This application claims the benefit under 35 U.S.C. § 119(a) of a Korean patent application filed on Oct. 21, 2015, in the Korean Intellectual Property Office and assigned Serial number 10-2015-0146995, the entire disclosure of which is hereby incorporated by reference.
The present disclosure relates to low-frequency heating apparatuses and methods using a magnetic field.
Various heating methods of the related art may be implemented based on frequency characteristics. For example, high-frequency heating methods (e.g., heating methods implementing a frequency of 2.4 GHz or higher) induce a high-frequency electric field to spin electric dipoles in an object to be heated. The high-frequency electric field generates intermolecular friction between molecules of the object thereby generating heat. Such high-frequency heating methods may be divided into dielectric heating and microwave heating. Dielectric heating may be used in heaters, drying wood, bonding, defrosting, killing germs, and medical fields.
Low-frequency heating methods employ indirect heating to induce a current through an object (e.g., a conductor) using electromagnetic induction by interlinking magnetic fields through the object. In order to increase heating efficiencies using a low-frequency heating method, the object may be positioned within in the interlinkage of more magnetic fields by reducing the distance between a heating coil and the object. Such low-frequency heating methods may be used for thermal processing, thermal treatment, surface treatment, welding, indirect heating, or other various purposes.
The above information is presented as background information only to assist with an understanding of the present disclosure. No determination has been made, and no assertion is made, as to whether any of the above might be applicable as prior art with regard to the present disclosure.
An example defrosting apparatus adopting high-frequency heating is a microwave oven. High-frequency defrosting apparatuses may defrost an object within a relatively short time, e.g., a few minutes, but reveals a few shortcomings, such as relatively high installation costs and different defrosting results depending on the shape of the object. For example, a particular portion of the object may defrost while the rest remains frozen.
The same is true for low-frequency heating apparatuses. Although low-frequency heating apparatuses enable quick defrosting, defrosting results are also based on a shape of an object. As an example, when an object has variable thicknesses, portions of the object may be unevenly defrosted.
Therefore, a need exists for a scheme for defrosting an object in an even and cost-saving manner
Aspects of the present disclosure are to address at least the above-mentioned problems and/or disadvantages and to provide at least the advantages described below. Accordingly, an aspect of the present disclosure is to provide an apparatus and method for heating an object using low-frequency magnetic fields.
In accordance with an aspect of the present disclosure, a low-frequency heating apparatus is provided. The low-frequency heating apparatus includes a signal generator configured to generate an operation frequency for inducing a current through a coil unit surrounding an internal area of a housing of the heating apparatus, a power amplifier configured to amplify power of the operation frequency to a predetermined level and transmit the amplified operation frequency to the coil unit, the coil unit configured to be energized to heat an object provided inside the housing through a magnetic field generated by the current, and at least one processor configured to monitor an impedance value of the coil unit resonating at the operation frequency and control a resonant operation of the coil unit based on the impedance value of the coil unit and an impedance value of the power amplifier.
In accordance with another aspect of the present disclosure, a method performed by a low-frequency heating apparatus is provided. The method includes generating, by a signal generator, an operation frequency for inducing a current through a coil unit surrounding an internal area of a housing of the heating apparatus, amplifying, by a power amplifier, power of the operation frequency to a predetermined level and the power amplifier transmitting the amplified operation frequency to the coil unit, energizing the coil unit to heat an object provided inside the housing through a magnetic field generated by the current, monitoring, by at least one processor, an impedance value of the coil unit resonating at the operation frequency, and controlling, by the at least one processor, a resonant operation of the coil unit based on the impedance value of the coil unit and an impedance value of the power amplifier.
According to the present disclosure, the low-frequency heating apparatus and method may evenly heat an object at a reduced cost.
Other aspects, advantages, and salient features of the disclosure will become apparent to those skilled in the art from the following detailed description, which, taken in conjunction with the annexed drawings, discloses various embodiments of the present disclosure.
The above and other aspects, features, and advantages of certain embodiments of the present disclosure will be more apparent from the following description taken in conjunction with the accompanying drawings, in which:
Throughout the drawings, like reference numerals will be understood to refer to like parts, components, and structures.
