Antennas and contactless data transmitters / receivers
The antenna with a meandering, helically wound radiating element maintains communication performance by ensuring electrical contact and mechanical resilience against external forces, addressing disconnection issues in non-contact data transmitters.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-08-01
- Publication Date
- 2026-04-07
AI Technical Summary
Existing non-contact data transmitters face a decrease in communication performance due to disconnection of the radiation element caused by external forces applied to the article on which they are installed.
The antenna features a radiating element with a meandering shape formed of conductive linear bodies, including helical wound portions that allow adjacent sections to maintain electrical contact even when external forces cause breaks, and is coated with conductive plating to enhance conductivity and mechanical strength.
The antenna maintains communication performance by ensuring electrical conductivity and mechanical resilience, reducing the likelihood of damage and stress concentration, even under external forces.
Smart Images

Figure 0007841385000001 
Figure 0007841385000002 
Figure 0007841385000003
Abstract
Description
Technical Field
[0006] , , ,
[0005] , ,
[0001] The present invention relates to an antenna and a non-contact data transmitter.
Background Art
[0002] For the purpose of distribution management and the like, non-contact data transmitters such as RFID tags are used (see, for example, Patent Document 1). The non-contact data transmitter includes, for example, a base material and an antenna having a meander-shaped radiation element. The non-contact data transmitter is installed on an article to be managed.
Prior Art Documents
Patent Documents
[0003]
Patent Document 1
Summary of the Invention
Problems to be Solved by the Invention
[0004] In the above-described antenna, for example, an external force may be applied to the radiation element due to deformation of the article on which the non-contact data transmitter is installed. Therefore, it is required to prevent a decrease in communication performance due to disconnection of the radiation element caused by an external force.
[0005] One aspect of the present invention is to provide an antenna and a non-contact data transmitter that can maintain communication performance even when an external force is applied.
Means for Solving the Problems
[0006] One aspect of the present invention provides an antenna having a radiating element, wherein the radiating element is formed of a linear body having a meandering shape, which is arranged in a line with spacing in the main direction and extending intersecting the main direction, and which is formed of a plurality of main extending portions that alternately connect one end and the other end of adjacent main extending portions, and at least one of the plurality of folded portions has a helical wound portion in which the linear body is wound once or more times, and at least a portion of the linear body adjacent to each other in the helical axis direction is in contact with each other in an electrically conductive manner.
[0007] The linear body is preferably coated with a conductive plating.
[0008] One aspect of the present invention provides a contactless data receiver / transmitter comprising an antenna, a substrate on which the antenna is provided, and an IC chip provided on the substrate.
[0009] The contactless data transmitter / receiver may further include a covering material that sandwiches the antenna, the substrate, and the IC chip. [Effects of the Invention]
[0010] According to one aspect of the present invention, it is possible to provide an antenna and a non-contact data transmitter / receiver that can maintain communication performance even when an external force is applied. [Brief explanation of the drawing]
[0011] [Figure 1] This is a plan view of a contactless data receiver / transmitter according to the first embodiment. [Figure 2] This is a plan view of the substrate of a contactless data receiver / transmitter according to the first embodiment. [Figure 3] This is a plan view of the radiating element of the antenna according to the first embodiment. [Figure 4] This is a perspective view of a part of the radiating element of the antenna according to the first embodiment. [Figure 5](A) Plan view of a part of the radiation element of the antenna according to the first embodiment. (B) Side view of a part of the radiation element. [Figure 6] (A) Plan view of a part of the radiation element of the antenna according to the first embodiment. (B) Side view of a part of the radiation element. [Figure 7] (A) Plan view of a part of the radiation element with a disconnection. (B) Side view of a part of the radiation element with a disconnection. [Figure 8] Plan view of the non-contact data transmitter according to the second embodiment. [Figure 9] Schematic diagram showing a partial cross-section of the radiation element and the coating material. [Figure 10] Enlarged view of a partial cross-section of the radiation element and the coating material. [Figure 11] Schematic diagram showing a partial cross-section of the state where the non-contact data transmitter according to the second embodiment is installed on an article. [Figure 12] Plan view of a part of the radiation element of the antenna according to the second embodiment. [Figure 13] Figure showing test results.
Mode for Carrying Out the Invention
[0012] [Non-contact Data Transmitter] (First Embodiment) FIG. 1 is a plan view of the non-contact data transmitter 10 according to the first embodiment. FIG. 2 is a plan view of the base material 11. As shown in FIG. 1, the non-contact data transmitter 10 includes a base material 11, an antenna 12 according to the first embodiment, and an IC chip 13.
