The present invention relates to an amplifying repeater, which is constructed in such a manner that a ferrite core is inserted into a coil with a predetermined number of winds to increase an induced electromotive force caused by an increase in flux linkage using a time-varying magnetic field of electromagnetic waves at a position distant from an electromagnetic wave generating source by a predetermined distance, and that the coil and a variable condenser for inducing resonance are connected to each other to intensify and amplify the magnetic field of electromagnetic waves, and a wireless power converter using electromagnetic waves, which is located at a predetermined distance from the amplifying repeater, connects a resonance and impedance matching variable condenser to a coil to effectively transmit an induced power to a load, and rectifies and smoothes the induced power using a diode to supply the power to a charging battery or various loads.
The induced electromotive force obtained from a time variation of the magnetic field of electromagnetic waves using Faraday's law is generated in proportion to the number of winds of an induction coil and a time variation of flux linkage. However, the intensity of the magnetic field is abruptly decreased in response to a distance from an electromagnetic wave generating source. Thus, the induced electromotive force is hardly induced to the induction coil at more than a predetermined distance so that energy according to wireless power conversion cannot be obtained. Furthermore, the induction coil must be disposed within a very short range from the electromagnetic wave generating source in a prior art so that its installation position is greatly restricted or it cannot be installed because of its bad appearance.
Accordingly, the present invention has been made in view of the above mentioned problem, and it is an object of the present invention to provide an electromagnetic wave amplifying repeater, which is constructed in such a manner that a ferrite core is inserted into a coil with a predetermined number of winds to increase an induced electromotive force caused by an increase in flux linkage using a time-varying magnetic field of electromagnetic waves at a position distant from an electromagnetic wave generating source by a predetermined distance, connect the induction coil to a variable condenser for inducing resonance to construct an amplifying repeater that maximizes a current while reducing a resistant component existing in the induction coil to intensify and amplify the magnetic field of electromagnetic waves, and to provide a wireless power converter using the amplifying repeater, which includes a rectifying diode for rectifying an electromotive force induced in a structure in which a resonance and impedance matching variable condenser is connected in parallel with a coil to effectively transmit an induced electromotive force using the electromagnetic waves amplified by the amplifying repeater, having a predetermined distance from the amplifying repeater, and a smoothing condenser for smoothing the rectified voltage.
Another object of the present invention is to provide an amplifying repeater located at a very short distance from an electromagnetic wave generating source or attached to a wireless power converter to intensify and amplify the magnetic field of electromagnetic waves such that the amplifying repeater is installed unrestrictedly and an amplifying repeater and wireless power converter are applied in various ways according to wireless power conversion using the amplified electromagnetic waves.
To achieve the above objects, according to the present, there is provided an electromagnetic wave amplifying repeater capable of amplifying and repeating the magnetic field of electromagnetic waves generated artificially or generated from various electromagnetic wave generating sources, including: an induction coil formed by winding a coil with a predetermined thickness in a desired size and form by a predetermined number of winds; a magnetic substance having a predetermined size and form, the magnetic substance being combined with the induction coil to increase flux; and a variable condenser connected to the induction coil to construct a resonance circuit.
Further objects and advantages of the invention can be more fully understood from the following detailed description taken in conjunction with the accompanying drawings, in which:
11: Core, 12: Inducing Coil
20: AC Power Generator
21: Electromagnetic Wave Generating Source
22: Receiver 23: Output Part
24: Ruler
25, 26, 27, 28, 30, 32, 34: Amplifying Repeater
29: Transmission Coil
31: Receiver 1, 33: Receiving Coil
51: Spiral Coil Type Receiving Coil
52: Spiral Coil Type Amplifying Repeater
53: Spiral Coil Type Transmission Coil
L1: Receiving Coil,
C1: Condenser for Impedance Matching,
C2: Smoothing Condenser,
1.3 V: Battery Voltage for Charging
The present invention will now be described in detail in connection with preferred embodiments with reference to the accompanying drawings. For reference, like reference characters designate corresponding parts throughout several views.
