Cavity filter and connecting structure included therein
11495870 · 2022-11-08
Assignee
Inventors
Cpc classification
H01R12/91
ELECTRICITY
H01R13/2457
ELECTRICITY
International classification
H01P1/208
ELECTRICITY
H01P1/213
ELECTRICITY
Abstract
The present invention relates to a cavity filter and a connecting structure included therein. The cavity filter includes: an RF signal connecting portion spaced apart, by a predetermined distance, from an outer member having an electrode pad provided on a surface thereof; and a terminal portion configured to electrically connect the electrode pad of the outer member and the RF signal connecting portion so as to absorb assembly tolerance existing at the predetermined distance and to prevent disconnection of the electric flow between the electrode pad and the RF signal connecting portion, wherein the terminal portion includes: a first side terminal contacted with the electrode pad; and a second side terminal having a housing space in which a part of the first side terminal is housed, and connected to the RF signal connecting portion, wherein the first side terminal is provided as an elastic deformable body whose part is radially widened or narrowed against an assembly force provided by an assembler. Therefore, the cavity filter can efficiently absorb assembly tolerance which occurs through assembly design, and prevent disconnection of an electric flow, thereby preventing degradation in performance of an antenna device.
Claims
1. A cavity filter comprising: an RF signal connector spaced apart, by a predetermined distance, from an outer member having an electrode pad provided on a surface thereof; and a terminal portion configured to electrically connect the electrode pad of the outer member and the RF signal connector, wherein the terminal portion comprises: a first terminal in contact with the electrode pad; and a second terminal having a housing space, and is connected to the RF signal connector, wherein the first terminal comprises an elastic deformable body a part of which is radially widened or narrowed against an assembly force provided by an assembler, and wherein at least a part of the elastic deformable body is housed in the housing space of the second terminal.
2. The cavity filter of claim 1, wherein the terminal portion is inserted into a terminal insertion port formed in a filter body having the RF signal connector provided therein.
3. The cavity filter of claim 2, further comprising a dielectric body inserted in the terminal insertion port so as to cover the outside of the terminal portion, wherein the dielectric body has a through-hole through which the terminal portion passes.
4. The cavity filter of claim 3, wherein any one of the first terminal and the second terminal, which passes through the through-hole, includes a locking portion which has a larger diameter than the through-hole so as to be locked to the dielectric body.
5. The cavity filter of claim 1, wherein the first terminal comprises a washer spring having a contact portion integrated therewith, the contact portion being in contact with the electrode pad.
6. The cavity filter of claim 1, further comprising an elastic member housed in the housing space of the second terminal, and configured to elastically support the first terminal toward the electrode pad.
7. The cavity filter of claim 6, wherein the first terminal comprises: a locking support plate locked to the inside of the housing space of the second terminal; and an upper protrusion extended from the top of the locking support plate, and is in contact with the electrode pad.
8. The cavity filter of claim 7, wherein the elastic member comprises a washer spring which elastically supports the bottom of the locking support plate of the first terminal.
9. The cavity filter of claim 7, wherein the elastic member comprises a washer spring locked to a locking rib formed between the upper protrusion and the lower protrusion of the first terminal, and configured to elastically support the first terminal toward the electrode pad.
10. The cavity filter of claim 6, wherein the first terminal comprises: a lower protrusion housed in the housing space of the second terminal, and inserted into a terminal guide hole formed in the housing space of the second terminal; and an upper protrusion extended from the top of the lower protrusion and is in contact with the electrode pad.
11. A connecting structure comprising: an RF signal connector spaced apart, by a predetermined distance, from an outer member having an electrode pad provided on a surface thereof; and a terminal portion configured to electrically connect the electrode pad of the outer member and the RF signal connector, wherein the terminal portion comprises: a first terminal in contact with the electrode pad; and a second terminal having a housing space, and is connected to the RF signal connector, wherein the first terminal comprises an elastic deformable body a part of which is radially widened or narrowed against an assembly force provided by an assembler, and wherein at least a part of the elastic deformable body is housed in the housing space of the second terminal.