[0013] As shown in FIG. 2, the base material 11 is formed in a rectangular plate shape. The base material 11 is, for example, rectangular. One surface of the base material 11 is referred to as the first main surface 11a.
[0014] In the following description, an XYZ orthogonal coordinate system may be used. As shown in FIG. 2, the X direction is the longitudinal direction of the first main surface 11a. The X direction is an example of the "main direction". The Y direction is the short side direction of the first main surface 11a. The Y direction is orthogonal to the X direction within the plane along the first main surface 11a. The Z direction is a direction orthogonal to the X direction and the Y direction. Looking from the Z direction is referred to as a plan view. The plane along the X direction and the Y direction is referred to as the XY plane.
[0015] The right side in FIG. 2 is one direction of the X direction (+X direction). The left side in FIG. 2 is the direction opposite to the +X direction (-X direction). The upper side in FIG. 2 is one direction of the Y direction (+Y direction). The lower side in FIG. 2 is the direction opposite to the +Y direction (-Y direction). The direction in front of the paper surface in FIG. 2 is one direction of the Z direction (+Z direction). The direction behind the paper surface in FIG. 2 is the direction opposite to the +Z direction (-Z direction).
[0016] As the base material 11, a base material made of a polyester resin such as polyethylene terephthalate (PET), polybutylene terephthalate (PBT), or polyethylene naphthalate (PEN); a base material made of a polyolefin resin such as polyethylene (PE) or polypropylene (PP); a base material made of a polyfluoroethylene-based resin such as polyvinyl fluoride, polyvinylidene fluoride, or polyvinylidene fluoride; a base material made of a polyamide resin such as nylon 6 or nylon 6,6; a base material made of a vinyl polymer such as polyvinyl chloride (PVC), ethylene-vinyl acetate copolymer, polyvinyl alcohol, or vinylon; a base material made of an acrylic resin such as polymethyl methacrylate, polyethyl methacrylate, polyethyl acrylate, or polybutyl acrylate; a base material made of polystyrene; a base material made of polycarbonate (PC); a base material made of polyarylate; a base material made of polyimide; a base material made of paper such as high-quality paper, tissue paper, glassine paper, or sulfuric acid paper, etc. is used.
[0017] The IC chip 13 is provided on the first main surface 11a of the substrate 11. The IC chip 13 is located approximately in the center of the first main surface 11a in the X direction. The IC chip 13 is not particularly limited, and only needs to be capable of writing and reading information non-contactually via the antenna 12.
[0018] [Antenna] (First Embodiment) As shown in Figure 1, the antenna 12 comprises a matching circuit 16 and radiating elements 17 and 18. As shown in Figure 2, the matching circuit 16 has a loop-shaped closed circuit 20. The closed circuit 20 comprises a first wire 21 and a second wire 22. The impedance of the matching circuit 16 can be adjusted by the pattern shape. The matching circuit 16 is an example of a "circuit".
[0019] The first wiring 21 includes a first path 23 and a second path 24. One end 23a of the first path 23 is electrically connected to the IC chip 13. The other end 23b of the first path 23 is electrically connected to the first connection point 25. One end 24a of the second path 24 is electrically connected to the IC chip 13. The other end 24b of the second path 24 is electrically connected to the second connection point 26.
[0020] The first connection point 25 is located away from the IC chip 13 in the -X direction. The second connection point 26 is located away from the IC chip 13 in the +X direction. The first connection point 25 electrically connects the other end 23b of the first path 23 to one end 22a of the second wiring 22. The second connection point 26 electrically connects the other end 24b of the second path 24 to the other end 22b of the second wiring 22.
[0021] One end 22a of the second wiring 22 is electrically connected to the first connection point 25. The other end 22b of the second wiring 22 is electrically connected to the second connection point 26. The second wiring 22 is formed from one of the connection points 25, 26 (first connection point 25) to the other (second connection point 26).
[0022] The matching circuit 16 can be formed on the first main surface 11a of the substrate 11 by a printing method such as screen printing or inkjet printing using a polymer-type conductive ink. The matching circuit 16 may also be formed from conductive foil. The matching circuit 16 may also be formed from metal plating.
[0023] Polymer-type conductive inks include conductive fine particles such as silver powder, gold powder, platinum powder, aluminum powder, palladium powder, rhodium powder, and carbon powder (carbon black, carbon nanotubes, etc.), and a resin composition. Examples of resin compositions that can be used include thermosetting, photocuring, penetration-drying, and solvent-volatilizing types.
