Edgeless RFID electronic tags
Patent Information
- Application Number
- JP2025061607
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2025-02-13
- Filing Date
- 2025-04-03
- Publication Date
- 2026-09-09
- Estimated Expiration
- 2045-04-03
AI Technical Summary
【0012】 本発明は、従来技術と比べて、従来のインレイにエッジを残す必要がある欠点を解決し、より小さな製品サイズでアンテナ性能を最大に発揮させることが顕著な特徴である。
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Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of RFID tags, and in particular to an edgeless RFID electronic tag. Background Art
[0002] RFID electronic tags based on flexible base materials such as PET can be applied to the management of clothing and retail commodities, and are also applied to various non-metallic environments including liquids and the like. In order to avoid cutting to the antenna or destroying the antenna structure, the antenna size of a conventional inlay needs to be at least 1 mm smaller than the product size. Summary of the Invention Problems to be Solved by the Invention
[0003] An object of the present invention is to provide an edgeless RFID electronic tag that can solve the disadvantage that conventional inlays need to leave an edge. The technical solution is as follows. Means for Solving the Problems
[0004] An edgeless RFID electronic tag comprising a dielectric substrate, an RFID chip, and an antenna structure, wherein the antenna structure comprises a feed loop, a pair of dipole antennas extending in opposite directions on both sides of the feed loop, and a pair of radiation pieces provided at tips of the dipole antennas, the width of the radiation pieces is larger than the width of the dipole antennas and the width of the feed loop; the product of the edgeless RFID electronic tag is manufactured through a die-cutting process, and is formed by cutting the outer periphery of the radiation pieces without contacting the feed loop and the dipole antennas, and in the product, the distance between the outer edge of the radiation pieces and the edge of the dielectric substrate is zero, which is the edgeless RFID electronic tag.
[0005] further, the radiation piece is a plate-shaped member having a cut-out structure.
[0006] Furthermore, the constraints between the antenna structure and the cutting line in the die-cutting process are that the distance between the cutting line and the periphery of the radiating piece is 0.5 mm or more and 2 mm or less, the gap between the cutting line and the cut-out portion of the radiating piece is greater than 0.8 mm, and the gap between the cutting line and the edge of the dipole antenna and the edge of the feed loop is greater than 0.5 mm.
[0007] Furthermore, the cutting frame formed by the cutting lines is a rectangular frame.
[0008] Furthermore, the overall shape of the radial piece is rectangular, and the shape of the cutout structure of the radial piece is substantially rectangular.
[0009] Furthermore, the aforementioned dipole antenna is a dipole antenna with a serpentine structure.
[0010] Furthermore, the lengths of each folded portion of the dipole antenna are not equal.
[0011] Furthermore, the shape of the power supply loop is approximately rectangular. [Effects of the Invention]
[0012] Compared to conventional technologies, this invention solves the drawback of requiring edges to be left on the inlay, and its most notable feature is that it maximizes antenna performance in a smaller product size. [Brief explanation of the drawing]
[0013] [Figure 1] This is a schematic diagram of a conventional inlay RFID electronic tag. [Figure 2] This is a schematic diagram of the antenna structure of the edgeless RFID electronic tag of the present invention before cutting. [Figure 3] This is a schematic diagram of the stacked structure of the edgeless RFID electronic tag of the present invention. [Figure 4] This is a schematic diagram of the cutting of the edgeless RFID electronic tag product of the present invention. [Modes for carrying out the invention]
[0014] To further illustrate each embodiment, the present invention provides drawings. These drawings are part of the disclosure of the present invention and are primarily for illustrating embodiments, and together with the relevant descriptions in the specification, they can explain the operating principles of the embodiments. By referring to these, those skilled in the art should be able to understand other possible embodiments and the advantages of the present invention. The components in the drawings are not drawn proportionally. Generally, similar component reference numerals are used to indicate similar components.
[0015] The present invention will now be further described with reference to the drawings and specific embodiments.
[0016] As shown in Figures 2, 3, and 4, the present invention provides examples of edgeless RFID electronic tags that can be applied to the management of clothing and retail goods, and to various non-metallic environments including liquids.
[0017] In this embodiment, the edgeless RFID electronic tag is applied to the ultra-high frequency UHF band (e.g., 860MHz to 960MHz).
[0018] As shown in Figure 2, this edgeless RFID electronic tag consists of a dielectric substrate 1, an antenna structure 2, an RFID chip 3, an adhesive 4, and a release paper 5. The RFID chip 3 and the antenna structure 2 are electrically connected by a conductive adhesive. In this electronic tag, the adhesive 4 is applied to the antenna structure 2 side. The release paper 5 is attached to the adhesive 4 and is removed when the electronic tag is used. The side of the electronic tag where the antenna structure 2 is provided is directly bonded to the surface via the adhesive 4, and the dielectric substrate 1 and the surface protect the RFID chip 3 and the antenna structure 2.
[0019] As shown in FIG. 3, the antenna structure 2 consists of a feeding loop 21, a pair of dipole antennas 22 extending in opposite directions on both sides of the feeding loop 21, and a pair of radiating pieces 23 located at the tips of the dipole antennas 22. The connection points between the dipole antennas 22 and the feeding loop 21 are located at the midpoints of both sides of the feeding loop 21. At this time, the antenna is in a relatively balanced state in terms of bandwidth, impedance matching and gain. By adjusting the size of the feeding loop 21, the impedance matching effect between the antenna structure 2 and the RFID chip 3 can be adjusted, so as to improve the antenna performance of the electronic tag.
