Antenna device

The antenna device addresses the challenge of focusing electromagnetic fields for skin tightening by using a radial conductor and dielectric structure, achieving efficient and safe skin tightening with reduced power and time.

WO2025206802A1PCT designated stage Publication Date: 2025-10-02APR CO LTD
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Patent Information

Application Number
PCT/KR2025/004029
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Priority Date
2025-03-26
Filing Date
2025-03-28
Publication Date
2025-10-02

AI Technical Summary

Technical Problem

Existing RF hyperthermia technologies for skin tightening face challenges in focusing electromagnetic fields on a specific area due to impedance mismatch issues and large effective areas, leading to inefficiency and safety concerns.

Method used

An antenna device with a radial conductor and dielectric structure that concentrates electromagnetic fields on a specific area, utilizing a meta-structure to miniaturize the device and enhance convenience.

Benefits of technology

The antenna device achieves efficient and targeted skin tightening with reduced power and time, ensuring a narrow heating area and user safety by concentrating electromagnetic fields.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention provides an antenna device comprising: a body; a signal pin coupled to the body to deliver a first signal to the inside of the body; a dielectric disposed in a space formed inside the body; a conductor disposed on the uppermost layer of the dielectric to form a second signal delivered to the outside in response to the first signal; and an end portion disposed at one end of the body, wherein the end portion mediates the delivery of the second signal, and the conductor is configured in a radial shape.
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Description

antenna device

[0001] The present invention relates to an antenna device.

[0002] Radiofrequency (RF) hyperthermia focuses on raising the temperature of the target area to above 45°C. When the temperature reaches 45°C, collagen in the dermal layer is stimulated, tightening the skin.

[0003] Skin tightening technology focuses on generating heat in the dermis layer, approximately 2 to 4 mm deep.

[0004] However, most studies on RF hyperthermia have focused on tumor ablation or using electrodes to emit electromagnetic fields, which are highly ineffective.

[0005] The use of microwaves in skin tightening treatments has been shown to be effective in minimizing discomfort. However, the problem lies in their large effective area. Because microwaves spread widely, focusing on the target area becomes difficult, and there's a risk of unintended temperature increases.

[0006] Previous studies on RF hyperthermia technologies for skin tightening have used electrodes that generate electromagnetic fields. Electrodes for generating electromagnetic fields are advantageous for designing small, portable devices. However, many of these designs do not consider impedance matching, resulting in impedance mismatch issues that require higher power or longer treatment times to achieve the desired skin-tightening temperatures.

[0007] The technical problem to be solved by the present invention is to provide an antenna device that can apply an electromagnetic field concentrated on a specific area and is miniaturized to enhance convenience in using thermal therapy.

[0008] In order to solve the above technical problem, the present invention provides an antenna device including a body, a signal pin coupled to the body and transmitting a first signal to the inside of the body, a dielectric disposed in a space formed inside the body, a conductor disposed on the uppermost layer of the dielectric and forming a second signal transmitted to the outside in response to the first signal, and an end disposed at one end of the body, the end mediating transmission of the second signal, and the conductor being formed in a radial shape.

[0009] The conductor may include a first ring and a plurality of first conductive bars extending outward from an outer surface of the first ring.

[0010] The conductor may include a second ring surrounding the first conductive bar and a plurality of second conductive bars extending outward from an outer surface of the second ring.

[0011] The conductor may include a plurality of third conductive bars extending from one side of the plurality of first conductive bars.

[0012] The conductor may include a plurality of fourth conductive bars extending inwardly from the inner surface of the second ring and arranged between the first conductive bars.

[0013] The above-mentioned genome may include a plurality of first genomes formed in a plate shape and a second genome formed in a cylinder shape.

[0014] The above second dielectric may have an indentation portion that is indented from one side toward the center.

[0015] The above signal pin can be inserted through the recessed portion on the bottom surface of the body.

[0016] The above dielectric can be contacted with the above end.

[0017] The above dielectric can form the second signal together with the conductor.

[0018] The present invention has the effect of increasing convenience in using thermal therapy by miniaturizing the device while allowing an electromagnetic field to be applied concentrated to a specific area.

[0019] Figure 1 is an assembly diagram of an antenna device according to one embodiment of the present invention.

[0020] Figure 2 is a cross-sectional side view of an antenna device according to one embodiment of the present invention.