12. The connecting structure of claim 11, wherein the terminal portion is inserted into a terminal insertion port formed in a filter body having the RF signal connector provided therein.
13. The connecting structure of claim 12, further comprising a dielectric body inserted in the terminal insertion port so as to cover the outside of the terminal portion, the dielectric body has a through-hole through which the terminal portion passes.
14. The connecting structure of claim 13, wherein, any one of the first terminal and the second terminal, which passes through the through-hole, includes a locking portion which has a larger diameter than the through-hole so as to be locked to the dielectric body.
15. The connecting structure of claim 11, wherein the first terminal comprises a washer spring having a contact portion integrated therewith, the contact portion being in contact with the electrode pad.
16. The connecting structure of claim 11, further comprising an elastic member housed in the housing space of the second terminal, and configured to elastically support the first terminal toward the electrode pad.
17. The connecting structure of claim 16, wherein the first terminal comprises: a locking support plate locked to the inside of the housing space of the second terminal; and an upper protrusion extended from the top of the locking support plate, and is in contact with the electrode pad.
18. The connecting structure of claim 17, wherein the elastic member comprises a washer spring which elastically supports the bottom of the locking support plate of the first terminal.
19. The connecting structure of claim 17, wherein the elastic member comprises a washer spring locked to a locking rib formed between the upper protrusion and the lower protrusion of the first terminal, and configured to elastically support the first terminal toward the electrode pad.
20. The connecting structure of claim 16, wherein the first terminal comprises: a lower protrusion housed in the housing space of the second terminal, and inserted into a terminal guide hole formed in the housing space of the second terminal; and an upper protrusion extended from the top of the lower protrusion and is in contact with the electrode pad.
Description
DESCRIPTION OF DRAWINGS
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BEST MODE
(26) Hereafter, some embodiments of the present disclosure will be described in detail with reference to the accompanying drawings. It should be noted that, when components in each of the drawings are denoted by reference numerals, the same components are represented by like reference numerals, even though the components are displayed on different drawings. Furthermore, when it is determined that the detailed descriptions of publicly known components or functions related to the present disclosure disturb understandings of the embodiments of the present disclosure, the detailed descriptions thereof will be omitted herein.
(27) When the components of the embodiments of the present disclosure are described, the terms such as first, second, A, B, (a) and (b) may be used. Each of such terms is only used to distinguish the corresponding component from other components, and the nature or order of the corresponding component is not limited by the term. Furthermore, all terms used herein, which include technical or scientific terms, may have the same meanings as those understood by those skilled in the art to which the present disclosure pertains, as long as the terms are not differently defined. The terms defined in a generally used dictionary should be analyzed to have meanings which coincide with contextual meanings in the related art. As long as the terms are not clearly defined in this specification, the terms are not analyzed as ideal or excessively formal meanings.
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(30) The antenna device 1 includes a housing 2 having a heat sink formed therein and a radome 3 coupled to the housing 2. Between the housing 2 and the radome 3, an antenna assembly may be embedded.
(31) A PSU (Power Supply Unit) 4 is coupled to the bottom of the housing 2 through a docking structure, for example, and provides operation power for operating communication parts included in the antenna assembly.
(32) Typically, the antenna assembly has a structure in which an equal number of cavity filters 7 to the number of antennas are disposed on a rear surface of an antenna board 5 having a plurality of antenna elements 6 arranged on a front surface thereof, and a related PCB 8 is subsequently stacked. The cavity filters 7 may be thoroughly tuned and verified to individually have frequency characteristics suitable for the specification, and prepared before mounted on the antenna board 5. Such a tuning and verifying process may be rapidly performed in an environment with the same characteristics as the mounting state.
(33)
(34) Referring to
(35) Furthermore, an RF connecting portion is disposed on either surface of the cavity filter 20 in the height direction thereof, and connected to the cavity filter 20 in accordance with the embodiment of the present disclosure. Although an antenna board 5 or a PCB board 8 is vibrated or thermally deformed, the RF connection may be equally maintained without a change in frequency characteristic.
