WO2013069498A1 - Lcフィルタ回路及び高周波モジュール - Google Patents
Lcフィルタ回路及び高周波モジュール Download PDFInfo
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- WO2013069498A1 WO2013069498A1 PCT/JP2012/077933 JP2012077933W WO2013069498A1 WO 2013069498 A1 WO2013069498 A1 WO 2013069498A1 JP 2012077933 W JP2012077933 W JP 2012077933W WO 2013069498 A1 WO2013069498 A1 WO 2013069498A1
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- H—ELECTRICITY
- H03—ELECTRONIC CIRCUITRY
- H03H—IMPEDANCE NETWORKS, e.g. RESONANT CIRCUITS; RESONATORS
- H03H7/00—Multiple-port networks comprising only passive electrical elements as network components
- H03H7/01—Frequency selective two-port networks
- H03H7/09—Filters comprising mutual inductance
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- the present invention relates to an LC filter circuit and a high-frequency module provided with an LC parallel resonant circuit.
- FIG. 1 is a circuit diagram of an LC filter circuit used in Patent Document 1.
- an LC parallel resonant circuit composed of an inductor L11 and a capacitor C11 is inserted between a signal line connecting the first input / output terminal P1 and the second input / output terminal P2 and the ground.
- the LC parallel resonant circuit has an impedance characteristic in which the circuit impedance is maximum (infinite) at the resonance frequency of the resonance circuit. By using this, the signal in the frequency band including the resonance frequency is passed. be able to.
- steep attenuation characteristics characteristics that allow steep attenuation at the end of the specific frequency band (pass band) (hereinafter, such characteristics are referred to as steep attenuation characteristics). To prevent the passband from becoming unnecessarily wide. By realizing such characteristics, for example, even if the band of the communication signal to be passed and the band of the communication signal to be attenuated are close to each other, only the communication signal to be passed can be passed.
- the attenuation characteristic can be sharpened by increasing the capacitance of the capacitor C11.
- the amount of attenuation in the passband increases and the insertion loss increases.
- the insertion loss can be reduced by increasing the inductance of the inductor L11.
- the attenuation characteristic becomes gradual and the 3 dB bandwidth becomes wide. For this reason, the conventional filter circuit as shown in FIG. 1 cannot realize a filter that can reliably separate communication signals in close proximity to each other.
- an object of the present invention is to provide a small LC filter circuit and a high-frequency module that have low insertion loss and can obtain steep attenuation characteristics.
- the LC filter circuit includes a first inductor connected to a first end with respect to a signal line connecting the first input / output terminal and the second input / output terminal, a second inductor, and the second inductor. And an LC parallel circuit composed of capacitors connected in parallel.
- the first inductor and the second inductor are arranged to be magnetically coupled.
- One connection point between the second inductor and the capacitor of the LC parallel circuit is grounded.
- the first inductor and the second inductor constituting the LC parallel circuit are magnetically coupled to form a mutual inductor.
- a filter circuit including four circuit elements of the first inductor, the second inductor, the mutual inductor, and the capacitor is configured by only the three circuit elements of the first inductor, the second inductor, and the capacitor. Therefore, it is possible to realize an attenuation characteristic and an attenuation pole that cannot be realized only by a combination of one inductor and one LC parallel circuit, without actually increasing the number of circuit elements formed in the multilayer body.
- the second end opposite to the first end of the first inductor is grounded via an element such as ground or a capacitor or an inductor.
- the inductance of the second inductor is larger than the inductance of the first inductor.
- the capacitor of the LC filter circuit of the present invention is preferably a parasitic capacitor of the second inductor.
- a capacitor can also be realized on the circuit without actually forming it in the laminate. Thereby, further downsizing becomes possible.
- the high frequency module of the present invention has a configuration of an LC filter circuit.
- the high-frequency module includes a laminate in which a plurality of dielectric layers are laminated, and a conductive pattern that is provided on the dielectric layer and forms a first inductor, a second inductor, and a capacitor. It is preferable that at least a part of the conductive pattern forming the first inductor and the conductive pattern forming the second inductor face each other along the stacking direction of the stacked body.
- This configuration shows a specific structure example of the high-frequency module forming the above-described LC filter circuit.
- the high frequency module of the present invention has a plurality of LC filter circuit configurations.