[0024] Examples of conductive foils forming the matching circuit 16 include copper foil, silver foil, gold foil, platinum foil, and aluminum foil. Examples of metal plating forming the matching circuit 16 include copper plating, silver plating, gold plating, and platinum plating.
[0025] As shown in Figure 1, the plan view shape of the radiating elements 17 and 18 is generally a meander shape. The first radiating element 17, one of the radiating elements 17 and 18, extends in the -X direction from the first connection point 25 while meandering. The second radiating element 18, the other of the radiating elements 17 and 18, extends in the +X direction from the second connection point 26 while meandering.
[0026] The radiating elements 17 and 18 are formed from conductive linear bodies 19. The radiating elements 17 and 18 are formed from metals such as steel, stainless steel, copper, or copper alloys. Preferably, the radiating elements 17 and 18 are formed from materials such as hard steel wire or copper alloy wire. The surface of the linear body 19 is conductive.
[0027] The linear bodies 19 constituting the radiating elements 17 and 18 may have a conductive plating applied to their surface. Examples of conductive plating include metal plating such as nickel plating, copper plating, silver plating, gold plating, platinum plating, and brass plating. Conductive plating can increase the conductivity of the surface of the linear bodies 19.
[0028] Among conductive platings, nickel plating offers advantages in terms of the processability of the linear body 19. For example, to form the wound portion 33, a straight linear body 19 that has been pre-plated with conductive plating is bent into the shape of the wound portion 33 by forming or other processes. By using nickel plating as the conductive plating, the slipperiness of the surface of the linear body 19 can be increased when forming the wound portion 33. Therefore, bending the wound portion 33 becomes easier.
[0029] The first radiating element 17 can be electrically connected to and fixed to the first connection point 25 by (i) soldering, (ii) eyelet or crimping, (iii) ultrasonic bonding, etc. The second radiating element 18 can be electrically connected to and fixed to the second connection point 26 by (i) soldering, (ii) eyelet or crimping, (iii) ultrasonic bonding, etc.
[0030] The shapes of the radiating elements 17 and 18 will be described in detail below. Figure 3 is a plan view of the first radiating element 17. Figure 4 is a perspective view of a part of the first radiating element 17. As shown in Figure 3, the first radiating element 17 comprises a base extension portion 30, a plurality of main extension portions 31, and a plurality of folded portions 32. The base extension portion 30 extends in the -X direction from the first connection point 25 (see Figure 2).
[0031] The main extension portion 31 is linear in shape along the Y direction. The extension direction (Y direction) of the main extension portion 31 is the direction that intersects the X direction. Multiple main extension portions 31 are approximately parallel to each other. Multiple main extension portions 31 are spaced apart in the X direction (main direction) and arranged in a line in the X direction. In this embodiment, there are 14 main extension portions 31. These main extension portions 31 are referred to as the 1st to 14th main extension portions 31 (31A to 31N), in order of arrangement (in the -X direction) starting from the main extension portion 31 closest to the first connection point 25. The 1st main extension portion 31A extends in the -Y direction from the tip of the base extension portion 30.
[0032] The folded portion 32 connects adjacent main extension portions 31 in the X direction. In this embodiment, there are 13 folded portions 32. These folded portions 32 are referred to as the 1st to 13th folded portions 32 (32A to 32M) in order from the folded portion 32 closest to the first connection point 25 (in the X direction). The nth folded portion 32 connects the nth main extension portion 31 and the (n+1)th main extension portion 31 (where n is an integer of 1 or more).
[0033] The multiple folded sections 32 alternately connect one end to one and the other end to the other of adjacent main extension sections 31. Specifically, the m-th folded section 32 connects one end (-Y direction end) of the m-th main extension section 31 to one end (-Y direction end) of the m+1-th main extension section 31 (m is an odd number greater than or equal to 1). The m+1-th folded section 32 connects the other end (+Y direction end) of the m+1-th main extension section 31 to the other end (+Y direction end) of the m+2-th main extension section 31.
[0034] For example, the first folded portion 32A connects one end (the -Y direction end) of the first main extension portion 31A to one end (the -Y direction end) of the second main extension portion 31B. The second folded portion 32B connects the other end (the +Y direction end) of the second main extension portion 31B to the other end (the +Y direction end) of the third main extension portion 31C. The third folded portion 32C connects one end (the -Y direction end) of the third main extension portion 31C to one end (the -Y direction end) of the fourth main extension portion 31D.