(36)
(37) Referring to
(38) When the bottom of the terminal portion 40 in the drawings is supported by the RF signal connecting portion 31 and the antenna board or PCB board 8 is closely coupled to the top of the terminal portion 40, the terminal portion 40 may be electrically supported while always contacted with the electrode pad formed on one surface of the outer member 8, thereby removing assembly tolerance existing in the terminal insertion port 25.
(39) That is, as will be described below, the terminal portion 40 of the cavity filter 20 in accordance with the embodiment of the present disclosure may be separated as first side terminal and the second side terminal and implemented as various embodiments depending on a shape for applying lateral tension and a specific configuration for absorbing assembly tolerance.
(40) More specifically, the terminal portion 40 may be provided as a separable terminal portion in which two members are separated into an upper portion and a lower portion as illustrated in
(41) Although not illustrated, when the cavity filter is provided as an integrated filter, the terminal portion 40 may be provided as an elastic body whose part is elastically deformed when a predetermined assembly force is supplied by an assembler, in order to absorb assembly tolerance. However, the integrated filter having the terminal portion 40 integrated therewith does not require a separate shape design for applying lateral tension, because it is not predicted that an electric flow from one end to the other end thereof will be disconnected.
(42) However, when the terminal portion 40 is provided as a separable filter separated into two members, a separate elastic member 80 may be provided to remove the assembly tolerance. Specifically, the whole length of the terminal portion 40 may be decreased while the predetermined assembly force moves a first side terminal 50 and the second side terminal 60, which are separated from each other, to overlap each other, and increased and restored to the original state when the assembly force is removed. However, since the first side terminal 50 and the second side terminal 60 of the terminal portion 40 are separated from each other, it is feared that an electric flow will be disconnected when the first side terminal 50 and the second side terminal 60 are moved to overlap each other. Therefore, any one of the first side terminal 50 and the second side terminal 60 may be provided as an elastic deformable body, or a separate shape change for applying lateral tension may be essentially required.
(43) Particularly, in the cavity filter 20 in accordance with the embodiment of the present disclosure, the first side terminal 50 may be provided as an elastic deformable body whose part is radially widened or narrowed against an assembly force provided by an assembler, thereby applying the above-described lateral tension. Furthermore, the elastic deformable body of the first side terminal 50 may be radially widened or narrowed to prevent a degradation in contact rate with the electrode pad of the outer member 8 provided as any one of an antenna board and a PCB board.
(44) The term ‘lateral tension’ may be defined as a force which any one of the first side terminal 50 and the second side terminal 60 transfers to the other in a direction different from the longitudinal direction, in order to prevent the disconnection of the electric flow between the first side terminal 50 and the second side terminal 60, as described above.
(45) The antenna device is characterized in that, when the shape change of the terminal portion 40 is designed, impedance matching design in the terminal insertion port 25 needs to be paralleled. However, the embodiments of the cavity filter 20 in accordance with the present disclosure will be described under the supposition that impedance matching is achieved in the terminal insertion port 25. Therefore, among the components of the embodiments of the cavity filter in accordance with the present disclosure, which will be described with reference to
(46)
(47) As illustrated in
(48) As described above, the outer member 8 may be commonly referred to as any one of an antenna board having antenna elements arranged on the other surface thereof and a PCB board provided as one board on which a PA (Power Amplifier), a digital board and TX calibration are integrated.
(49) Hereafter, as illustrated in
(50) As illustrated in
(51) The filter body 21 may have a washer installation portion 27 formed as a groove on one surface thereof on which the first side terminal 50 of the terminal portion 40 to be described below is provided. The washer installation portion 27 may be formed as a groove to have a larger inner diameter than the terminal insertion port 25. Thus, when the outer edge of a star washer 90 which will be described below is locked to the washer installation portion 27, the star washer 90 may be prevented from being separated upward.
(52) Furthermore, the cavity filter 20 in accordance with the first embodiment of the present disclosure may further include the star washer 90 fixedly installed on the washer installation portion 27.
(53) The following descriptions are based on the supposition that the star washer 90 is commonly provided in all the embodiments of the present disclosure, which will be described below, as well as the first embodiment of the present disclosure. Therefore, it should be understood that, although the star washer 90 is not described in detail in the embodiments other than the first embodiment, the star washer 90 is included in the embodiments.