The following description with reference to the accompanying drawings is provided to assist in a comprehensive understanding of various embodiments of the present disclosure as defined by the claims and their equivalents. It includes various specific details to assist in that understanding but these are to be regarded as merely exemplary. Accordingly, those of ordinary skill in the art will recognize that various changes and modifications of the various embodiments described herein can be made without departing from the scope and spirit of the present disclosure. In addition, descriptions of well-known functions and constructions may be omitted for clarity and conciseness.
The terms and words used in the following description and claims are not limited to the bibliographical meanings, but, are merely used by the inventor to enable a clear and consistent understanding of the present disclosure. Accordingly, it should be apparent to those skilled in the art that the following description of various embodiments of the present disclosure is provided for illustration purpose only and not for the purpose of limiting the present disclosure as defined by the appended claims and their equivalents.
It is to be understood that the singular forms “a,” “an,” and “the” include plural referents unless the context clearly dictates otherwise. Thus, for example, reference to “a component surface” includes reference to one or more of such surfaces.
According to an embodiment of the present disclosure, an apparatus for heating an object using low-frequency magnetic fields is provided. For ease of description, an example in which the object to be heated is frozen food is described according to various embodiments of the present disclosure. However, various embodiments of the present disclosure may also be applicable to other various objects than the frozen food, such as objects or targets requiring thermal treatment, sterilization, and/or heating. Hereinafter, “object to be heated” is simply referred to as an object for ease of description.
Referring to
Referring to
Although not illustrated in
According to an embodiment of the present disclosure, upon the driving coil 206a receiving the operation frequency, a self-resonant frequency is induced at the helical coil 206b to generate an eddy current. According to an embodiment of the present disclosure, the operation frequency is assumed to be a relatively high frequency, e.g., 40.68 MHz, in a low-frequency band. According to an embodiment of the present disclosure, although not illustrated in the drawings, a capacitor may be connected in series with the helical coil 206b to form a LC resonance at the operation frequency. According to another embodiment of the present disclosure, multiple helical coils 206b may surround the inside of the housing.
In addition, according to another embodiment of the present disclosure, the matching circuit unit 204 is arranged between the power amplifier 202 and the coil unit 206 to adjust the strength of the magnetic fields generated through the helical coil 206b corresponding to an impedance Z of the object where the impedance Z is based on the defrosted state of the object. Specifically, inductive coupling may be used between the driving coil 206a and the helical coil 206b in order for the matching circuit unit 204 to provide impedance matching between the power amplifier 202 and the coil unit 206 (or a resonant coil).
Referring to
When multiple helical coils 302 are arranged inside the housing as shown in
Typically, when an object is frozen, defrosting is slowed down within the object because it is difficult for the frozen object to absorb a magnetic field due to a weak dielectric nature created by the frozen state of the object.
Referring to
Referring to
According to an embodiment of the present disclosure, a quick defrosting technique using a legacy high-frequency heating scheme is provided. An example of such apparatus may be a microwave oven. According to an embodiment of the present disclosure, an object may be subject to two-step heating. In other words, the two-step heating includes defrost heating (e.g., heating associated with defrosting the object from a frozen state to a substantially thawed state) and even heating (e.g., heating associated with cooking the object) using a resonant coil.
Referring to
Referring to
Referring to
The waveguide 601 may be disposed in one or more of the walls of the apparatus 600, except for the door 604, to apply power having a microwave frequency band corresponding to a few GHz to the apparatus 600 during the defrost heating period. A cross section of an inlet of the waveguide 601 may be positioned to be in parallel with a cross section of the coil 602.
A coil 602 for even heating as described above is disposed along the inner walls of the apparatus 600. The coil 602 here may be configured as described above in relevant embodiments (e.g., coil unit 206), and the description thereof is not repeated.
The door 604 may be configured as a hinged door to put an object in or out of the housing inside the apparatus 600 and a portion of the door 604 may include glass to allow to visually perceive the heated state of the object.
The shielding plate 606, formed of a metal, is attached onto outermost surfaces of the apparatus 600, except for the door 604, for the purpose of shielding electromagnetic interference (EMI). In addition, the shielding structure 608 (e.g., a frequency selective surface (FSS) cover) for shielding a particular frequency band 610 may be attached on an inner surface of the shielding plate 606. By attaching the shielding structure 608 to the shielding plate 606, the shielding plate 606 shields EMI for frequency bands other than the particular frequency band 610, e.g., a low frequency band while the shielding structure 608 functions shields EMI for the particular frequency band 610, e.g., a microwave frequency band.
