Dielectric resonator and dielectric filter, transceiver, and base station to which dielectric resonator is applied
10978776 · 2021-04-13
Assignee
Inventors
- Guosheng Pu (Yokohama, JP)
- Jing SHI (Shanghai, CN)
- Masaru Ichikawa (Yokohama, JP)
- Zhen Shen (Shenzhen, CN)
Cpc classification
International classification
Abstract
This application relates to components of communications devices, and in particular, to a dielectric resonator and a dielectric filter, a transceiver, and a base station to which the dielectric resonator is applied. Embodiments of this application provide a dielectric resonator and a dielectric filter, a transceiver, and a base station to which the dielectric resonator is applied. The dielectric resonator includes a metal cavity and a dielectric block that is disposed in the metal cavity and that is made from a solid-state dielectric material; where sizes of the dielectric block meet c<b<a, where a, b, and c are respectively the sizes of the dielectric block in three dimensions in a three-dimensional coordinate system; a hole is disposed on the dielectric block; and a surface of the dielectric block is not metalized and is not in contact with the metal cavity.
Claims
1. A dielectric resonator, comprising a metal cavity and a dielectric block that is disposed in the metal cavity and that is made from a solid-state dielectric material; wherein sizes of the dielectric block meet c<b<a, wherein a, b, and c are respectively the sizes of the dielectric block in three dimensions in a three-dimensional coordinate system; a plurality of holes disposed on the dielectric block symmetrically on a central line along a length of the dielectric block, wherein a single electric field forms a closed loop around all of the plurality of holes in a first resonance mode, and two or more electric fields form a closed loop around each of the plurality of holes in a second resonance mode; and a surface of the dielectric block is not metalized and is not in contact with the metal cavity.
2. The dielectric resonator according to claim 1, wherein the holes are a through hole or a blind hole.
3. The dielectric resonator according to claim 1, wherein a chamfer and/or an opening groove are or is further disposed on the dielectric block.
4. A dielectric filter, comprising a dielectric resonator, wherein the dielectric resonator comprising: a metal cavity and a dielectric block that is disposed in the metal cavity and that is made from a solid-state dielectric material; wherein sizes of the dielectric block meet c<b<a, wherein a, b, and c are respectively the sizes of the dielectric block in three dimensions in a three-dimensional coordinate system; a plurality of holes disposed on the dielectric block symmetrically on a central line along a length of the dielectric block, wherein a single electric field forms a closed loop around all of the plurality of holes in a first resonance mode, and two or more electric fields form a closed loop around each of the plurality of holes in a second resonance mode; and a surface of the dielectric block is not metalized and is not in contact with the metal cavity.
5. The dielectric filter according to claim 4, wherein the holes are a through hole or a blind hole.
6. The dielectric filter according to claim 4, wherein a chamfer and/or an opening groove are or is further disposed on the dielectric block.
7. A transceiver, comprising a dielectric resonator, wherein the dielectric resonator comprising: a metal cavity and a dielectric block that is disposed in the metal cavity and that is made from a solid-state dielectric material; wherein sizes of the dielectric block meet c<b<a, wherein a, b, and c are respectively the sizes of the dielectric block in three dimensions in a three-dimensional coordinate system; a plurality of holes disposed on the dielectric block symmetrically on a central line along a length of the dielectric block, wherein a single electric field forms a closed loop around all of the plurality of holes in a first resonance mode, and two or more electric fields form a closed loop around each of the plurality of holes in a second resonance mode; and a surface of the dielectric block is not metalized and is not in contact with the metal cavity.
8. The transceiver according to claim 7, wherein the holes are a through hole or a blind hole.
9. The transceiver according to claim 7, wherein a chamfer and/or an opening groove are or is further disposed on the dielectric block.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1) To describe the technical solutions in the embodiments of the present invention or in the prior art more clearly, the following briefly describes the accompanying drawings required for describing the embodiments or the prior art.