- the high-frequency module includes a laminate in which a plurality of dielectric layers are laminated, and a conductive pattern that is provided on the dielectric layer and forms a first inductor, a second inductor, and a capacitor. It is preferable that at least a part of the conductive pattern forming the first inductor and the conductive pattern forming the second inductor face each other in the stacking direction of the stacked body for each of the plurality of LC filter circuits.
- This configuration shows a specific structure example of a high-frequency module that forms a plurality of the above-described LC filter circuits.
- an LC filter circuit that has low insertion loss and can obtain steep attenuation characteristics can be formed with a simple circuit configuration and a small size.
- FIG. 11 is a circuit diagram of an LC filter circuit used in Patent Document 1.
- 1 is a circuit diagram of an LC filter circuit 1 according to a first embodiment. It is a transmission characteristic figure of LC filter circuit 1 concerning a 1st embodiment, and the conventional LC filter circuit. It is an equivalent circuit diagram in consideration of mutual inductance M of LC filter circuit 10 concerning a 1st embodiment.
- FIG. 5 is a circuit diagram of an LC filter circuit 1A according to a second embodiment. It is a transmission characteristic figure of LC filter circuit 1A concerning a 2nd embodiment. It is a partial stacking figure of the high frequency module provided with 1 A of LC filter circuits which concern on 2nd Embodiment.
- FIG. 2 is a circuit diagram of the LC filter circuit 1 according to the first embodiment.
- the LC filter circuit 1 includes a first input / output terminal P1 and a second input / output terminal P2.
- the first input / output terminal P1 and the second input / output terminal P2 are connected by a signal line 100.
- the first inductor 101 has a first end connected to the signal line 100 and a second end opposite to the first end connected to the ground (grounded).
- the inductance of the first inductor 101 is L1.
- the first end of the second inductor 102 and the first end of the capacitor 103 are connected, and the second end of the second inductor 102 and the second end of the capacitor 103 are connected.
- the LC parallel circuit 10 including the second inductor 102 and the capacitor 103 is configured.
- the connection point between the second inductor 102 of the LC parallel circuit 10 and the second ends of the capacitor 103 is connected to the ground.
- the inductance of the second inductor 102 is L2, and the capacitance of the capacitor 103 is C1.
- the first inductor 101 and the second inductor 102 are arranged so as to be magnetically coupled by a structure in a laminated body to be described later. As a result, a mutual inductance M is generated between the first inductor 101 and the second inductor 102. At this time, the first inductor 101 and the second inductor 102 are arranged so that mutual inductance acts on each inductor at ⁇ M by magnetic field coupling.
- the LC filter circuit 1 having such a configuration has the following transmission characteristics (transmission characteristics (S (2,1) and reflection characteristics S (1,1)).
- FIG. Fig. 3B is a transmission characteristic diagram of the LC filter circuit 1 according to the embodiment, and Fig. 3B is a transmission characteristic diagram of the conventional LC filter circuit shown in Fig. 2. Note that Figs. B) is a simulation result, and is set so that 2.5 GHz becomes the center frequency of the pass band.
- the first and second input / output terminals P1 and P2 are set to 50 ⁇ termination
- the inductance L1 of the first inductor 101 is 1.0 nH
- the inductance L2 of the second inductor 102 is 8.0 nH.
- the internal resistances of the first and second inductors 101 and 102 are set to 10 ⁇ .
- the capacitance C1 of the capacitor 103 is set to 0.5 pF
- the internal resistance of the parallel circuit composed of the inductor 102 and the capacitor 103 is set to 10 ⁇ .
- the inductance is set to 1 nH and the capacitance is set to 6.0 pF.
- the frequency width of the pass band can be narrowed, and steep attenuation characteristics can be realized on the low frequency side and the high frequency side of the pass band. .
- an attenuation pole can be formed on the high frequency side.
- the 3 dB bandwidth is 640 MHz.
- the 3 dB bandwidth indicates a frequency range in which the attenuation amount is ⁇ 3 dB with reference to the attenuation amount of the frequency having the smallest pass loss.
- the insertion loss IL is 0.56 dB.
- the frequency width of the pass band is widened, and both the low frequency side and the high frequency side of the pass band have gentle attenuation characteristics.
- the 3 dB bandwidth is 1980 MHz, and the insertion loss is 1.53 dB.
- a narrow pass band can be obtained, and a steep attenuation characteristic can be obtained on the low frequency side and the high frequency side of the pass band, and an LC filter circuit with a small insertion loss can be realized. can do. That is, an LC filter circuit having excellent transmission characteristics can be realized.