The present invention provides an amplifying repeater, which is constructed in such a manner that a ferrite core is inserted into a coil with a predetermined number of winds to increase an induced electromotive force caused by an increase in flux linkage using a time-varying magnetic field of electromagnetic waves using Faraday's law at a position distant from an electromagnetic wave generating source by a predetermined distance and the induction coil and a variable condenser for inducing resonance are connected to each other to maximize an induced current while reducing a resistant component existing in the induction coil to amplify the magnetic field of electromagnetic waves. Furthermore, the present invention provides a wireless power converter located at a predetermined distance from the amplifying repeater or attached to the amplifying repeater. The wireless power converter includes a rectifying diode for rectifying an electromotive force induced in a construction in which a magnetic core such as a ferrite core is inserted in an induction coil with a predetermined number of winds for transmitting maximum induced power to a charging battery that is a load using electromagnetic waves amplified by the amplifying repeater and the induction coil is connected to a variable condenser for controlling resonance and impedance matching, a smoothing condenser for smoothing the rectified voltage, and a receiving coil having a predetermined DC voltage and current.
In receiving electromagnetic power using Faraday's law, the present invention amplifies the magnetic field of time-varying electromagnetic waves generated in a television receiver or a monitor or electromagnetic waves artificially generated by connecting a transmission coil to a load of an AC power generating circuit using an amplifying repeater to obtain an induced electromotive force using an induction coil at a position distant from an electromagnetic wave generating source by a predetermined distance and maximizes the obtained induced voltage and current, to thereby provide a magnetic field amplifying repeater for receiving electromagnetic power, which enables high efficiency electric energy conversion, and a high efficiency wireless power converter using the amplifying repeater.
The construction of the amplifying repeater for amplifying an induced magnetic field of electromagnetic waves will now be described.
The electromagnetic wave amplifying repeater according to the present invention obtains an induced electromotive force using electromagnetic waves generated from an electromagnetic wave generating source and emits the obtained induced power to the air. The present invention winds a coil round a bobbin having a predetermined diameter and size (having an internal diameter of 10 mm and an external diameter of 15 mm) by a predetermined number of times and a ferrite core is inserted in the bobbin to manufacture an induction coil. The diameter and the number of winds of the induction coil and the size of the ferrite core are designed such that the induced electromotive force is maximized. The induction coil can be constructed in parallel or in series in consideration of its resistance value. In the present invention, the diameter and length of the ferrite core are 9 mm and 110 mm, respectively, and two induction coils each have a diameter of 0.3 mm and a number of winds of 160 are connected in parallel with each other. The induction coils are wound round the aforementioned bobbin, the ferrite core is inserted into the bobbin and a variable condenser is connected in parallel with the induction coils to construct a resonance circuit to maximize induced power and emit electromagnetic waves.
The wireless power converter according to the present invention is located at a pre-, determined distance from the amplifying repeater or attached to the amplifying repeater and includes a ferrite core having a diameter of 9 mm and a length of 110 mm and two induction coils having a diameter of 0.3 mm and a number of winds of 100, connected in parallel with each other. The induction coils are wound round a bobbin having a predetermined size (an internal diameter of 10 mm and an external diameter of 15 mm), the ferrite core is inserted into the bobbin and a variable condenser is connected in parallel with the induction coils to impedance-match with a resonance and load electronic circuit to maximize an induced electromotive force. The wireless power converter further includes a diode for rectifying the induced electromotive force and a smoothing condenser for smoothing the rectified voltage. The wireless power converter can be used as a power supply of a charging device because it generates a DC voltage having a specific current.
Various experiments were made using the electromagnetic field amplifying repeater designed and manufactured as above and the wireless power converter according to the present invention, as shown in
When the wireless power converter is combined with the amplifying repeater, as shown in
In the construction in which two different amplifying repeaters 25 and 27 are in stalled and the amplifying repeater 28 is combined with a receiving coil and the wireless power converter, as shown in
In another embodiment of the present invention, a transmission coil is connected to a load of an AC power generating circuit of a TV receiver, which is an artificial electromagnetic wave generating source, to construct a source of generating AC power waveform having a frequency of 130 kHz, and the transmission coil, a repeater and coils used in first and second receivers are constructed, as shown in Table 6, to measure a receiving voltage, a receiving current and a receiving power in response to a ruler distance using the wireless power converter of
In Table 6, the first receiver is constructed of a general solenoid coil constructed such that a coil is wound round a core and the second receiver includes a receiving coil wound round the upper part of a common core ten times and a repeater constructing a resonance circuit of a coil wound round the lower part of the common core forty times and a capacitor.
