differ from between the lower and upper portions.
Further, although the thickness of the power acquisition device is set equal to the distance between the surface of the fluorescent tube and the reflective plate in the area where the reflective plate 1001 exists in the direction perpendicular to the surface of the fluorescent tube 1002 and the distance between the surface of the fluorescent tube and the reflective plate is not more than a predetermined value in the above two examples (
Although the power acquisition device whose outer shape is formed in accordance with the outer shape of the reflective plate as illustrated in
Further, as described in the first exemplary embodiment, the shape of the hollow portion of the power acquisition device is not limited to a circle but may be an ellipse or polygon.
Further, the power acquisition device employed in the present exemplary embodiment may have a configuration obtained by simply winding a coil directly around a core (magnetic body). Further, the coil and the core may be covered by a cover material.
A cable for power supply may be extended from a part of the present configuration.
Next, as a power acquisition device according to a third exemplary embodiment of the present invention, an example of a shape of the power acquisition device is illustrated in
In the power acquisition device illustrated in
Further, in the area where the reflective plate 1300 exists in the direction perpendicular to the surface of the fluorescent tube 1301 and the distance between the surface of the fluorescent tube 1301 and the reflective plate 1300 is not more than a predetermined value, the thickness of the power acquisition device is set equal to the distance between the surface of the fluorescent tube and the reflective plate. In this configuration, the core is formed into a shape having a groove opposite to the V-shaped convex.
Like the power acquisition device illustrated in
Further, the core thickness in the lower portion where the reflective plate 1300 does not exist in the direction perpendicular to the surface of the fluorescent tube 1301 and the area where the reflective plate 1300 exists in the direction perpendicular to the surface of the fluorescent tube 1301 but the distance between the surface of the fluorescent tube 1301 and the reflective plate 1300 is not less than a predetermined value may be uniformly or non-uniformly.
Further, also in the third exemplary embodiment, although the thickness of the power acquisition device is set equal to the distance between the surface of the fluorescent tube and the reflective plate in the area where the reflective plate 1300 exists in the direction perpendicular to the surface of the fluorescent tube 1301 and where the distance between the surface of the fluorescent tube 1301 and the reflective plate 1300 is not more than a predetermined value, it may be set to a value less than the distance between the surface of the fluorescent tube and the reflective plate.
Although the power acquisition device whose outer shape is formed in accordance with the outer shape of the reflective plate as illustrated in
Further, as described in the first and second exemplary embodiments, the shape of the hollow portion of the power acquisition device is not limited to a circle but may be an ellipse or polygon.
Further, the power acquisition device employed in the present exemplary embodiment may have a configuration obtained by simply winding a coil directly around a core (magnetic body). Further, the coil and the core may be covered by a cover material.
A cable for power supply may be extended from a part of the present configuration.
In the present exemplary embodiment, a configuration in which the length of the power acquisition device in the direction parallel to the length direction of the fluorescent tube is non-uniformly will be described.
Considering an illuminating device installed on the ceiling, light generated from the upper portion of the fluorescent tube reaches the floor after being reflected by a reflective plate, so that the light intensity becomes lower than that of light emitted from the lower portion of the fluorescent tube.
In view of this, the smaller the length of the lower portion of the power acquisition device positioned around the lower portion of the fluorescent tube, the less the luminance reduction occurs. On the other hand, it is desirable that the length of the upper portion of the power acquisition device be larger in order to prevent power reduction caused due to the reduction in the length of the lower portion of the power acquisition device. That is, assuming the area where the reflective plate exists in the direction perpendicular to the surface of the fluorescent tube is an area A2 and the area where the reflective plate does not exist in the direction perpendicular to the surface of the fluorescent tube is an area B2 in the illuminating device illustrated in
That is, a configuration illustrated in
Further, as illustrated in
Although the hollow portion of the power acquisition device is formed into a circle in the present exemplary embodiment, it may be formed into an ellipse or polygon and not limited to a circle.
Further, as described in the first exemplary embodiment, the shape of the hollow portion of the power acquisition device is not limited to a circle but may be an ellipse or polygon.
Further, the power acquisition device employed in the present exemplary embodiment may have a configuration obtained by simply winding a coil directly around a core (magnetic body). Further, the coil and the core may be covered by a cover material.
A cable for power supply may be extended from a part of the present configuration.
Further, in the configuration illustrated in
Although the exemplary embodiments of the present invention have been described, it should be understood that the present invention can be practiced in various forms without departing from the spirit and scope of the invention as defined by the appended claims. Thus, the above exemplary embodiments are merely illustrative and should not be considered restrictive in any way. The scope of the present invention is defined by the appended claims and not restricted by the descriptions of the specification and abstract. Further, all variations and modifications which come within the equivalent range of the claims are embraced in the scope of the present invention.
| Number | Date | Country | Kind |
|---|---|---|---|
| 2007-130427 | May 2007 | JP | national |
| Filing Document | Filing Date | Country | Kind | 371c Date |
|---|---|---|---|---|
| PCT/JP2008/059042 | 5/16/2008 | WO | 00 | 11/16/2009 |