Referring to
Comparison is made between when the beef meeting the above-enumerated conditions is thawed at room temperature and when the beef is thawed by heat generated by the apparatus. For the case where the beef is thawed at room temperature, the upper end surface and the lower end surface, i.e., the bottom, are assumed to present the same temperature difference, and thus, both the upper end surface and the lower end surface are denoted as “SURFACE” in the table illustrated in
As a result of heating the beef 700 at a power of 63 W in the apparatus, the temperature of the upper end surface of the beef 700 has increased from an initial temperature of −7° C. to 3° C. after five minutes whereas when the beef 700 is thawed at room temperature an increase to −3° C. is shown after five minutes. Ten minutes thereafter, the temperature of the beef 700 thawed at room temperature increases to −2.3° C., which is a small increase in temperature as compared with the temperature measured five minutes earlier. In contrast, the heating of the beef 700 in the apparatus leads to a significant temperature increase, such as to 4° C. for the upper end surface and 8° C. for the lower end surface.
Referring to
As a result obtained by heating an object 806 for ten minutes, the object 806 remains frozen at −10° C. when using the first apparatus 800 and the second apparatus 802. However, when the second apparatus 802 is used to defrost the object 806, the object 806 exhibits a more even heat distribution.
The sample defrosted by the first apparatus 800 shows varying internal temperatures of the object 806 (e.g., five different temperature values) which correspond to different expected defrosting times. In contrast, the object 806 defrosted in the apparatus 802 is defrosted relatively evenly, overall presenting a reduced number of varying internal temperatures (e.g., three different temperature values).
Referring to
As illustrated in
Referring to
In operation 1010, the power amplifier 202 amplifies the power of the operation frequency to a predetermined level and provides the amplified power to the coil unit 206. Here, the coil unit 206 includes the driving coil 206a and the helical coil (or LC resonator) 206b.
In operation 1012, the coil unit 206 heats an object placed in the housing through a magnetic field generated by a current generated due to the operation frequency.
In operation 1014, the controller 410 monitors the impedance of the coil unit 206 resonating at the operation frequency and when at least two or more helical coils 206b resonate, the controller 410 determines whether the impedance of the at least two or more helical coils 206b is substantially similar to the impedance of the power amplifier 202. Although an example is described for description purposes in which the operation of the impedance detector 412 is carried out by the controller 410, the impedance detector 412 may be configured and operated independently from the controller 410 as shown in
When the impedance of the at least two or more helical coils 206b is determined to be different from the impedance of the power amplifier 202, the controller 410 in operation 1016 transmits, to the driving coil 206a, a control signal allowing the driving coil 206a to be moved so that the impedance of the coil unit 206 becomes identical or substantially similar to the impedance of the power amplifier 202. In an exemplary embodiment, the controller 410 modifies the impedance of the LC resonator or helical resonant coil 206b to be identical with or substantially similar to the impedance of the power amplifier 202 by controlling the motor 414 to move the driving coil 206a such that a center of the driving coil 206a is positioned in line with a center of the helical resonant coil 206b.
When the impedance of the at least two or more helical coils 206b is determined to the same as the impedance of the power amplifier, the controller 410 returns to operation 1014 to repeat the monitoring operation.
Meanwhile, although not illustrated in the drawings, the controller 410 may determine a time of terminating the heating of the object when the detected impedance value reaches a predetermined value. In this case, when a predetermined time elapses, the controller 410 may power off the signal generator 200 and the power amplifier 202 to stop heating.
While the method was described with respect to apparatuses associated with
According to an embodiment of the present disclosure, there is suggested a container configured with multiple resonant coils corresponding to the type or number of objects to be heated. The container may be provided as a separate component from the apparatus evenly heating an object using a low-frequency magnetic field as described above. According to an embodiment of the present disclosure, multiple objects may be placed in the container that is then placed in the housing 102 of
Referring to
According to an embodiment of the present disclosure, the apparatus including a housing where the container 1100 is placed is configured similar to the configuration of the apparatus as shown in
According to an embodiment of the present disclosure, power is distributed from the driving coil 1100 to the resonant coils 1102, 1104, and 1106 installed in the spaces according to power required for the objects (FOOD 1, FOOD 2, FOOD 3). The position where each resonant coil is to be installed in the space for heating each object inside the container 1100 may be determined by a power distribution ratio required for the object based on Equation 1:
P1, P2, . . . , Pi=k12,k22, . . . , ki2 Equation 1
Here, ki is the coupling coefficient between a driving coil and a resonant coil installed in a space for heating object i, and Pi is the power required upon heating object i. According to an embodiment of the present disclosure, the power distribution ratio is adjusted by the coupling coefficient between the driving coil 1100 and each resonant coil 1102, 1104, and 1106, and the coupling coefficient is adjusted by the distance between the driving coil 1100 and each resonant coil 1102, 1104, and 1106.