Table 7 represents the voltage, current and power measured at an output load terminal (tens of parallel LED's) of a receiver 31 when a transmission coil 29, an amplifying repeater 30 and the receiver 31 manufactured as shown in Table 6 are installed as shown in
Table 8 represents the voltage, current and power measured at an output load terminal of receivers 33 and 34 when the transmission coil 29, amplifying repeater 32 and receivers 33 and 34 manufactured as shown in Table 6 are installed as shown in
It can be known from Tables 7 and 8 that the receiving voltage, receiving current and receiving power in response to a distance are much larger when they are obtained using the receiver 31 manufactured by winding only an induction coil round a core than when they are obtained using the receivers 33 and 34 including an induction coil and a repeater constructed of a resonance circuit, which are attached to a single common core.
Another embodiment of the present invention constructs induction coils by winding coils having various diameters round bobbins having various sizes by different numbers of winds in consideration of the size and scale of an electromagnetic wave generating source, connects the induction coils in series or in parallel, inserts ferrite cores having diameters and lengths fitted into the internal diameters of the bobbins, and connects the induction coils to a variable condenser to construct a resonance circuit. In this manner, an electromagnetic field amplifying repeater can be constructed in various sizes and forms and an apparatus capable of obtaining charging voltage, charging current and charging power with various levels can be realized using the amplifying repeater and the wireless power converter.
Another embodiment of the present invention constructs a transmission coil, a repeater and a receiver using the spiral structure disclosed in Korean Patent Application No. 10-2004-0000528 applied by the Applicant. In this case, an electromagnetic wave generating source that generates a voltage of AC 220V and 60 Hz converted into an AC voltage waveform having a frequency of 120 kHz through an AC-AC adapter is connected to the transmission coil in a spiral form, a receiving coil is connected to a charging circuit, and a received charging current and voltage are measured. The distance between the transmission coil and the receiving coil is 5 cm.
In
For reference, when only the transmission coil 53 and receiving coil 51 are used without using the repeater and the distance between the transmission coil and the receiving coil is 5 cm, charging voltage is 1.4V, charging current is 0.01 A and charging power is 0.014 W, which are very small.
In
Furthermore, the present invention can construct a wireless charging device that generates an induced voltage and current with high efficiency and charges the induced voltage and current in a charger using a rectifying diode and a smoothing condenser by simultaneously winding two wires of the spiral coil disclosed in Korea Patent Application No. 10-2004-0000528 in the form of plate such that they are located in parallel vertically, placing a ferromagnetic substance in a doughnut shape on the coil in order to increase flux caused by flux linkage per hour and connecting a variable condenser to the coil in series or in parallel to construct a resonance circuit. Here, an electromagnetic field amplifying repeater can be manufactured by constructing the resonance circuit using the spiral plate type coil, ferromagnetic substance in a doughnut shape and variable condenser. A method of manufacturing the electromagnetic field amplifying repeater is described in detail in Korea Patent Application No. 10-2004-0000528.
The present invention constructs a magnetic field amplifying repeater for amplifying a magnetic field at a position having a predetermined distance from an electromagnetic wave generating source and locates an electromagnetic wave amplifying repeater and a wireless power conversion charging device converter at a position distant from the amplifying repeater by a predetermined distance. The wireless power conversion charging device include a rectifying diode that rectifies an electromotive force induced in a structure in which a resonance and impedance matching variable condenser and a coil are connected in parallel with each other to induce maximum power using electromagnetic waves amplified by the amplifying repeater to transmit the induced power to a load and a smoothing condenser smoothing the rectified voltage and a wireless power. Accordingly, the present invention can repeat power to a predetermined distance from the electromagnetic wave generating source and convert electromagnetic power to improve industrial applicability. For example, the present invention can be used to charge contactless wireless battery or transmit power in real time at a short distance in the air or an insulator of a small power electronic device.
The present invention can locate the magnetic field amplifying repeater at a position having a predetermined distance from the electromagnetic wave generating source to install the wireless power converter using electromagnetic waves, and thus the wireless power converter can be freely located and applied in various ways.
