Antenna and wireless module
11309641 · 2022-04-19
Assignee
Inventors
- Yuichi Ito (Kyoto, JP)
- Masahiro IZAWA (Kyoto, JP)
- Masayuki Kobayashi (Kyoto, JP)
- Nobumitsu Amachi (Kyoto, JP)
Cpc classification
H01Q9/0407
ELECTRICITY
H01Q19/30
ELECTRICITY
H01Q23/00
ELECTRICITY
International classification
H01Q23/00
ELECTRICITY
Abstract
An antenna (101) includes a grounded conductive foil (110) disposed on a module substrate (140), a first conductive foil (111), and a second conductive foil (112). The first conductive foil (111) and the second conductive foil (112) are disposed on the module substrate (140), are elongated, and do not overlap with the grounded conductive foil (110) in a plan view of the module substrate (140). The first conductive foil (111) has one end supplied with an antenna signal and the other end that is open. The second conductive foil (112) has one end connected to the grounded conductive foil (110) and the other end that is open. A wireless module (120) includes a circuit unit (130) including a communication circuit and provided to the module substrate (140) on which the antenna (101) is formed.
Claims
1. An antenna comprising: a substrate including a first surface and a second surface opposed to the first surface; a grounded conductive foil disposed on the substrate; a first conductive foil; and a second conductive foil, wherein the first conductive foil and the second conductive foil are disposed on the substrate, are elongated, and are not overlapping with the grounded conductive foil in a plan view of the substrate, wherein the first conductive foil has one end supplied with an antenna signal and another end being open; wherein the second conductive foil has one end connected to the grounded conductive foil and another end being open; and wherein the first conductive foil and the second conductive foil are arranged on the first surface, and wherein the grounded conductive foil is arranged on the second surface and is connected to the second conductive foil through a via without overlapping the first and second conductive foils in the plan view of the substrate.
2. The antenna according to claim 1, wherein the first conductive foil and the second conductive foil are disposed substantially parallel to each other and disposed side by side in a direction orthogonal to the elongated direction of each of the first conductive foil and the second conductive foil.
3. The antenna according to claim 2, wherein the second conductive foil includes two second conductive foils being parallel to each other, and wherein the two second conductive foils are respectively disposed at opposite sides of the first conductive foil.
4. The antenna according to claim 3, wherein the one end of the first conductive foil and the one end of each of the two second conductive foils are located along an edge of the grounded conductive foil in the plan view of the substrate.
5. The antenna according to claim 3, further comprising: an impedance element, wherein the one end of each of the two second conductive foils is connected to the grounded conductive foil via the impedance element.
6. A wireless module comprising a communication circuit provided on the substrate of the antenna according to claim 3.
7. The antenna according to claim 2, wherein the one end of the first conductive foil and the one end of each of the two second conductive foils are located along an edge of the grounded conductive foil in the plan view of the substrate.
8. The antenna according to claim 2, further comprising: an impedance element, wherein the one end of each of the two second conductive foils is connected to the grounded conductive foil via the impedance element.
9. A wireless module comprising a communication circuit provided on the substrate of the antenna according to claim 2.
10. The antenna according to claim 1, wherein the one end of the first conductive foil and the one end of the second conductive foil are located along an edge of the grounded conductive foil in the plan view of the substrate.
11. The antenna according to claim 10, further comprising: a wiring conductor transmitting the antenna signal, wherein the one end of the first conductive foil is connected to the wiring conductor.
12. The antenna according to claim 11, further comprising: an impedance element, wherein the one end of each of the two second conductive foils is connected to the grounded conductive foil via the impedance element.
13. A wireless module comprising a communication circuit provided on the substrate of the antenna according to claim 11.
14. The antenna according to claim 10, further comprising: an impedance element, wherein the one end of each of the two second conductive foils is connected to the grounded conductive foil via the impedance element.
15. A wireless module comprising a communication circuit provided on the substrate of the antenna according to claim 10.
16. The antenna according to claim 1, further comprising: an impedance element, wherein the one end of the second conductive foil is connected to the grounded conductive foil via the impedance element.
17. A wireless module comprising a communication circuit provided on the substrate of the antenna according to claim 16.
18. A wireless module comprising a communication circuit provided on the substrate of the antenna according to claim 1.
19. The antenna according to claim 1, wherein the second conductive foil is an extension of the grounded conductive foil in the plain view of the substrate.