[0021] Figure 3 is an exploded view of an antenna device according to one embodiment of the present invention.

[0022] Fig. 4 shows a conductor as a part of the antenna device according to one embodiment of the present invention.

[0023] Figure 5 compares an antenna device with a meta-structure filled in a waveguide (structure A), a structure filled only with a dielectric instead of a meta-structure (structure B), and a structure filled only with empty air without a meta-structure (structure C) at the same size.

[0024] Figure 6 shows the experimental results on the thermal performance by operation of an antenna device filled with a meta structure in a waveguide.

[0025] The present invention is susceptible to various modifications and embodiments. Specific embodiments are illustrated and described in detail in the drawings. However, this is not intended to limit the present invention to specific embodiments, but rather to encompass all modifications, equivalents, and alternatives falling within the spirit and technical scope of the present invention.

[0026] In describing the present invention, if it is determined that a detailed description of a related known technology may obscure the gist of the present invention, the detailed description is omitted.

[0027] Hereinafter, embodiments of the present invention will be described in detail with reference to the attached drawings.

[0028]

[0029] FIG. 1 is an assembly diagram of an antenna device (100) according to an embodiment of the present invention, FIG. 2 is a side cross-sectional view of an antenna device (100) according to an embodiment of the present invention, FIG. 3 is an exploded view of an antenna device (100) according to an embodiment of the present invention, and FIG. 4 shows a conductor as a part of an antenna device (100) according to an embodiment of the present invention.

[0030] Referring to FIGS. 1 to 4, an antenna device (100) according to one embodiment of the present invention is described.

[0031] An antenna device (100) according to one embodiment of the present invention may be configured to include a body (110), a coaxial connector (120), an internal structure, and an end (150).

[0032] The body (110) can form the outer surface, inner surface, and bottom surface of the antenna device (100), respectively.

[0033] The outer and inner surfaces of the body (110) have the outer surface shape of a square pillar, and the outer and inner surfaces can be connected to have a certain thickness.

[0034] The z-axis (length direction, upward direction in the drawing) of the body (110) has an opening at one end. The opening and the inner space are defined as a space (111) defined by the body (110). The opening can be formed to have a size corresponding to the area of ​​the dielectric (131, 132) arranged in the space (111) described later.

[0035] The space (111) and the portion of the body (110) surrounding the space (111) can function as a waveguide.

[0036] A mounting portion may be formed at one end of the z-axis of the body (110). The mounting portion provides a space in which the end portion (150) can be mounted, and a portion of the body (110) surrounding the outside of the mounting portion defines the horizontal plane position of the end portion (150).

[0037] A coaxial connector (120) can be coupled to the lower outer surface of the body (110).

[0038] The body (110) is formed of a metal material. For example, the body (110) may be formed of copper (Cu), silver (Ag), etc.

[0039] The coaxial connector (120) is for transmitting an electromagnetic signal and can be connected to the outer surface or lower surface of the body (110) via a bolt.

[0040] A coaxial connector (120) may be configured to include a signal pin (121), an insulator (122), and a housing (123).

[0041] Here, the signal pin (121) is placed inside the insulator (122), and one end can be exposed to the outside.

[0042] The signal pin (121) placed inside the insulator (122) is accommodated in the housing (123) and the end can be exposed to the outside.

[0043] The signal pin (121) can be inserted through the bottom surface of the body (110) into the inside of the body (110).

[0044] Accordingly, the signal pin (121) can transmit the first signal into the space (111). That is, the signal pin (121) can be inserted into the waveguide to transmit the first signal.

[0045] A conductor (140) may be placed in a space (111) formed inside the body (110). Here, the internal structure (130) of the body (110) may be a structure in which a dielectric (131, 132) fills the remaining space of the space (111) excluding the conductor (140).

[0046] A structure in which the remaining space (111) except for the conductor (140) is filled with a dielectric (131) can be said to be a waveguide filled with a meta structure formed inside the waveguide.

[0047] The conductor (140) may be formed of copper (Cu), but is not necessarily limited thereto.

[0048] The conductor (140) may be formed radially.

[0049] Specifically, as illustrated in FIG. 4, the conductor (140) may be configured to include a first ring (141), a plurality of first conductive bars (142), a second ring (143), a plurality of second conductive bars (144), a plurality of third conductive bars (145), and a plurality of fourth conductive bars (146).