While the present invention has been described with reference to the particular illustrative embodiments, it is not to be restricted by the embodiments but only by the appended claims. It is to be appreciated that those skilled in the art can change or modify the embodiments without departing from the scope and spirit of the present invention.
Number | Date | Country | Kind |
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10-2004-0059562 | Jul 2004 | KR | national |
This application is a Reissue Application from U.S. Pat. No. 8,681,465 B2 issued on Mar. 25, 2014 and filed Jul. 16, 2012, which is a continuation of U.S. application Ser. No. 12/969,285, filed on Dec. 15, 2010 now U.S. Pat. No. 8,259,429, which is a continuation of U.S. application Ser. No. 11/572,410, filed on Jan. 19, 2007, which is a U.S. national phase application of PCT/KR2005/002468 filed on Jul. 29, 2005, now U.S. Pat. No. 7,885,050 which designates the United States and claims priority of Korean Patent Application No. 10-2004-0059562 filed on Jul. 29, 2004, the entire contents of which are incorporated herein by reference.
Number | Name | Date | Kind |
---|---|---|---|
2611094 | Rex | Sep 1952 | A |
4403347 | Iso et al. | Sep 1983 | A |
4583099 | Reilly et al. | Apr 1986 | A |
4800328 | Bolger | Jan 1989 | A |
5929598 | Nakama | Jul 1999 | A |
5959515 | Cornett et al. | Sep 1999 | A |
5966063 | Sato et al. | Oct 1999 | A |
6172608 | Cole | Jan 2001 | B1 |
6633155 | Liang | Oct 2003 | B1 |
6650227 | Bradin | Nov 2003 | B1 |
6839035 | Addonisio | Jan 2005 | B1 |
7199717 | Lian | Apr 2007 | B2 |
7885050 | Lee | Feb 2011 | B2 |
8400017 | Kurs et al. | Mar 2013 | B2 |
20010012208 | Boys | Aug 2001 | A1 |
20030048254 | Huang | Mar 2003 | A1 |
20030234730 | Arms et al. | Dec 2003 | A1 |
20040130916 | Baarman | Jul 2004 | A1 |
20050068146 | Jessie | Mar 2005 | A1 |
20050179551 | Lian | Aug 2005 | A1 |
Number | Date | Country |
---|---|---|
1447954 | Oct 2004 | CN |
1185599 | Jan 2005 | CN |
0533247 | Sep 1992 | EP |
0533324 | Sep 1992 | EP |
0829940 | Mar 1998 | EP |
03-098432 | Apr 1991 | JP |
04-329336 | Nov 1992 | JP |
10-257697 | Sep 1998 | JP |
10-295043 | Nov 1998 | JP |
11-188113 | Jul 1999 | JP |
2000-208316 | Jul 2000 | JP |
2001-238372 | Aug 2001 | JP |
2002-508916 | Mar 2002 | JP |
2003-070187 | Mar 2003 | JP |
2003-088005 | Mar 2003 | JP |
2005-56202 | Mar 2005 | JP |
10-1991-0020756 | Dec 1991 | KR |
10-2002-0080591 | Oct 2002 | KR |
10-2004-0000528 | Jan 2004 | KR |
10-2004-0008248 | Jan 2004 | KR |
10-2004-0033297 | Apr 2004 | KR |
10-2004-0052878 | Jun 2004 | KR |
10-2004-0052878 | Jun 2004 | KR |
10-2004-0059562 | Jul 2004 | KR |
10-2004-0072581 | Aug 2004 | KR |
10-2004-0093696 | Nov 2004 | KR |
10-2005-0027984 | Mar 2005 | KR |
10-2005-0072402 | Jul 2005 | KR |
10-2006-0005640 | Jan 2006 | KR |
10-2006-0054861 | May 2006 | KR |
10-2007-0041821 | Apr 2007 | KR |
10-2007-0041824 | Apr 2007 | KR |
10-2008-0084914 | Sep 2008 | KR |
10-2009-0038150 | Apr 2009 | KR |
WO 9749076 | Dec 1997 | WO |
Entry |
---|
International Search Report dated Nov. 29, 2005 in counterpart International Application No. PCT/KR2005/002468 (3 pages, in English). |
English Translation of Offiec Action dated Aug. 3, 2011, in counterpart a Japanese Patent Application No. 2007-523481 (Original Office Action dated Nov. 16, 2011). |
Extended European Search Report dated Jul. 19 2011, in counterpart European Patent Application No. 05774106.8 (7 pages, in English). |
Japanese Patent Office, Notification of Reasons for Refusal, dated Sep. 7, 2010. |