[0035] The 4th, 6th, 8th, 10th, and 12th folded sections 32D, 32F, 32H, 32J, and 32L connect the other ends (+Y direction ends) of adjacent main extension sections 31, similar to the 2nd folded section 32B. The 5th, 7th, 9th, 11th, and 13th folded sections 32E, 32G, 32I, 32K, and 32M connect the one end (-Y direction ends) of adjacent main extension sections 31, similar to the 1st folded section 32A and the 3rd folded section 32C.
[0036] Thus, the multiple folded portions 32 alternately connect one end to one and the other end to the adjacent main extension portions 31, so that the first radiating element 17 as a whole has a meandering shape. The first radiating element 17 has a meandering shape and is therefore shape-variable. The first radiating element 17 can expand or contract in the X direction in response to an external force acting on it in a direction that moves it away from or towards the base material 11 along the X direction.
[0037] As shown in Figure 4, the folded portion 32 has a wound portion 33. The wound portion 33 is circular in shape when viewed from above. For example, the winding portion 33 (first winding portion 33A) of the first folded portion 32A is formed in a helical shape, starting from one end 31Aa (the end in the -Y direction) of the first main extension portion 31A and ending at one end 31Ba (the end in the -Y direction) of the second main extension portion 31B. The first winding portion 33A circumfers while advancing in the -Z direction around a helical axis (not shown) along the Z direction. The first winding portion 33A is helical in the direction of a right-hand screw.
[0038] The first winding section 33A has a 1.5-turn structure comprising a first circular section 34A and a half-circular section 35A. The first circular section 34A extends from the starting point 34Aa (one end 31Aa), completes one full turn, and reaches an intermediate point 34Ab that coincides with the starting point 34Aa in a plan view. The first circular section 34A is circular in shape in a plan view. The intermediate point 34Ab is located on the -Z side relative to the starting point 34Aa.
[0039] The semi-circular portion 35A extends from the midpoint 34Ab and reaches the endpoint (one end 31Ba). In a plan view, the semi-circular portion 35A is concentric and has the same diameter as the first circular portion 34A. In a plan view, the semi-circular portion 35A overlaps with the first circular portion 34A.
[0040] The third, fifth, seventh, ninth, eleventh, and thirteenth folded sections 32C, 32E, 32G, 32I, 32K, and 32M each comprise a winding section 33 (third, fifth, seventh, ninth, eleventh, and thirteenth winding sections 33C, 33E, 33G, 33I, 33K, and 33M) with the same configuration as the first winding section 33A (see Figure 3).
[0041] The winding portion 33 (second winding portion 33B) of the second folded portion 32B is formed in a helical shape, starting from the other end 31Bb (the end in the +Y direction) of the second main extension portion 31B and ending at the other end 31Cb (the end in the +Y direction) of the third main extension portion 31C. The second winding portion 33B rotates around a helical axis (not shown) along the Z direction while advancing in the +Z direction. The second winding portion 33B is helical in the direction of a right-hand screw.
[0042] The second winding section 33B has a 1.5-turn structure comprising a first circular section 34B and a half-circular section 35B. The first circular section 34B extends from the starting point 34Ba (the other end 31Bb), completes one full turn, and reaches an intermediate point 34Bb that coincides with the starting point 34Ba in a plan view. The first circular section 34B is circular in shape in a plan view. The intermediate point 34Bb is located on the +Z side relative to the starting point 34Ba.
[0043] The semi-circular section 35B extends from the midpoint 34Bb and reaches the endpoint (the other end 31Cb). In a plan view, the semi-circular section 35B is concentric with and has the same diameter as the first circular section 34B. In a plan view, the semi-circular section 35B overlaps with the first circular section 34B.
[0044] The second winding section 33B is spiral-shaped, moving forward in the +Z direction while circulating, whereas the first winding section 33A is spiral-shaped, moving forward in the -Z direction while circulating. Therefore, the winding direction of the second winding section 33B is different from that of the first winding section 33A.
[0045] The fourth, sixth, eighth, tenth, and twelfth folded sections 32D, 32F, 32H, 32J, and 32L each include a winding section 33 (fourth, sixth, eighth, tenth, and twelfth winding sections 33D, 33F, 33H, 33J, and 33L) with the same configuration as the second winding section 33B (see Figure 3).
[0046] The winding portion 33 of the first, third, fifth, seventh, ninth, eleventh, and thirteenth folded sections 32 is helical, moving forward in the -Z direction while circling. The winding portion 33 of the second, fourth, sixth, eighth, tenth, and twelfth folded sections 32 is helical, moving forward in the +Z direction while circling. Therefore, among the first to thirteenth folded sections 32A to 32M, adjacent folded sections 32 have different winding directions for the winding portion 33.