- the attenuation pole on the high frequency side is set so as to substantially match the frequency band of other communication signals using adjacent frequencies that are transmitted and received by the communication module in which the LC filter circuit is mounted, two types of communication Sufficient isolation can be ensured between transmission / reception circuits that transmit and receive signals.
- FIG. 4 is an equivalent circuit diagram in consideration of the mutual inductance M of the LC filter circuit 1 according to the first embodiment.
- a first end of an inductor 111 made of an inductance (L1-M) is connected to a signal line.
- a second end of the inductor 111 is connected to a first end of an inductor 113 made of an inductance M and a first end of an inductor 112 made of an inductance (L2-M).
- the second end of the inductor 112 is connected to the first end of a capacitor 103 made of a capacitance C1.
- the second end of the inductor 113 and the second end of the capacitor 103 are connected to the ground.
- the magnetic coupling between the first inductor 101 and the second inductor 102 is weak, and the first inductor directly connected to the signal line has the transmission characteristics of the LC filter circuit 1.
- the impedance of the circuit connected from the signal line 100 to the ground via the first inductor 101 is also compared because the frequency is low and the first inductance L1 is smaller and smaller than the second inductance L2. Small. For this reason, the signal transmitted through the signal line 100 easily flows to the ground via the first inductor 101. Thereby, an attenuation region having a predetermined attenuation amount and attenuation characteristic is formed on the low frequency side of the pass band.
- a parallel resonant circuit of the inductor 113 having the mutual inductance M, the inductance 112 having the inductance (L2-M), and the capacitor 103 having the capacitance C1 is an LC filter. This greatly contributes to the transmission characteristics of the circuit 1.
- the impedance of the parallel circuit is maximized. Therefore, in the pass band, when the ground side is viewed from the signal line 100, it can be considered that the inductor 111 having the inductance (L1-M) and the parallel resonant circuit having a large impedance are connected.
- the pass band it can be considered that a large impedance is connected from the signal line 100 to the ground side in the frequency band corresponding to the resonance frequency, and the communication signal is not attenuated without being attenuated. Transmitted between output terminals. Furthermore, since the mutual inductance M has no conductor loss, the Q value of the parallel resonant circuit is very high. Therefore, it is possible to realize a filter having a narrow band and little attenuation in the pass band.
- the inductor 111, the inductor 112, the inductor 112, the inductor 112, 113 and a circuit with four circuit elements of the capacitor 103 can be realized. That is, the LC filter circuit 10 composed of four circuit elements can be realized simply by forming three circuit elements in the laminate. Thereby, the size can be reduced as compared with the case where four circuit elements are formed in the laminate.
- an LC filter circuit having a narrow passband, excellent attenuation characteristics, and low insertion loss can be realized in a small size.
- FIG. 5 is a circuit diagram of the LC filter circuit 1A of the second embodiment.
- the LC filter circuit 1A of the present embodiment has a configuration including two LC filter circuits 1 using mutual inductances as shown in the first embodiment.
- a capacitor 105, an inductor 104, and a capacitor 106 are connected in series from the first input / output terminal P1 side between the first input / output terminal P1 and the second input / output terminal P2.
- the connection point between the capacitor 105 and the inductor 104 is connected to the ground via the inductor 101A and the capacitor 200.
- the inductor 102A is formed and arranged so as to generate a mutual inductance M1 by magnetic coupling with the inductor 101A.
- the inductor 101A and the inductor 102A are arranged so that mutual inductance acts on each inductor at ⁇ M1 by magnetic field coupling.
- the first end of the capacitor 103A is connected to the first end of the inductor 102A, and the second end of the capacitor 103A is connected to the second end of the inductor 102A.
- a parallel circuit of the inductor 102A and the capacitor 103A is configured.
- the second ends of the inductor 102A and the capacitor 103A are connected to the ground via the capacitor 200.
- the connection point between the inductor 104 and the capacitor 106 is connected to the ground via the inductor 101B and the capacitor 200.
- the inductor 102B is formed and arranged so as to generate a mutual inductance M2 by magnetic coupling with the inductor 101B.
- the inductor 101B and the inductor 102B are arranged so that mutual inductance acts on each inductor at ⁇ M2 by magnetic field coupling.
- the first end of the capacitor 103B is connected to the first end of the inductor 102B, and the second end of the capacitor 103B is connected to the second end of the inductor 102B.