20. The antenna according to claim 1, wherein the grounded conductive has a recess, and the one end of the first conductive foil is disposed within the recess.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS
(1)
(2) Each of
(3) Each of
(4) Each of
(5)
(6) Each of
(7)
(8)
(9) Each of
(10) each of
(11)
DETAILED DESCRIPTION OF THE DISCLOSURE
(12) Hereinafter, embodiments of the present disclosure will be described in detail by using the drawings. Note that each embodiment to be described later represents a comprehensive or specific example. A numeric value, a shape, a material, a component, the arrangement and connection form of the component, and the like described in the following embodiments are an example and are not intended to limit the present disclosure. Among components in the following embodiments, a component that is not described in an independent claim is described as an optional component. The sizes and the ratio of the sizes of components in the drawings are not necessarily precisely illustrated.
Embodiment 1
(13) An antenna according to Embodiment 1 is a unidirectional antenna including conductive foils in predetermined patterns on a substrate. The substrate is provided with various circuits including a communication circuit, together with the antenna, and a wireless module is configured by using the components. The wireless module is used in a communication device such as a radio beacon.
(14) Note that the radio beacon is a near-field device that wirelessly provides information. The radio beacon has been increasingly widely used in recent years and provides, for example, information regarding an installation location and information regarding a product placed in the installation location to a communication instrument nearby by using radio signals. The characteristics of the radio beacon might lead to a desire to limit the radiation of the radio signals to a specific direction (that is, a desire to have the antenna gain corresponding to unidirectionality). The antenna according to Embodiment 1 is usable for such a purpose, for example.
(15)
(16) The circuit unit 130 has a communication circuit 131, a central processing unit (CPU) 132, a random access memory (RAM) 133, a read only memory (ROM) 134, a clock circuit 135, and a power supply circuit 136.
(17) The content (for example, product information) of signals to be transmitted by using the communication circuit 131 and a communication circuit control program have been written in the ROM 134 connected to the CPU 132. The RAM 133 is a memory area for running the communication circuit control program.
(18) The communication circuit 131 is an electronic circuit that transmits, to a receiver (not illustrated) such as a smartphone, information regarding wireless connection control, a product, and the like by using a communication system such as Bluetooth (registered trademark) LowEnergy (BLE). The communication circuit 131 transmits and receives radio signals (electromagnetic waves with radio frequencies) by using the antenna 101.
(19) The clock circuit 135 and the power supply circuit 136 generate clock signals and a power supply voltage necessary for the operations of the circuit unit 130 and supply the clock signals and the power supply voltage to the communication circuit 131, the CPU 132, the RAM 133, and the ROM 134.
(20) Each of
(21) As illustrated in
(22) The wireless module 120 includes a grounded conductive foil 110, a first conductive foil 111, a second conductive foil 112, first terminals 115, second terminals 116, and the circuit unit 130 that are provided to a module substrate 140.
(23) The antenna 101 includes the grounded conductive foil 110, the first conductive foil 111, and the second conductive foil 112 respectively serving as a ground plane, a feed element, and a parasitic element. The grounded conductive foil 110 may also serve as a grounded conductive foil for power supply.
(24) The module substrate 140 may be composed of, for example, a printed circuit board or a ceramic multi-layer substrate.
(25) The circuit unit 130 includes various components such as an integrated circuit (IC) chip and a discrete component mounted on the first terminals 115 by using a conductive binder such as solder. The circuit unit 130 may be covered by a shield case. The wireless module 120 is mounted on the set substrate 170 by using a conductive binder such as solder with the second terminals 116 interposed therebetween.
(26) The detailed description about the antenna 101 is continued.
(27) Each of
(28) As illustrated in
(29) The first conductive foil 111 has one end close to the grounded conductive foil 110 and connected to the conductive foil 113. Antenna signals are supplied from the circuit unit 130 via the conductive foil 113. The other end located farther from the grounded conductive foil 110 is open. Note that the phrase “the other end is open” denotes that the other end is not connected to any other conductive members. The phrase is hereinafter used in the same meaning.
(30) The second conductive foil 112 has one end close to the grounded conductive foil 110. The one end is connected to the grounded conductive foil 110 with a via (not illustrated) interposed therebetween, the via piercing the conductive foil 114 and the module substrate 140. The other end located farther from the grounded conductive foil 110 is open.