(54) The star washer 90 may include a fixed edge 91 which is formed in a ring shape and fixed to the washer installation portion 27, and a plurality of support pieces 92 which are upwardly inclined from the fixed edge 91 toward the center of the electrode pad of the antenna board or PCB board 8.
(55) When the embodiments of the cavity filter 20 in accordance with the present disclosure are assembled to the antenna board or PCB board 8 by an assembler, the star washer 90 may apply an elastic force to a fastening force by a fastening member (not illustrated) through the above-described assembling hole, while the plurality of support pieces 92 are supported on one surface of the antenna board or PCB board 8.
(56) The applying of the elastic force through the plurality of support pieces 92 may make it possible to uniformly maintain a contact area with the electrode pad of the terminal portion 40.
(57) Furthermore, the ring-shaped fixed edge 91 of the star washer 90 may be provided to cover the outside of the terminal portion 40 which is provided to transfer an electric signal, and serve as a kind of ground terminal. Furthermore, the star washer 90 serves to absorb assembly tolerance existing between the antenna board or PCB board 8 in the embodiments of the cavity filter 20 in accordance with the present disclosure.
(58) As described below, however, the assembly tolerance absorbed by the star washer 90 exists in the terminal insertion port 25, and is distinguished from assembly tolerance absorbed by the terminal portion 40. That is, the cavity filter in accordance with the embodiments of the present disclosure may be designed to absorb overall assembly tolerances at two or more locations through separate members during a single assembly process, and thus coupled more stably.
(59) As illustrated in
(60) Here, a lower end portion of the first side terminal 50 may be partially housed in the second side terminal 60. For this structure, an upper end portion of the second side terminal 60 may have a housing space which is recessed downward to house a part of the lower end portion of the first side terminal 50.
(61) The first side terminal 50 may include a contact portion 53 formed at the tip of an upper end portion 51 and a spring terminal portion 52 which forms the lower end portion and is elastically deformed by an assembly force provided by an assembler.
(62) The spring terminal portion 52 may be provided as a plurality of spring terminal portions which are radially extended and downwardly inclined from the bottom of the upper end portion 51 of the first side terminal 50 having the contact portion 53 formed thereon, and each have an edge locked and fixed to a spring installation groove 64 formed in the housing space of the second side terminal 60.
(63) The first side terminal 50 having such a configuration is formed in such a shape that the upper end portion 51 and the spring terminal portion 52 are formed as one body. The upper end portion 51 serves as a rod-shaped contact terminal which is provided to be vertically moved in the terminal insertion port 25, and the spring terminal portion 52 serves as an elastic member which elastically supports the upper end portion 51 from the bottom to the top. Specifically, the spring terminal portion 52 may be provided as an elastic deformable body whose portions corresponding to the fixed edge of the above-described star washer 90 are separated from each other, and portions corresponding to the support pieces of the star washer 90 are integrated with the upper end portion 51 corresponding to the contact terminal.
(64) Therefore, when an assembly force of an assembler is provided through the contact portion 53 of the first side terminal 50, the upper end portion 51 of the first side terminal 50 is pressed downward, and the spring terminal portions 52 are elastically deformed to be radially widened or narrowed against the assembly force of the assembler, thereby removing assembly tolerance existing in the terminal insertion port 25.
(65) At this time, when the portions of the spring terminal portion 52, corresponding to the fixed edge of the star washer 90, are elastically deformed by the assembly force provided by the assembler, the corresponding portions of the spring terminal portion 52 may be expanded and moved toward the inner circumferential wall of the spring installation groove 64 formed in the housing space of the second side terminal 60.
(66) As illustrated in
(67) The dielectric body 70 may be formed of Teflon. However, the material of the dielectric body 70 is not limited to Teflon, but can be replaced with any materials as long as the materials have a dielectric constant at which impedance matching in the terminal insertion port 25 can be achieved.