(2)
(3)
(4) (1) and (2) in
(5) (1) and (2) in
(6)
(7) (1) in
(8) (2) in
(9) (1) to (4) in
(10) (1) and (2) in
(11)
(12)
DESCRIPTION OF EMBODIMENTS
(13) The following clearly describes the technical solutions in the embodiments of the present invention with reference to the accompanying drawings in the embodiments of the present invention.
(14) It should be noted that, in the embodiments of this application, a three-dimensional coordinate system is used to describe features, such as structures and electromagnetic field distribution, of a dielectric resonator and a dielectric filter related to this application. For ease of description and understanding, in the embodiments of this application, a three-dimensional coordinate system in which an X axis and a Y axis are parallel to a horizontal plane, and a Z axis is perpendicular to the horizontal plane is used as an example for description. It may be understood that directions of the X axis, the Y axis, and the Z axis and a corresponding XY plane in the three-dimensional coordinate system may be changed based on a specific device or system requirement in actual application. This is not limited in this application. For example, when both the X axis and the Y axis are parallel to the horizontal plane, the XY plane is parallel to the horizontal plane; or when the X axis is parallel to the horizontal plane and the Y axis is perpendicular to the horizontal plane, the XY plane is parallel to both the X axis and the Y axis and is perpendicular to the horizontal plane.
(15)
(16) The dielectric resonator provided in this embodiment of this application includes a metal cavity 202 and a dielectric block 201 that is disposed in the metal cavity 202 and that is made from a solid-state dielectric material. Sizes of the dielectric block 201 in a three-dimensional coordinate system meet c<b<a. As shown in
(17) In an example, (1) and (2) in
(18) In a specific example, as shown in
(19) In an example, a quantity of holes on the dielectric block 201 is greater than or equal to one. In the example shown in
(20) In an example, the dielectric block 201 may be hung in the metal cavity 202 through support of a supporting ledge 204. The supporting ledge 204 is usually made from a material of a relatively low dielectric constant, and may be approximately considered not to participate in resonance. It may be understood that the dielectric block 201 may also be hung in the metal cavity 202 in another installation manner. This is not limited in this application.
(21) In an example, the metal cavity 202 may include a metal box and a cover. It may be understood that the metal cavity 202 may also be implemented in another manner or by using another structure. This is not limited in this application.
(22) In an example, the solid-state dielectric material from which the dielectric block 201 is made may be ceramic. The ceramic has a relatively high quality factor, a relatively high dielectric constant, and relatively good performance in hardness and heat resistance. Therefore, the ceramic becomes a frequently-used solid-state dielectric material in the field of radio-frequency filters. Certainly, the solid-state dielectric material from which the dielectric block 201 is made may also be another material known to a person skilled in the art, for example, glass or a non-conducting macromolecular polymer.
(23) In an example, the resonance frequency of the dielectric resonator may be further adjusted by adjusting one or more parameters such as a shape or a size of the dielectric block 201, a shape or a size of the hole 203, a quantity of holes 203, or a distance between the plurality of holes, so that a working mode of the dielectric resonator includes a resonance frequency corresponding to a fundamental mode, so as to avoid a low-end spurious problem of the dielectric resonator.
(24) It should be noted that the shape of the hole 203 in the dielectric resonator provided in the foregoing embodiment is not limited to a circle shown in
(25)
(26) A specific shape of a dielectric block of the dielectric resonator shown in
(27) (1) and (2) in
(28) An opening groove is disposed on a part of a dielectric block of the dielectric resonator shown in (1) in
(29) (1) to (4) in
(30) The another dielectric resonator provided in this embodiment of this application includes a metal cavity and a dielectric block that is disposed in the metal cavity and that is made from a solid-state dielectric material. A size of the dielectric block in one dimension in a three-dimensional coordinate system is less than sizes of the dielectric block in the other two dimensions. A size (that is, a height) of the dielectric block in a Z axis direction in the three-dimensional coordinate system is denoted as c, and a and b are respectively sizes (that is, a length and a width) of the dielectric block in an X axis direction and a Y axis direction in the three-dimensional coordinate system. Sizes of the dielectric blocks of the dielectric resonators shown in (1) to (4) in
(31) In a specific example, sizes of the dielectric blocks that are shown in (1) and (2) in
(32) In a specific example, centers of a plurality of holes are on a line of symmetry that is of the dielectric block, that is in an XY plane, and that is parallel to the X axis in the three-dimensional coordinate system, and the holes are successively arranged in the X axis direction.