(31) With the configuration as described above, the directivity corresponding to the antenna gain caused by the first conductive foil 111 is controlled by using the second conductive foil 112, and thereby the gain of the antenna 101 can achieve unidirectionality. Since the grounded conductive foil 110, the first conductive foil 111, and the second conductive foil 112 are all disposed on the one module substrate 140, the antenna 101 can be configured in a planar area having a thickness not substantially exceeding the thickness of the module substrate 140 and can be easily mounted, together with the circuit unit 130, on the module substrate 140.
(32) In particular, the one end of each of the first conductive foil 111 and the second conductive foil 112 is supplied with power and is grounded, and the other end is open. The first conductive foil 111 and the second conductive foil 112 thereby operate as a monopole antenna and thus can be configured in an area for a ¼ wave length. This leads to a unidirectional antenna configured on the one module substrate 140 thinly and in a small size.
(33) The grounded conductive foil 110 may also serve as the grounded conductive foil for power supply. In this case, the area occupied by the antenna 101 is reduced, and further the contribution to downsizing of a set can be achieved.
(34) The first conductive foil 111 and the second conductive foil 112 are disposed substantially parallel to each other and disposed side by side in a direction orthogonal to a lengthwise direction (in a Y-axis direction in the example in
(35) The one end of the first conductive foil 111 and the one end of the second conductive foil 112 are located along the edge of the grounded conductive foil 110 in the plan view of the module substrate 140. The grounded conductive foil 110 thus causes the formation of the mirror images of the first conductive foil 111 and the second conductive foil 112, and the gain of the antenna 101 is thereby enhanced.
(36) It is not essential to connect the one end of the second conductive foil 112 to the grounded conductive foil 110 with the conductive foil 114 and the via interposed therebetween. For example, the module substrate 140 may be provided with an impedance element (not illustrated) such as a chip coil, and the one end of the second conductive foil 112 and the grounded conductive foil 110 may be connected to each other by using the impedance element. This enables the directivity corresponding to the antenna gain to be controlled on the basis of the impedance value of the impedance element after the patterns of the first conductive foil 111 and the second conductive foil 112 are determined. The second conductive foil 112 can also be made shorter. Further, the use of a variable impedance element based on MEMS as the impedance element enables the directivity corresponding to the antenna gain to be variable.
(37) In addition, it is not essential to dispose the first conductive foil 111 and the second conductive foil 112 on the same surface of the module substrate 140 (on the upper surface in the above-described example). For example, the first conductive foil 111 and the second conductive foil 112 may be respectively disposed on the upper surface and the lower surface of the module substrate 140. In a case where the module substrate 140 is a multi-layer substrate, at least one of the grounded conductive foil 110, the first conductive foil 111, and the second conductive foil 112 may be provided to a wiring layer that is an unexposed inner layer.
(38) To verify the directivity of the antenna 101 configured as described above, the inventors have configured the antennas according to the embodiment and Comparative Example, performed the simulation, and thereby obtained the directivity corresponding to the gain of each antenna.
(39) Each of
(40) As illustrated in
(41) The first conductive foil 111 having a length of 20.5 mm and a width of 1.0 mm and the second conductive foil 112 having a length of 24.0 mm and a width of 1.0 mm are disposed in a portion on the upper surface which is opposite to the second portion (that is, the portion that does not overlap with the grounded conductive foil 110 in the plan view). The one end of the first conductive foil 111 is aligned on the edge of the grounded conductive foil 110 and disposed at the middle of the width of the module substrate 140. The one end of the second conductive foil 112 is aligned on the edge of the grounded conductive foil 110, and the second conductive foil 112 is disposed 28.5 mm away from the first conductive foil 111.
(42) The first conductive foil 111 is not connected to the grounded conductive foil 110 and is supplied with antenna signals via the one end of the first conductive foil 111. For the second conductive foil 112, the one end is connected to the grounded conductive foil 110.
(43)
(44) As illustrated in
(45) Each of
(46)
(47) From these simulation results, it is verified that simply forming the second conductive foil 112 on the substrate having the first conductive foil 111 functioning as the monopole antenna causes the antenna gain to achieve the unidirectionality without employing an additional radiating element or a solid structure.
(48) Since the second conductive foil 112 can be formed when the patterning of the conductive foils are performed on the printed circuit board, additional cost for providing the second conductive foil 112 is not incurred. According to the antenna of the embodiment, a planar antenna with antenna gain achieving unidirectionality is provided by using substantially the same size and cost as those for the planar monopole antenna in Comparative Example.