(68) Furthermore, the bottom edge of the dielectric body 70 is locked to an insertion port support portion 28 formed in the terminal insertion port 25, and thus supports the second side terminal 60 installed through the terminal through-hole 71. As a result, the dielectric body 70 serves to reinforce the RF signal connecting portion 31 to which the lower end portion 62 of the second side terminal 60 is soldered and fixed by an assembly force provided by an assembler.
(69) The first side terminal 50 and the second side terminal 60 are both made of a conductive material through which electricity flows. Thus, although the terminal portion 40 disposed in the terminal insertion port 25 is divided into two or more terminals, the spring terminal portion 52 of the first side terminal 50 may be elastically deformed as long as the antenna board or PCB board 8 is pressed against the first side terminal 50 by an assembly force of an assembler, thereby preventing disconnection of an electric flow.
(70) Hereafter, an assembly tolerance absorption process during an assembly process of the cavity filter 20 in accordance with the first embodiment of the present disclosure, which has the above-described configuration, will be described with reference to the accompanying drawings (specifically,
(71) First, as illustrated in
(72) Then, as illustrated in
(73) Simultaneously, the spring terminal portions 52 of the first side terminal 50 of the terminal portion 40 are elastically deformed and pressed to secondarily absorb assembly tolerance existing in the terminal insertion port 25.
(74) While the assembly force provided by the assembler is retained by the fastening member or the like, the spring terminal portions 52 may be pressed against the bottom surface of the housing space of the second side terminal 60, which makes it possible to prevent disconnection of the electric flow between the first side terminal 50 and the second side terminal 60.
(75)
(76) As illustrated in
(77) Here, a lower end portion (see a locking support plate 151 to be described below) of the first side terminal 150 may be partially housed in the second side terminal 160. For this structure, an upper end portion of the second side terminal 160 may have a housing space which is recessed downward to house a part of the lower end portion of the first side terminal 150.
(78) The first side terminal 150 may include the locking support plate 151 and an upper protrusion 152. The locking support plate 151 may be housed in the housing space of the second side terminal 160 and locked to the inside of the housing space of the second side terminal 160 so as to prevent the first side terminal 150 from being separated upward, and the upper protrusion 152 may protrude upward, by a predetermined length, from the top surface of the locking support plate 151, and have a contact portion 153 contacted with the electrode pad provided on the antenna board or PCB board 8.
(79) The elastic member 180 may be provided on the bottom surface of the housing space of the second side terminal 160, and elastically support the bottom surface of the locking support plate 151 of the first side terminal 150 upward. The elastic member 180 provided as an electric deformable body serves to elastically support the first side terminal 150 such that portions (a plurality of support pieces which will be described below) for supporting the first side terminal 150 are radially widened or narrowed by the distance by which the first side terminal 150 is pressed downward by an assembly force of an assembler, thereby absorbing assembly tolerance existing in a terminal insertion port 25.
(80) The elastic member 180 may be a washer spring which is formed in approximately the same shape as the star washer 90 described with reference to the first embodiment, and has a smaller size than the star washer 90. Therefore, the washer spring may include a ring-shaped fixed edge (with no reference numeral) which is fixed to a spring installation groove 164 which will be described below, and a plurality of support pieces (with no reference numeral) which are upwardly inclined toward the center of the bottom surface of the locking support plate 151 of the first side terminal 150 from the fixed edge.
(81) Furthermore, as illustrated in
(82) As illustrated in
(83) In the cavity filter 20 in accordance with the second embodiment of the present disclosure, which has the above-described configuration, the washer spring serving as the elastic member 180 may absorb assembly tolerance existing between the antenna board or PCB 8 and the cavity filter 20, and simultaneously absorb assembly tolerance existing in the terminal insertion port 25.
(84)
(85) As illustrated in
(86) Here, a lower end portion (see a lower protrusion 251 to be described below) of the first side terminal 250 may be partially housed in a terminal guide hole 263 formed in the second side terminal 260. For this structure, an upper end portion of the second side terminal 260 may have a housing space which is recessed downward to house a part of the lower end portion 251 of the first side terminal 250. Furthermore, the above-described terminal guide hole 263 may be formed at the bottom surface of the housing space of the second side terminal 260.