[0050] A plurality of first conductive bars (142) may extend outward from the outer surface of the first ring (141). Here, the plurality of first conductive bars (142) may be arranged at regular intervals along the outer surface of the first ring (141).

[0051] The second ring (143) may be arranged to surround the first conductive bar (142), and a plurality of second conductive bars (144) may extend outward from the outer surface of the second ring (143). Here, the plurality of second conductive bars (144) may be arranged at regular intervals along the outer surface of the second ring (143).

[0052] A plurality of third conductive bars (146) may extend from one side of a plurality of first conductive bars (142), and a plurality of fourth conductive bars (146) may extend inward from the inner surface of the second ring (143) and be arranged between the first conductive bars (142). Here, the plurality of fourth conductive bars (146) may be arranged at regular intervals along the inner surface of the second ring (143).

[0053] The dielectric (131, 132) may include a plurality of first dielectrics (131) formed in a plate shape and a second dielectric (132) formed in a cylinder shape. Here, a conductive pattern (140) may be formed on the first dielectric at the uppermost layer among the plurality of first dielectrics (131).

[0054] The second dielectric (132) may have an indentation that extends from one side to the center.

[0055] The dielectric (131) can form a second signal transmitted to the outside together with the conductor (140) in response to the first signal.

[0056] The dielectric (131) may be, for example, Tefron, but is not limited thereto.

[0057] The upper part of the dielectric (131) can be in contact with the end (150).

[0058] The coaxial connector (120) may be an SMA (Sub-Miniature version A) connector.

[0059] The signal pin (121) can be inserted through a recess formed in the second dielectric (132) on the bottom surface of the body (110). For example, at least a portion of the signal pin (121) can extend upward to contact the inner surface of the recess. In addition, the signal pin (121) can extend upward along the recess to contact the first dielectric (131).

[0060] The end (150) is connected to one end of the body (110).

[0061] The end (150) is formed of a dielectric and mediates the transmission of electromagnetic wave signals.

[0062] For example, the end (150) may include a sapphire material.

[0063] A first signal injected into space (111) by a coaxial connector (120) forms a second signal transmitted to the outside by a waveguide formed by an internal structure (130), and the second signal can be transmitted to the outside via an end (150).

[0064] Additionally, the end (150) can come into direct contact with human skin when the antenna device (100) of the present invention is used as a heating device.

[0065] Figure 5 compares an antenna device with a meta-structure filled in a waveguide (structure A), a structure filled only with a dielectric instead of a meta-structure (structure B), and a structure filled only with empty air without a meta-structure (structure C) at the same size.

[0066] In structure B, the dielectric is made of Teflon.

[0067] The C structure had a resonant frequency of about 12 GHz, the B structure had a resonant frequency of 6.4 GHz, and the A structure had a resonant frequency of 2.45 GHz. It can be seen that the antenna device (100) including the metastructure requires a smaller resonant frequency in the same size, or a smaller size to achieve the same resonant frequency.

[0068] Waveguides containing metastructures can be designed to be miniaturized by reducing their size by 98.8% compared to waveguides filled only with air to achieve the same resonant frequency.

[0069] This miniaturized design means that the antenna device (100) can be usefully applied in a realistic size to RF treatment or treatment systems, such as high-frequency thermal devices.

[0070] In addition, examining the electric field distribution of Fig. 5, Structure A exhibited a strong upward electric field distribution and a weak rearward electric field distribution in the near field. This means that when the present invention is used as a heating device, the heating effect is limited to one direction, ensuring not only the therapeutic effect but also the safety of the user or practitioner.

[0071] Figure 6 shows the experimental results on the thermal performance by operation of an antenna device filled with a meta structure in a waveguide.

[0072] Figure 6a shows the surface temperature of pork at various operating powers and times. The antenna device (100) was connected to an RF generator with a frequency of 2.45 GHz by a coaxial connector (120). The antenna device (100) was positioned 4 mm above the pork phantom, and the temperature sensor was positioned 4 mm below the pork skin surface, respectively. The effective area of ​​heating by microwaves in the pork phantom was found to be 18 mm × 14 mm, which is a very narrow and concentrated area.