[0047] The wound portion 33 has elasticity as a torsion spring because it is helical. The wound portion 33 is elastically deformable.
[0048] The first radiating element 17 extends outside the base material 11 in a plan view, except for a portion of the base extension 30 (see Figure 1). The second radiating element 18 has the same configuration as the first radiating element 17. A central line is assumed to pass through the center of the longitudinal direction of the base material 11 and along the Y direction. The first radiating element 17 and the second radiating element 18 are symmetrical with respect to this central line. The second radiating element 18 extends outside the base material 11 in a plan view, except for a part of the base extension portion 30 (see Figure 1).
[0049] The radiating elements 17 and 18 can be manufactured by forming the linear body 19.
[0050] Figures 5(A), 6(A), and 7(A) are plan views of a portion of the radiating element 17. Figures 5(B), 6(B), and 7(B) are side views of a portion of the radiating element 17. Figures 5(A) to 7(B) show the portion of the radiating element 17 that includes the second winding portion 33B (see Figure 4). As shown in Figures 5(A) and 5(B), the second winding portion 33B has a shape that rotates around a helical axis A1 along the Z direction while advancing in the +Z direction.
[0051] As shown in Figure 6(A), the second winding portion 33B has a 1.5-turn structure including the first circular portion 34B and the half-circular portion 35B. The portion of the second main extension 31B including the other end 31Bb (the end in the +Y direction) overlaps with the portion of the first circular portion 34B including the end (midpoint 34Bb) in a plan view. The portion of the first circular portion 34B corresponding to half a turn from the starting point 34Ba (the upper half-circular portion in Figure 6(A)) overlaps with the half-circular portion 35B in a plan view. The portion of the first circular portion 34B corresponding to the remaining half a turn (the lower half-circular portion in Figure 6(A)) including the starting end overlaps with the portion of the third main extension 31C including the other end 31Cb (the end in the +Y direction).
[0052] Thus, in the second winding section 33B, the linear bodies 19 overlap in the Z direction (direction of the helical axis A1) in the inverted U-shaped portion shown in shaded area in Figure 6(A). This overlapping portion of the linear bodies 19 (shaded area) is called the "overlapping portion 36".
[0053] Of the overlapping portion 36, the portion including the other end 31Bb (the end in the +Y direction) of the second main extension portion 31B and the portion including the end (midpoint 34Bb) of the first circular portion 34B are called the "first portion R1". The portion of the first circular portion 34B that corresponds to half a circle from the starting point 34Ba (the upper half-circle portion in Figure 6(A)) and the half-circle portion 35B are called the "second portion R2". The portion including the starting end of the remaining half-circle portion of the first circular portion 34B (the lower half-circle portion in Figure 6(A)) and the portion including the other end 31Cb (the end in the +Y direction) of the third main extension portion 31C are called the "third portion R3".
[0054] In the overlapping portion 36, at least a portion of adjacent linear bodies 19 in the Z direction are in conductive contact with each other. Specifically, for example, in the first portion R1, at least a portion of adjacent linear bodies 19 in the Z direction are in conductive contact with each other. In the second portion R2, at least a portion of adjacent linear bodies 19 in the Z direction are in conductive contact with each other. In the third portion R3, at least a portion of adjacent linear bodies 19 in the Z direction are in conductive contact with each other.
[0055] In the overlapping portion 36, it is desirable that at least a portion of adjacent linear bodies 19 are in conductive contact with each other in at least the first portion R1 and the third portion R3 of the first to third portions R1, R2, and R3. In the first part R1, the second part R2, and the third part R3, adjacent linear bodies 19 in the Z direction maintain contact due to their own bending elasticity.
[0056] In the first section R1, the second section R2, and the third section R3, adjacent linear bodies 19 are preferably in electrically conductive contact with each other over their entire length, but they may be in electrically conductive contact with each other only over a portion of their length.
[0057] The current flowing from the second main extension 31B to the third main extension 31C will now be explained. In the first section R1 and the third section R3, adjacent linear bodies 19 are conductive to each other. Therefore, as shown by the dashed line in Figure 6(A), the current I flowing through the second main extension 31B flows from the second main extension 31B to a part of the first circular section 34B (the lower half of the circular section in Figure 6(A)) in the first section R1. The current I then flows from the first circular section 34B to the third main extension 31C in the third section R3.