(87) The first side terminal 250 may be housed in the housing space of the second side terminal 260, and include the lower protrusion 251 and an upper protrusion 252. The lower protrusion 251 may be inserted into the terminal guide hole 263 formed in the housing space of the second side terminal 260, and the upper protrusion 252 may have a contact portion 253 contacted with the electrode pad provided on the antenna board or PCB board 8.
(88) Furthermore, as will be described below, the first side terminal 250 may further include a locking rib 254 formed between the lower protrusion 251 and the upper protrusion 252 so as to be locked to the elastic member 280 provided as a washer spring.
(89) The elastic member 280 may be provided on the bottom surface of the housing space of the second side terminal 260, and elastically support the first side terminal 250 upward. The elastic member 280 provided as an electric deformable body serves to elastically support the first side terminal 250 such that portions (a plurality of support pieces which will be described below) for supporting the first side terminal 250 are radially widened or narrowed by the distance by which the first side terminal 250 is pressed downward by an assembly force of an assembler, thereby absorbing assembly tolerance existing in a terminal insertion port 25.
(90) More specifically, the elastic member 280 may be provided as a washer spring as described above with reference to the second embodiment.
(91) Therefore, the elastic member 280 may include a ring-shaped fixed edge (with no reference numeral) fixed to a spring installation groove 264 which will be described below, and a plurality of support pieces (with no reference numeral) which are upwardly inclined toward the locking rib 254 of the first side terminal 250 from the fixed edge.
(92) Furthermore, as illustrated in
(93) In the cavity filter 20 in accordance with the third embodiment of the present disclosure, which has the above-described configuration, the first side terminal 250 and the second side terminal 260 are both made of a conductive material, and the washer spring serving as the elastic member 280, which is interposed between the first side terminal 250 and the second side terminal 260 and provides an elastic force, is also made of a conductive material. Thus, the cavity filter 20 does not require separate tension cut portions for applying lateral tension to prevent disconnection of an electric flow.
(94) Since a dielectric body 270 inserted for impedance matching in the terminal insertion port 25 and the other components are configured in a similar manner to or the same manner as those of the cavity filter 20 in accordance with the second embodiment, the detailed descriptions thereof may be replaced with those of the second embodiment.
(95)
(96) As illustrated in
(97) The terminal portion 340 may further include an elastic member 380 housed in the terminal housing hole, and provided as a spring to elastically support the bottom surface 351 of the first side terminal 350 upward toward the outer member 8 configured as any one of an antenna board and a PCB board.
(98) As illustrated in
(99) As illustrated in
(100) Since the function of the reinforcement plate 395 has been already described in detail in the above-described embodiments, the detailed descriptions thereof will be omitted herein.
(101) In the cavity filter 20 in accordance with the fourth embodiment of the present disclosure, the contact portion 352 of the first side terminal 350, which functions as an elastic deformable body, may be pressed downward by an assembly force provided by an assembler, and elastically deformed so as to be radially widened or narrowed to the outside. Furthermore, the contact portion 352 may be continuously and elastically supported toward the electrode pad by the elastic member 380, and thus prevent a frequent decrease or increase in the contact area, which makes it possible to generate a stable electric flow.
(102)
(103) As illustrated in
(104) In the cavity filter 20 in accordance with the fifth embodiment of the present disclosure, the first side terminal 450 may further include a contact protrusion 452′ and a separation prevention protrusion 451′, compared to the above-described cavity filter 20 in accordance with the fourth embodiment. The contact protrusion 452′ protrudes upwardly from each of contact surfaces of two contact portions 452, and the separation prevention protrusion 451′ protrudes from either side surface 451 of the first side terminal 450 so as to be locked into the terminal housing hole of the second side terminal 460.
(105) The contact protrusion 452′ serves to standardize a contact area of the contact portion 452 with respect to the electrode pad formed on one surface of the outer member 8 configured as any one of an antenna board and a PCB board. Therefore, the contact area may be constantly maintained as long as the first side terminal 450 is contacted with the electrode pad while elastically supported by an elastic member 480 among the components of the cavity filter 20 in accordance with the fifth embodiment.