[0073] Figure 6b compares the simulated and measured temperatures at a location 4 mm below the skin surface. The simulation was performed using the Sim4Life platform, applying a human face model, while the measured results were for pork, as described in Figure 13a. In the human model simulation, temperatures were increased by 35.4°C and 11.6°C, respectively, within 60 seconds using RF powers of 80 W and 20 W, respectively.

[0074] Figure 6c shows the results of thermal therapy using an antenna device (100) on a human face (top) and stomach (bottom). The subject was a 27-year-old male, and the antenna aperture was positioned 5 to 8 mm away from the face / stomach. The RF input was 2.45 GHz and 20 W. The face / stomach temperature before thermal therapy was approximately 32°C, but after 60 seconds, the temperature of the target area increased to approximately 45°C.

[0075] The temperature rise results for pork and human face / stomach were found to be similar.

[0076] Classification Type Frequency (GHz) Invasiveness Power (W) Temperature increase (time required) Target Comparison Example 1 Monopole 2.45 Invasive 2.5 10 ℃ (1500 s) Deep irradiation Comparison Example 2 Dipole 0.434 Non-invasive 5 10 ℃ (3600 s) Shallow tumor Comparison Example 3 Electrode 0.448 Non-invasive 200 1 1.1 ℃ (600 s) Subcutaneous fat Comparison Example 4 Electrode 0.001 Non-invasive 65 10 ℃ (180 s) Skin tightening Example Metamaterial 2.45 Non-invasive 20 / 80 1 1.6 / 3 5.4 ℃ (60 s) Skin tightening

[0077]

[0078] [Table 1] compares thermal therapy using comparative examples and thermal therapy using the antenna device (100) of the present invention.

[0079] Referring to [Table 1], when 2.45 GHz and low power of 2.5 W were used for deep tumor treatment using an invasive method, a relatively long time of 1500 s was required for a temperature increase of 10 ℃ (Comparative Example 1), and a non-invasive method for shallow tumor treatment required more time (Comparative Example 2).

[0080] In the case of electrode hyperthermia therapy using a relatively high power of 200 W as a non-invasive method, the temperature could be raised by about 10°C in a relatively short time of 600 s (Comparative Example 3), and in the case of using 65 W of power, the temperature could be raised by about 10°C in 180 s (Comparative Example 4).

[0081] In comparison, the antenna device (100) of the present invention can raise the temperature of only a narrow target area by 11.6°C or 35.4°C within 60 seconds with a low power of 20 W or 80 W, and thus it can be seen that it has the fastest and most efficient heating performance compared to comparative examples.

[0082]

[0083] The terminology used in this application is only used to describe specific embodiments and is not intended to limit the present invention. In this application, terms such as "comprise" or "have" are intended to indicate the presence of a feature, number, step, operation, component, part, or combination thereof described in the specification, but should be understood to not preclude the possibility of the presence or addition of one or more other features, numbers, steps, operations, components, parts, or combinations thereof.

Claims

1. Body; A signal pin coupled to the body and transmitting a first signal to the inside of the body; A dielectric material disposed in a space formed inside the body; A conductor arranged on one side of the dielectric and forming a second signal transmitted to the outside in response to the first signal; and Including a section disposed at one end of the above body, The above-mentioned section mediates the transmission of the second signal, The above conductor It is made up of radial Antenna device.

2. In paragraph 1, The above conductor first ring; and including a plurality of first conductive bars extending outward from the outer surface of the first ring; Antenna device.

3. In paragraph 2, The above conductor a second ring surrounding the first challenge bar; and Including a plurality of second conductive bars extending outward from the outer surface of the second ring. Antenna device.

4. In paragraph 3, The above conductor including a plurality of third conductive bars extending from one side of the plurality of first conductive bars; Antenna device.

5. In paragraph 4, The above conductor A plurality of fourth conductive bars extending inward from the inner surface of the second ring and arranged between the first conductive bars. Antenna device.

6. In paragraph 1, The above genome A first dielectric formed in a plate shape and having the above challenge pattern arranged thereon; and Containing a second dielectric formed in a tubular shape Antenna device.

7. In paragraph 6, The above second genome It has an indentation that extends from one side to the center. Antenna device.

8. In paragraph 7, The above signal pin is Inserted through the indentation on the bottom surface of the above body Antenna device.

9. In paragraph 1, The above dielectric is in contact with the above end Antenna device.

10. In paragraph 1, The above genome Forming the second signal together with the conductor Antenna device.

Citation Information

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