[0058] The non-contact data transmitter / receiver 10 is installed on an article. The article on which the non-contact data transmitter / receiver 10 is installed may be deformable. For example, the article may be an elastic body made of rubber, resin, etc. If deformation such as stretching, contraction, or bending occurs in the article, external forces may act on the radiating elements 17 and 18. For example, a tensile force may act on the radiating elements 17 and 18 in the direction away from the base material 11 along the X direction. A force may also act on the radiating elements 17 and 18 in the direction approaching the base material 11 along the X direction (compression direction). A torsional force may also act on the radiating elements 17 and 18 around an axis along the X direction. A bending (warping) force may also act on the radiating elements 17 and 18 in the Y or Z direction.
[0059] As shown in Figures 7(A) and 7(B), we assume that a break in the wire occurred due to an external force being applied to the radiating element 17. More specifically, we assume that the linear body 19 broke at the other end 31Bb (the end in the +Y direction) of the second main extension 31B.
[0060] Even if a break occurs at the other end 31Bb of the second main extension 31B, contact between adjacent linear bodies 19 in the first section R1 is maintained. Therefore, adjacent linear bodies 19 in the first section R1 can conduct to each other. Consequently, the current from the second main extension 31B to the third main extension 31C is maintained. In detail, as shown by the dashed line in Figure 7(A), the current I flows from the second main extension 31B to a part of the first circular section 34B (the lower half of the circular section in Figure 7(A)) in the first section R1. The current I then flows from the first circular section 34B to the third main extension 31C in the third section R3. In this way, the antenna 12 can maintain the current from the second main extension 31B to the third main extension 31C even if the linear body 19 is broken.
[0061] Figures 5(A) to 7(B) illustrate the second winding section 33B, but the same structure as the second winding section 33B can be adopted for the other winding sections 33.
[0062] [Effects of the antenna and contactless data transmitter / receiver of the embodiment] In the antenna 12 of this embodiment, at least a portion of adjacent linear bodies 19 in the Z direction are in contact with each other in a conductive manner in the winding portion 33. Therefore, even if a break occurs in the linear body 19, conductivity can be maintained. As a result, the communication performance of the antenna 12 can be maintained.
[0063] The antenna 12 has a helical winding portion 33 at the folded portion 32. This increases the mechanical strength of the folded portion 32 and provides it with stress resistance. Therefore, when an external force acts on the radiating elements 17 and 18, stress concentration on the folded portion 32 can be suppressed. Thus, damage to the radiating elements 17 and 18 can be made less likely.
[0064] Since the winding section 33 is elastically deformable, it can absorb stress when an external force is applied to the radiating elements 17 and 18. Therefore, in the antenna 12, the stress acting on the base portion of the radiating elements 17 and 18 (the portion connected to connection points 25 and 26) can be reduced. Thus, damage to the base portion can be suppressed.
[0065] In antenna 12, the winding directions of the winding sections 33 of adjacent folded sections 32 are different. For example, the helical forward direction of the first winding section 33A is the -Z direction, and the helical forward direction of the second winding section 33B is the +Z direction (see Figure 4).
[0066] Let's consider a reference plane (not shown) on which the radiating elements 17 and 18 are placed. Since the first winding section 33A and the second winding section 33B have different winding directions, the endpoint of the first winding section 33A (one end 31Ba) and the starting point of the second winding section 33B (the other end 31Bb) are located close to the reference plane (see Figure 4). Therefore, the inclination of the second main extension section 31B with respect to the reference plane becomes small. The inclination of the other main extension sections 31 and winding sections 33 also becomes small. In this way, in the antenna 12, the inclination of the main extension sections 31 and winding sections 33 is reduced because the winding directions of adjacent winding sections 33 are different. Thus, the thickness dimensions of the radiating elements 17 and 18 can be reduced.
[0067] For comparison, consider an antenna where the winding direction of adjacent folded sections is the same. In this antenna, the endpoint of the first winding section is located close to the reference plane, while the starting point of the second winding section is located away from the reference plane. Therefore, the inclination of the main extension section becomes larger. The inclination of the winding section also becomes larger. Consequently, the thickness dimension of the radiating element tends to be larger.
[0068] Since the non-contact data transmitter / receiver 10 is equipped with an antenna 12, it provides the same effect as the antenna 12.
[0069] [Contactless data receiver / transmitter] (Second embodiment) Figure 8 is a plan view of the non-contact data transmitter / receiver 110 according to the second embodiment. Figure 9 is a schematic diagram showing a partial cross-section of the radiating element 17 and the covering material 40. Figure 9 shows a partial cross-section of the width of the winding portion 33 in the portion indicated as II in Figure 8. Figure 10 is an enlarged view of a partial cross-section of the radiating element 17 and the covering material 40. Components that are the same as those in the non-contact data transmitter / receiver 10 of the first embodiment (see Figure 1) are denoted by the same reference numerals and their description is omitted.