(106) Since the other components have the same configuration as those of the cavity filter 20 in accordance with the fourth embodiment, the detailed descriptions thereof may be replaced with those of the fourth embodiment.
(107)
(108) As illustrated in
(109) In the cavity filter 20 in accordance with the sixth embodiment of the present disclosure, the first side terminal 550 may further include a contact protrusion 552′ and a separation prevention protrusion 552′, like the above-described cavity filter 20 in accordance with the fifth embodiment. The contact protrusion 552′ protrudes upwardly from each of contact surfaces of two contact portions 552, and the separation prevention protrusion 551′ protrudes from either side surface 551 of the first side terminal 550 so as to be locked into the terminal housing hole of the second side terminal 560
(110) The cavity filter 20 in accordance with the sixth embodiment of the present disclosure may further include a separation prevention housing 555 housed in a terminal housing hole of the second side terminal 560 and configured to house the first side terminal 550 therein and prevent the first side terminal 550 from being separated to the outside.
(111) The separation prevention housing 555 may have a guide groove 557 which is cut in such a manner that the contact protrusion 552′ and the separation prevention protrusion 551′ of the first side terminal 550 among the components of the cavity filter in accordance with the sixth embodiment protrude to the outside.
(112) The contact protrusion 552′ of the first side terminal 550 may protrude from the top 556 of the guide groove 557 so as to be contacted with the electrode pad, and the separation prevention protrusion 551′ of the first side terminal 550 may also protrude from the left/right side of the guide groove 557 so as to be locked to the inside of the terminal housing hole.
(113) The separation prevention housing 555 has an internal space in which the first side terminal 550 is housed, and serves to protect the first side terminal 550 such that the first side terminal 550 is not excessively deformed beyond a yield point when elastically deformed by an assembly force provided by an assembler, the yield point indicating the limit point where the first side terminal 550 is elastically restored to the original state.
(114) Since the other components have the same configuration as those of the cavity filter 20 in accordance with the fifth embodiment, the detailed descriptions thereof may be replaced with those of the fifth embodiment.
(115)
(116) As illustrated in
(117) In the terminal portion 540 of the cavity filter 20 in accordance with the sixth embodiment, the guide groove 557 of the separation prevention housing 555 may be cut in a ‘--’ shape. However, in a terminal portion 640 of the cavity filter 20 in accordance with the seventh embodiment, the guide groove 657 may be cut in a ‘+’ shape and formed in the separation prevention housing 655, thereby applying a predetermined elastic restoring force by an external force to the separation prevention housing 655.
(118) Since the other components have the same configuration as those of the cavity filter 20 in accordance with the sixth embodiment, the detailed descriptions thereof may be replaced with those of the sixth embodiment.
(119)
(120) So far, it has been described that each of the cavity filters in accordance with the various embodiments of the present disclosure is manufactured as one module, and attached to one surface of the outer member 8 provided as an antenna board or a PCB board. However, the embodiments of the present disclosure are not necessarily limited thereto. According to a modification illustrated in
(121) The above-described contents are only exemplary descriptions of the technical idea of the present disclosure, and those skilled in the art to which the present disclosure pertains may change and modify the present disclosure in various manners without departing from the essential properties of the present disclosure.
(122) Therefore, the embodiments disclosed in the present disclosure do not limit but describe the technical idea of the present disclosure, and the scope of the technical idea of the present disclosure is not limited by the embodiments. The scope of the protection of the present disclosure should be construed by the following claims, and all technical ideas within a range equivalent to the claims should be construed as being included in the scope of rights of the present disclosure.
INDUSTRIAL APPLICABILITY
(123) The present disclosure provides a cavity filter which can have a slimmer and more compact structure because an RF connector is embedded in the filter body in the thickness direction thereof, be assembled through an assembly method capable of minimizing the accumulation amount of assembly tolerance which occurs when a plurality of filters are assembled, facilitate the RF signal connection structure to be easily mounted and uniformly maintain the frequency characteristics of the filters, and provide stable connection by applying lateral tension while allowing a relative motion, thereby preventing degradation in antenna performance, and a connecting structure included therein.