Alternatively, a container having a separate resonant coil installed therein for heating an object inside a resonant coil installed in another housing of an apparatus for evenly heating another object using a low-frequency magnetic field is provided. The container may also be provided as a component separate from the apparatus. For example, the object being an egg which requires a relatively high level of power as compared with a predetermined time. Thus, according to an embodiment of the present disclosure, the container having a separate resonant coil installed therein is placed and heated in the housing, so that the power from the coil installed on the wall of the housing is transferred to the container, allowing for heating at a relatively high level of power as compared with the object positioned outside the container.
Referring to
According to an embodiment of the present disclosure, the second resonant coil 1210 is positioned where the power density is maximized inside the housing having the first resonant coil 1208 installed therein. The first resonant coil 1208 is a helical coil. Generally, a helical coil, by nature, has the maximum power density at a center thereof Thus, the second resonant coil 1210 is rendered to be positioned at a center of the first resonant coil 1208 of the housing using such nature. The second resonant coil 1210 resonates at the same frequency as the first resonant coil 1208. Then, as the power from the driving coil 1206 is delivered to the second resonant coil 1210 from the first resonant coil 1208, a relatively high level of power is transferred in the housing having the first resonant coil 1208 installed therein, as compared with in the space outside the container having the second resonant coil 1210 installed therein. Thus, objects requiring different levels of power inside the housing from the same time may simultaneously be heated using the container having the second resonant coil 1210 installed therein.
According to an embodiment of the present disclosure, an apparatus for evenly heating a broad object using a low-frequency magnetic field is provided.
According to an embodiment of the present disclosure, the apparatus utilizes a multi-resonant mode for heating an object with a broad area. Thus, according to an embodiment of the present disclosure, there are two signal generators for generating two operation frequencies required for two resonant modes.
Referring to
Referring to
Referring to
As set forth above, an object may be heated in an even and more-cost saving manner by the configuration and operation of an apparatus according to an embodiment of the present disclosure.
While the present disclosure has been shown and described with reference to various embodiments thereof, it will be understood by those skilled in the art that various changes in form and details may be made therein without departing from the spirit and scope of the present disclosure as defined by the appended claims and their equivalents. This description is not necessarily intended to be exhaustive or to limit the invention to the precise embodiments disclosed. The specification describes specific examples to accomplish a more general goal that may be accomplished in another way. Those skilled in the art will appreciate that the features described above can be combined in various ways to form multiple variations of the invention.
Number | Date | Country | Kind |
---|---|---|---|
10-2015-0146995 | Oct 2015 | KR | national |
Number | Name | Date | Kind |
---|---|---|---|
2453529 | Mittelmann | Nov 1948 | A |
4415789 | Nobue | Nov 1983 | A |
4795886 | Carter, Jr. | Jan 1989 | A |
6215112 | Kim | Apr 2001 | B1 |
6392210 | Jewett et al. | May 2002 | B1 |
7829827 | Rosenbloom et al. | Nov 2010 | B2 |
8968848 | Quella et al. | Mar 2015 | B2 |
9131543 | Ben-Shmuel et al. | Sep 2015 | B2 |
20060081624 | Takada | Apr 2006 | A1 |
20070215608 | Yoshino et al. | Sep 2007 | A1 |
20070235445 | Wilgen et al. | Oct 2007 | A1 |
20090295509 | Master | Dec 2009 | A1 |
20100187224 | Hyde et al. | Jul 2010 | A1 |
20110290790 | Sim et al. | Dec 2011 | A1 |
20120305546 | Filippa et al. | Dec 2012 | A1 |
Number | Date | Country |
---|---|---|
0 464 390 | Jan 1992 | EP |
Entry |
---|
European Search Report dated Sep. 13, 2018, issued in European Application No. 16857829.2-1204 / 3342254. |
Number | Date | Country | |
---|---|---|---|
20170118805 A1 | Apr 2017 | US |