(49) This enables a unidirectional planar antenna to be employed for a communication device such as a radio beacon having a planar monopole antenna, without an increase in size and cost.
Embodiment 2
(50) An antenna according to Embodiment 2 is a unidirectional antenna including conductive foils on a substrate in predetermined patterns, like the antenna according to Embodiment 1. The antenna according to Embodiment 2 is different from the antenna according to Embodiment 1 in that the antenna according to Embodiment 2 is formed on the set substrate, instead of the module substrate and is also different in the details of the shapes of conductive foils included in the antenna. Hereinafter, the components described in Embodiment 1 are denoted by the same reference numerals, and description thereof is omitted. Matters different from those in Embodiment 1 will mainly be described.
(51)
(52) Each of
(53) As illustrated in
(54) The antenna 201 includes the grounded conductive foil 210, the first conductive foil 211, and the second conductive foils 212a and 212b respectively serving as a ground plane, a feed element, and parasitic elements. The grounded conductive foil 210 may also serve as a grounded conductive foil for power supply.
(55) The wireless module 220 may be a module component in which the antenna 101 is omitted in the wireless module 120 in
(56) The detailed description about the antenna 201 is continued.
(57) The first conductive foil 211 and the second conductive foils 212a and 212b are elongated and do not overlap with the grounded conductive foil 210 in a plan view of the set substrate 270 (that is, when the set substrate 270 is viewed in the X-axis direction).
(58) The first conductive foil 211 is supplied antenna signals from the wireless module 220 via one end close to the grounded conductive foil 210. The other end located farther from the grounded conductive foil 210 is open.
(59) Each of the second conductive foils 212a and 212b has one end close to the grounded conductive foil 210 connected to the grounded conductive foil 210, and the other end located farther from the grounded conductive foil 210 is open. The second conductive foils 212a and 212b may each be the same conductive foil as the grounded conductive foil 210 and formed to be continuous with the grounded conductive foil 210.
(60) With the configuration as described above, the directivity corresponding to the antenna gain caused by the first conductive foil 211 is controlled by using the second conductive foils 212a and 212b, and thereby the gain of the antenna 201 can achieve unidirectionality. Since the grounded conductive foil 210, the first conductive foil 211, and the second conductive foils 212a and 212b are all disposed on the one set substrate 270, the antenna 201 can be configured in a planar area having a thickness not substantially exceeding the thickness of the set substrate 270 and can be easily mounted, together with the wireless module 220 including the circuit unit 130, on the set substrate 270.
(61) In particular, the one end of each of the first conductive foil 211 and the second conductive foils 212a and 212b is supplied with power and is grounded, and the other end is open. The first conductive foil 211 and the second conductive foils 212a and 212b thereby operate as a monopole antenna and thus can be configured in an area for the ¼ wave length. This leads to a unidirectional antenna configured on the one set substrate 270 thinly and in a small size.
(62) The grounded conductive foil 210 may also serve as the grounded conductive foil for power supply. In this case, the area occupied by the antenna 201 is reduced, and further the contribution to downsizing of the set can be achieved.
(63) The first conductive foil 211 and the second conductive foils 212a and 212b are disposed substantially parallel to each other and disposed side by side in the direction orthogonal to the lengthwise direction (in the Y-axis direction in the example in
(64) The one end of the first conductive foil 211 and the one ends of the respective second conductive foils 212a and 212b are located along the edge of the grounded conductive foil 210 in the plan view of the set substrate 270. The grounded conductive foil 210 thus causes the formation of the mirror images of the first conductive foil 211 and the second conductive foils 212a and 212b, and the gain of the antenna 201 is thereby enhanced.
(65) It is not essential that the one ends of the respective second conductive foils 212a and 212b are continuous with the grounded conductive foil 210. For example, the set substrate 270 may be provided with an impedance element (not illustrated) such as a chip coil, and the one ends of the respective second conductive foils 212a and 212b may be connected to the grounded conductive foil 210 by using the impedance element. This enables the directivity corresponding to the antenna gain to be controlled on the basis of the impedance value of the impedance element after the patterns of the first conductive foil 211 and the second conductive foils 212a and 212b are determined. The second conductive foils 212a and 212b can also be made shorter. Further, the use of a variable impedance element based on MEMS as the impedance element enables the directivity corresponding to the antenna gain to be variable.