(33) In a specific example, each of the dielectric blocks of the dielectric resonators shown in (1) and (3) in
(34) In an example, the dielectric block may be hung in the metal cavity through support of a supporting ledge. The supporting ledge is usually made from a material of a relatively low dielectric constant, and may be approximately considered not to participate in resonance. It may be understood that the dielectric block may also be hung in the metal cavity in another installation manner. This is not limited in this application.
(35) In an example, the solid-state dielectric material from which the dielectric block is made may be ceramic. The ceramic has a relatively high quality factor, a relatively high dielectric constant, and relatively good performance in hardness and heat resistance. Therefore, the ceramic becomes a frequently-used solid-state dielectric material in the field of radio-frequency filters. Certainly, the solid-state dielectric material from which the dielectric block is made may also be another material known to a person skilled in the art, for example, glass or a non-conducting macromolecular polymer.
(36) In an example, the resonance frequency of the dielectric resonator may be further adjusted by adjusting one or more parameters such as a shape or a size of the dielectric block, a shape or a size of a hole, a quantity of holes, or a distance between the plurality of holes, so that a working resonance mode of the dielectric resonator includes a resonance frequency corresponding to a fundamental mode, so as to avoid a low-end spurious problem of the dielectric resonator.
(37) It should be noted that the shape of the hole in the dielectric resonator provided in the foregoing embodiment is not limited to a circle shown in (1) to (4) in
(38) (1) and (2) in
(39) Based on the dielectric resonator in the embodiment in (1) in
(40)
(41) In an example, the dielectric filter provided in this embodiment of this application includes any one of the foregoing dielectric resonators.
(42) In another example, the dielectric filter provided in this embodiment of this application includes any two or more of the foregoing dielectric resonators, and compared with a filter including a conventional multimode resonator, the dielectric filter is more applicable to a flattening scenario of a filter or a base station. Specifically,
(43) An embodiment of the present invention further provides a transceiver, including any one or more types of the dielectric filters described in the foregoing embodiments. Because the dielectric filter provided in the embodiment of the present invention is applied, the transceiver is more applicable to a miniaturized and flattened application scenario.
(44) An embodiment of the present invention further provides a base station, including the dielectric filter or the transceiver described in the foregoing embodiment. Because the dielectric filter provided in the embodiment of the present invention is applied, the base station is more applicable to a miniaturized and flattened application scenario.
(45) It should be noted that the base station (BS) mentioned in this application refers to an apparatus for performing direct communication with user equipment by using a wireless channel, and the base station may include a macro base station, a micro base station, a relay station, an access point, a remote radio unit (RRU), and the like with various forms. In systems using different radio access technologies, names of devices having a base station function may vary. For example, in an LTE network, the device having a base station function is referred to as an evolved NodeB (eNB or eNodeB), and the device having a base station function is referred to as a NodeB or the like in a 3rd Generation (3G) network. For ease of description, in this application, the foregoing apparatuses for performing direct communication with the user equipment by using the wireless channel are collectively referred to as base stations.
(46)
(47) The foregoing descriptions are merely specific embodiments of the present invention, but are not intended to limit the protection scope of the present invention. Any variation or replacement readily figured out by a person skilled in the art within the technical scope disclosed in the present invention shall fall within the protection scope of the present invention. Therefore, the protection scope of the present invention shall be subject to the protection scope of the claims.