[0070] As shown in Figure 8, the contactless data transmitter / receiver 110 comprises a main body 14 and a covering material 40. The main body 14 has the same configuration as the contactless data transmitter / receiver 10 (see Figure 1). The contactless data transmitter / receiver 110 differs from the contactless data transmitter / receiver 10 of the first embodiment (see Figure 1) in that it includes a covering material 40.
[0071] The covering material 40 comprises a pair of covering sheets 41. The covering sheets 41 are, for example, rectangular in shape when viewed from above. The covering sheets 41 are sized to encompass the entire main body 14 in a plan view. The pair of covering sheets 41 are the same size as each other.
[0072] As shown in Figures 9 and 10, the pair of covering sheets 41 hold the main body 14 (base material 11, antenna 12, and IC chip 13) in between.
[0073] The covering sheet 41 is formed from, for example, rubber, resin, or paper. It is desirable that the covering sheet 41 be elastic and flexible. Examples of materials for the covering sheet 41 include urethane rubber, isoprene rubber, ethylene propylene rubber, natural rubber, and silicone rubber. The covering sheet 41 is insulating.
[0074] Preferably, an adhesive layer 42 is formed on the surface of the radiating element 17. The radiating element 17 is bonded to the inner surface of the covering sheet 41 by the adhesive layer 42. The adhesive layer 42 can be formed with an adhesive such as a vulcanizing adhesive. The adhesive layer 42 can increase the holding force of the radiating element 17 by the covering material 40, which is advantageous for maintaining the contact state of adjacent linear bodies 19.
[0075] In areas where a pair of covering sheets 41 are in contact with each other, the covering sheets 41 can be bonded together, for example, by an adhesive. The pair of covering sheets 41 can be bonded together (vulcanized bonding) by heating and pressurizing unvulcanized rubber sheets in a vulcanization process.
[0076] Figure 11 is a schematic diagram showing a partial cross-section of the contactless data transmitter / receiver 110 installed on the item 50. As shown in Figure 11, the contactless data transmitter / receiver 110 is installed, for example, inside the article 50. The article 50 may be an elastic body made of rubber, resin, or the like.
[0077] The contactless data transmitter / receiver 110 can also be installed on the surface of the article 50. For example, the contactless data transmitter / receiver 110 may be a label sheet having a covering material 40 made of paper, resin, or the like. Information such as characters, figures, and symbols can be displayed on the surface of the covering material 40 by printing or the like. The label sheet can be attached to the surface of the article 50 with an adhesive or the like.
[0078] Similar to the contactless data transmitter / receiver 10 of the first embodiment (see Figure 1), the contactless data transmitter / receiver 110 maintains conductivity even if a wire break occurs in the linear body 19, because at least a portion of adjacent linear bodies 19 in the Z direction are electrically connected to each other in the winding portion 33. Therefore, the communication performance of the antenna 12 can be maintained.
[0079] In the non-contact data transmitter / receiver 110, the main body 14 is sandwiched between the covering material 40. Therefore, adjacent linear bodies 19 of the winding portion 33 are pressed in the thickness direction by the covering material 40, making it easier to maintain contact. Thus, it becomes easier to ensure electrical conductivity between the linear bodies 19.
[0080] [Antenna] (Second Embodiment) In the second embodiment, the main extension portion 31 (see Figure 3) of the antenna 12 is formed in a straight line perpendicular to the X direction (main direction), but the shape of the main extension portion is not limited to this. The main extension portion only needs to be formed in a direction intersecting the X direction (main direction). The main extension portion may also be formed at an angle with respect to the Y direction.
[0081] Figure 12 is a plan view of a part of the first radiating element 117 of the antenna according to the second embodiment. Components that are the same as those in the antenna 12 of the first embodiment are denoted by the same reference numerals and their description is omitted. As shown in Figure 12, the first radiating element 117 has a main extending portion 131 instead of the main extending portion 31. The main extending portion 131 is in the shape of a straight line inclined with respect to the Y direction. For example, the main extending portion 131 is inclined at an angle greater than 0° and less than 90° with respect to the Y direction. The inclination directions of adjacent main extending portions 131 are different.