[0020] In this embodiment, the shape of the feeding loop 21 is a substantially rectangular loop, which can efficiently acquire the energy of an aerial electromagnetic field for the RFID chip 3.
[0021] In this embodiment, the lengths of the folded portions of the dipole antenna 22 are not equal, which can optimize the radiation efficiency of the antenna to a certain extent.
[0022] In this embodiment, the radiating piece 23 has a rectangular structure, and the shape of the internal cut-out structure 231 is substantially rectangular. It should be noted that the shape of the cut-out structure 231 can be designed as required, including but not limited to a rectangle. The hollowed-out radiating piece 23 can effectively reduce the reflection of current at the tip of the antenna, thereby improving the input impedance characteristics of the antenna and broadening the operating frequency band of the antenna. In addition, it also makes the antenna easier to adapt to various application environments including liquids and other media in practical applications.
[0023] As shown in FIG. 3, the width of the radiating strip 23 in the antenna structure 2 is larger than the width of the dipole antenna 22 and the width of the feeding loop 21. Therefore, when manufactured into a product, cutting around the radiating strip 23 is allowed to form the antenna structure 2', and by making the size of the antenna structure 2' equal to the product size (the distance between the outer edge of the radiating strip 23' of the antenna structure 2' and the edge of the dielectric substrate 1 becomes zero), the antenna performance can be maximized. According to this method, the drawback of conventional inlays that it is necessary to leave a margin can be solved. That is, in order to avoid cutting into the antenna or damaging the antenna structure, the size of the antenna structure of a conventional inlay needs to be at least 1 mm smaller than the size of the dielectric substrate.
[0024] In specific applications, the spacing between the cutting line 6 and the cutout structure 231 is greater than 0.8 mm, and the spacing between the cutting line 6 and the dipole antenna 22 and the feeding loop 21 is greater than 0.5 mm, so as to avoid damaging the antenna structure. From the perspective of material saving, the distance by which the edge of the radiating strip 23 exceeds the cutting line 6 is preferably not less than 0.5 mm and not more than 2 mm.
[0025] In the illustration of this embodiment, before cutting, the size of the antenna structure 2 of this ultra-high frequency electronic tag is 38 mm×18 mm, and in application, the product size (that is, the size of the antenna structure 2') can be cut to a minimum of 35 mm×15 mm.
[0026] The dielectric substrate 1 can be selected according to the usage environment (e.g., temperature, humidity), such as transparent PET, milky white PET, paper substrate, or nylon cloth (PA). The adhesive 4 can be selected according to the usage environment, such as acrylic gel or waterproof jelly. The release paper 5 is preferably made of glassine material suitable for die-cutting. The material of the antenna structure 2 may be aluminum, copper, silver paste, etc., and can be formed on the dielectric substrate 1 by processes such as etching or printing. The connection method between the RFID chip 3 and the antenna structure 2 may be conductive adhesive connection or direct soldering. The shape of the cutting frame formed by the cutting lines 6 can be designed as needed and is usually rectangular.
[0027] While the present invention is specifically illustrated and presented in combination with preferred embodiments, those skilled in the art will understand that various formal and detailed modifications can be made to the invention without departing from the spirit and scope of the invention as limited by the appended claims, and all such modifications remain within the scope of the protection of the present invention. [Contents of the specification are to be entered here.]
Claims
1. In an edgeless RFID electronic tag including a dielectric substrate, an RFID chip, and an antenna structure, The antenna structure includes a feed loop, a pair of dipole antennas extending in opposite directions on both sides of the feed loop, and a pair of radiating elements provided at the tips of the dipole antennas. The dipole antenna has an extending direction from the connection point with the feed loop to the tip, and the radiating element is a plate-shaped member having a cutout structure. The dimensions of the radiating element in the direction perpendicular to the extending direction are greater than the dimensions of the dipole antenna and the dimensions of the feed loop in the direction perpendicular to the extending direction, the edgeless RFID electronic tag has its dielectric substrate edge formed through a die-cutting process, the distance between the feed loop and the dipole antenna and the dielectric substrate edge is greater than zero, the radiating element is formed by cutting the outer circumference, and the distance between the outer edge of the radiating element and the dielectric substrate edge is zero. An edgeless RFID electronic tag characterized by the following features.
2. The overall shape of the radiating element is rectangular, and the shape of the cutout structure of the radiating element is substantially rectangular. The edgeless RFID electronic tag according to claim 1.
3. The distance between the cutout structure of the radiating element and the edge of the dielectric substrate is greater than 0.8 mm, and the distance between the edge of the dipole antenna and the edge of the feeding loop and the edge of the dielectric substrate is greater than 0.5 mm. The edgeless RFID electronic tag according to claim 1.
4. The edge of the dielectric substrate is a rectangular frame. The edgeless RFID electronic tag according to claim 1.
5. The aforementioned dipole antenna is a dipole antenna with a serpentine structure. The edgeless RFID electronic tag according to claim 1.
6. The lengths of each folded portion of the aforementioned dipole antenna are not equal. The edgeless RFID electronic tag according to claim 5.
7. The shape of the power supply loop is approximately rectangular. The edgeless RFID electronic tag according to claim 1.
8. Further comprising adhesive and release paper, The adhesive is applied to one side of the antenna structure. The release paper is bonded to the adhesive and is removed when the edgeless RFID electronic tag is used. An edgeless RFID electronic tag according to any one of claims 1 to 7.
Citation Information
Patent Citations
Miniaturized ultrahigh frequency meander-line dipole antenna
CN105226381A
Antenna pattern and RFID inlay
JP2023115681A
Edgeless RFID electronic tag
JP3252400U