Korean Intellectual Property Office, Notification of Reasons for Refusal dated Sep. 1, 2006. |
Korean Intellectual Property Tribunal The 9th Division, Trial Decision, Nov. 30, 2007. |
Japanese Office Action dated Jun. 25, 2013 in counterpart Japanese Application No. 2011-049307 (2 pages, in Japanese). |
Donaldson, N. de N., et al. “Analysis of resonant coupled coils in the design of radio frequency transcutaneous links.” Medical & Biological Engineering & Computing, Sep. 21, 1983, pp. 612-627. |
Puers, R., et al. “Recent Progress on Transcutnaeous Energy Transfer for Total Artificial Heart Systems.” Artificial Organs, 25(5), Blackwell Science, Inc., pp. 400-205. |
Office Action dated Nov. 8, 2018, issued by the USPTO in U.S. Appl. No. 15/684,064. |
Office Action dated Mar. 15, 2019, issued by the United States Patent and Trademark Office in counterpart U.S. Appl. No. 15/684,064. |
Hamici, Zoubir, et al. “A high-efficiency power and data transmission system for biomedical implanted electronic devices.” Meas. Sci. Technol. 7 (1996), pp. 192-201. |
Stark, III, Joseph C. “Wireless Power Transmission Utilizing a Phased Array of Tesla Coils.” Massachusetts Institute of Technology, May 2004, Jun. 2004, pp. 1-247. |
Van Schuylenbergh, Koenraad, et al. “Self-tuning inductive powering for implantable telemetric monitoring systems.” Sensors and Actuators A 52 (1996), pp. 1-7. |
Vandevoorde, G., et al. “Wireless energy transfer for stand-alone systems: a comparison between low and high power applicability.” Sensors and Actuators A 92 (2001), pp. 305-311. |
Wu, Jie, et al. “Inductive generation of arbitrary waveforms for electrical stimulation using implantable microcoils.” Journal of Microeconomics and Microengineering, 14 (2004), pp. 1012-1021, Institute of Physics Publishing. |
Wu, Jie, et al. “Powering efficiency of inductive links with inlaid electroplated microcoils.” Journal of Microeconomics and Microengineering, 14 (2004), pp. 576-586, Institute of Physics Publishing. |
Zierhofer, Clemens, et al. “High-Efficiency Coupling-Insensitive Transcutaneous Power and Data Transmission Via an Inductive Link.” IEEE Transactions on Biomedical Engineering, vol. 37, No. 7, Jul. 1990, pp. 716-722. |
Zierhofer, C.M., et al. “Geometric Approach for Coupling Enhancement of Magnetically Coupled Coils.” IEEE Transactions on Biomedical Engineering, vol. 43, No. 7, Jul. 1996, pp. 708-714. |
English Translation of Office Action issued on Aug. 3, 2011, in counterpart a Japanese Patent Application No. 2007-523481 (Original Office Action submitted on Nov. 16, 2011). |
Korean Intellectual Property Tribunal The 9th Divison, Trial Decision, Nov. 30, 2007. |
Chinese Intellectual Property Office, The First Office Action, Dec. 18, 2009. |
English Translation of the Japanese Office Action issued on Aug. 31, 2011, in counterpart Japanese Patent Application No. 2007-523481 (2 pages, in English). |
Extended European Search Report issued on Jul. 19, 2011, in counterpart European Patent Application No. 05774106.8 (7 pages, in English). |
Catrysse, Michael, et al. “An inductive power system with integrated bi-directional data-transmission.” Sensors and Actuators A 115 (2004), pp. 221-229. |
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Parent | 12969285 | Dec 2010 | US |
Child | 13558910 | US | |
Parent | 11572410 | US | |
Child | 12969285 | US |
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Parent | 13558910 | Jul 2012 | US |
Child | 15081297 | US |