[0082] In Figure 12, the first main extension 131A extends from the tip of the base extension 30 toward the folded portion 32A, inclined downwards as it goes in the -X direction. The second main extension 131B extends from the folded portion 32A toward the folded portion 32B, inclined upwards as it goes in the -X direction. The third main extension 131C and the fifth main extension 131E are inclined in the same way as the first main extension 131A. The fourth main extension 131D is inclined in the same way as the second main extension 131B. Because the main extension portion 131 of this antenna is inclined, the shape of the radiating element 117 is different from the shape of the radiating element 17 (see Figure 3). Therefore, different transmission and reception characteristics can be obtained compared to the antenna 12 of the first embodiment. [Examples]
[0083] (Test 1) A non-contact data transmitter / receiver 110, as shown in Figure 8, was fabricated. The linear body 19 of the antenna 12 was not broken. The frequency characteristics of the non-contact data transmitter / receiver 110 were investigated. The results are shown in Figure 13.
[0084] (Exam 2) A non-contact data transmitter / receiver 110 was fabricated by disconnecting the linear body 19 of the antenna 12. Specifically, as shown in Figures 7(A) and 7(B), the linear body 19 was disconnected at the other end 31Bb of the second main extension 31B. The frequency characteristics of the non-contact data transmitter / receiver 110 were investigated. The results are shown in Figure 13.
[0085] Figure 13 shows the test results. The horizontal axis of Figure 13 represents frequency (MHz). The vertical axis of Figure 13 represents theoretical read range forward (m). As shown in Figure 13, in Test 2, even though a break occurred in the linear body 19, communication performance equivalent to that in Test 1 (when there was no break) was obtained.
[0086] Although embodiments of the present invention have been described above, the configurations and combinations thereof in the embodiments are merely examples, and additions, omissions, substitutions, and other modifications to the configurations are possible without departing from the spirit of the present invention. In the antenna 12 of this embodiment, as shown in Figure 4, the winding section 33 has a helical structure with 1.5 turns, but the number of turns of the linear body 19 in the winding section is not particularly limited. The number of turns can be one or more (for example, more than one). The winding section may have a helical structure with, for example, 2.5 turns, 3.5 turns, or 4.5 turns. The 2.5-turn structure is a helical structure having a first turn portion, a second turn portion, and a half-turn portion. The 3.5-turn structure is a helical structure having a first turn portion, a second turn portion, a third turn portion, and a half-turn portion.
[0087] In the antenna 12 of this embodiment, it is preferable that adjacent linear bodies 19 in the Z direction in the winding portion 33 (see Figure 6(A)) are in direct contact, but they can also be indirectly in contact via a conductive material. The conductive material may be fluid, such as a conductive paste.
[0088] Although a circular shape was used as an example for the shape of the winding portion 33 in plan view, the shape of the winding portion is not particularly limited. For example, the plan view shape of the winding portion may be elliptical. The radiating element may be laminated on a stretchable, flexible resin sheet. In the antenna 12 shown in Figure 1, the main extension portion 31 is formed in a straight line, but the main extension portion may be partially or entirely curved. In the antenna 12 shown in Figure 1, all folded portions 32 have a winding portion 33, but it is sufficient if at least one of the multiple folded portions has a winding portion. [Explanation of Symbols]
[0089] 10,110…Contactless data transmitter / receiver, 11…Base material, 11a…First main surface, 12…Antenna, 13…IC chip, 16…Matching circuit (circuit), 17,117…First radiating element (radiating element), 18…Second radiating element (radiating element), 19…Linear body, 31,31A~31N,131,131A~131E…Main extension part, 32,32A~32M…Folded part, 33,33A~33M…Winding part, 40…Covering material, A1…Spiral shaft
Claims
1. An antenna having a radiating element, The aforementioned radiating element is Multiple main extending portions are arranged in a line at intervals in the main direction and extend intersecting the main direction, A plurality of folded portions that alternately connect one end to one and the other end to one of the adjacent main extensions, It is formed by linear bodies that have been given a meandering shape, At least one of the multiple folded portions has a helical winding portion in which the linear body is wound once or more times, The winding portion is such that at least a portion of the linear bodies adjacent to each other in the helical axis direction are in contact with each other in an electrically conductive manner. antenna.
2. The antenna according to claim 1, wherein the linear body is coated with a conductive plating.
3. The antenna according to claim 1 or 2, A substrate on which the antenna is provided, A contactless data transmitter / receiver comprising an IC chip provided on the aforementioned substrate.
4. The contactless data receiver / transmitter according to claim 3, further comprising the antenna, the substrate, and a covering material that sandwiches the IC chip.
Citation Information
Patent Citations
Electronic tag
CN210639636U
JP1973013344B1
Antenna and non-contact type data transceiver
JP2022114146A
A dual band antenna
WO2000003451A1