(66) In addition, it is not essential to dispose the first conductive foil 211 and the second conductive foils 212a and 212b on the same surface of the set substrate 270 (the upper surface in the above-described example). For example, the first conductive foil 211 may be disposed on the upper surface of the set substrate 270, and the grounded conductive foil 210 and the second conductive foils 212a and 212b may be disposed on the lower surface of the set substrate 270. In a case where the set substrate 270 is a multi-layer substrate, at least one of the grounded conductive foil 210, the first conductive foil 211, and the second conductive foils 212a and 212b may be provided to a wiring layer that is an unexposed inner layer.
(67) To verify the directivity of the antenna 201 configured as described above, the inventors have configured an antenna according to the embodiment, performed simulation, and thereby obtained the directivity corresponding to the antenna gain. In the simulation, to make a comparison with the embodiment in Embodiment 1, an antenna in which the first conductive foil 211 and the second conductive foils 212a and 212b are disposed on the upper surface of the set substrate 270, and the grounded conductive foil 210 is disposed on the lower surface of the set substrate 270 is configured.
(68) Each of
(69) As illustrated in
(70) The first conductive foil 211 having a length of 18.5 mm and a width of 1.0 mm, the second conductive foil 212a having a length of 22.5 mm and a width of 1.0 mm, and the second conductive foil 212b having a length of 16.0 mm and a width of 1.0 mm are disposed in the portion on the upper surface and opposite the second portion (that is, the portion that does not overlap with the grounded conductive foil 210 in the plan view).
(71) The one end of the second conductive foil 212a is aligned on the edge of the grounded conductive foil 210, and the second conductive foil 212a is disposed 2.5 mm away widthwise from the left side of the grounded conductive foil 210. The one end of the first conductive foil 211 is aligned on the edge of the grounded conductive foil 210, and the first conductive foil 211 is disposed 19.5 mm away from the second conductive foil 212a. The one end of the second conductive foil 212b is aligned on the edge of the grounded conductive foil 210, and the second conductive foil 212b is disposed on the opposite side of the first conductive foil 211 from the second conductive foil 212a and 25.5 mm away from the first conductive foil 211. The second conductive foil 212b is 42.5 mm away widthwise from the right side of the grounded conductive foil 210.
(72) The first conductive foil 211 is not connected to the grounded conductive foil 210 and is supplied with antenna signals via the one end of the first conductive foil 211. The one end of the second conductive foil 212a and the one end of the second conductive foil 212b are connected to the grounded conductive foil 210.
(73)
(74) As illustrated in
(75) From these simulation results, it is verified that simply forming the second conductive foils 212a and 212b on the substrate having the first conductive foil 211 functioning as the monopole antenna causes the antenna gain to achieve the unidirectionality without employing an additional radiating element or a solid structure.
(76) Since the second conductive foils 212a and 212b can be formed when the patterning of the conductive foils are performed on the printed circuit board, additional cost for providing the second conductive foils 212a and 212b is not incurred. According to the antenna of the embodiment, a planar antenna with antenna gain achieving unidirectionality is provided by using substantially the same size and cost as those for the planar monopole antenna in Comparative Example.
(77) This enables a unidirectional planar antenna to be employed for a communication device such as a radio beacon having a planar monopole antenna, without an increase in size and cost.
(78) Note that the two parasitic elements (the second conductive foils) have been illustrated in the above-described example; however, increasing the number of parasitic elements can lead to the optimization of the directivity corresponding to the antenna gain.
(79) The antenna and the wireless module according to the embodiments of the present disclosure have heretofore been described; however, the present disclosure is not limited to the individual embodiments. Without departing from the spirit of the present disclosure, forms in which various modifications conceived of by those skilled in the art are made to the embodiments and which are built up by combining components in different embodiments may also be included in one or more aspects of the present disclosure.
(80) The present disclosure is widely used for a wireless apparatus using a unidirectional antenna, such as a radio beacon. 100, 200 communication device 101, 201 antenna 110, 210 grounded conductive foil 111, 211 first conductive foil 112, 212a, 212b second conductive foil 113, 114 conductive foil for connection 115 first terminal 116 second terminal 120, 220 wireless module 130 circuit unit 131 communication circuit 132 CPU 133 RAM 134 ROM 135 clock circuit 136 power supply circuit 140 module substrate 150 component 160 battery 170, 270 set substrate