- a parallel circuit of the inductor 102B and the capacitor 103B is configured.
- the second ends of the inductor 102B and the capacitor 103B are connected to the ground via the capacitor 200.
- the inductors 101A and 101B correspond to the first inductor described above, and the inductors 102A and 102B correspond to the second inductor described above.
- the LC filter circuit 1A having such a configuration has the following transmission characteristics (transmission characteristics (S (2,1) and reflection characteristics S (1,1)).
- FIG. 6 shows the second embodiment. 6 is a transmission characteristic diagram of the LC filter circuit 1A according to Fig. 6. Fig. 6 is an experimental result, and is set so that the vicinity of 2.4 GHz is the center frequency of the passband.
- an LC filter circuit having a large attenuation band attenuation can be realized without deteriorating the insertion loss.
- attenuation poles are formed on both the low frequency side and the high frequency side of the passband. Accordingly, if the attenuation pole is set so that the use frequency band substantially matches the frequency band of a plurality of adjacent communication signals, a high-frequency front-end circuit that can secure higher isolation between the circuits of the plurality of communication signals is provided. realizable.
- a high-frequency module including such an LC filter circuit 1A can be realized by a laminated body as described above, and each inductor and capacitor may be formed in the following shape.
- FIG. 7, FIG. 8, and FIG. 9 are partial stacking diagrams of the high-frequency module including the LC filter circuit 1A according to the second embodiment. 7 and 8, only the inductors 101A, 101B, 102A, and 102B shown in FIG. 5 are shown.
- FIG. 9 shows only the capacitor 200 shown in FIG.
- the open-loop electrode patterns constituting the inductors 101A and 101B are formed so that the electrode patterns overlap at least partially in the stacking direction.
- the electrode pattern of each layer is formed so as to have a spiral shape with the stacking direction as the axial direction by connecting them in the stacking direction with via electrodes.
- the inductors 101A and 101B are connected to the ground potential from the dielectric layer shown in FIG. 7D through the electrode pattern of the capacitor 200 shown in FIG.
- the open loop electrode patterns constituting the inductors 102A and 102B are formed such that the electrode patterns overlap at least partially in the stacking direction.
- the electrode pattern of each layer is formed so as to have a spiral shape with the stacking direction as the axial direction by connecting them in the stacking direction with via electrodes.
- the inductors 102A and 102B are connected to the ground potential from the dielectric layer shown in FIG. 8D through the electrode pattern of the capacitor 200 shown in FIG.
- a planar electrode pattern 200A and the inner ground electrode GND are formed so as to face each other. With this configuration, the capacitor 200 is formed.
- the electrode pattern constituting the inductor 101A is formed such that the electrode patterns overlap at least partially in the stacking direction with respect to the electrode pattern constituting the inductor 102A.
- the value of the mutual inductor M1 generated between the inductor 101A and the inductor 102A is appropriately set.
- the characteristics of the LC filter 1A can be adjusted as necessary.
- the electrode pattern constituting the inductor 101B is formed such that the electrode patterns overlap at least partially in the stacking direction with respect to the electrode pattern constituting the inductor 102B.
- the value of the mutual inductor M1 generated between the inductor 101B and the inductor 102B is appropriately set.
- the characteristics of the LC filter 1A can be adjusted as necessary.
- the capacitor 103A shown in FIG. 5 is realized by a parasitic capacitor generated by the electrode pattern of the inductor 102A and the electrode pattern 200A of the capacitor 200 overlapping in the stacking direction.
- 5 is realized by a parasitic capacitor that is generated when the electrode pattern of the inductor 102B and the electrode pattern 200A of the capacitor 200 overlap in the stacking direction.
- the capacitance required for the LC filter circuit 1A can be obtained by the overlapping area and the number of dielectric layers between the overlapping electrodes.
- the LC filter circuit 1A of the present embodiment is only required to obtain a capacitance within a predetermined range. Therefore, if the capacitors 103A and 103B are realized by the parasitic capacitors generated between the inductors 102A and 102B and the capacitor 200 using the electrode pattern configurations shown in FIGS. 7, 8, and 9, the capacitances of the capacitors 103A and 103B are realized.
- the electrode structure necessary for the configuration of the present embodiment can be realized in a small size so that the inductance of the inductors 102A and 102B is increased in order to improve the insertion loss.
- the high-frequency module including the LC filter circuit according to the present embodiment can be layered in LTCC (Low-Temperature-Co-fired-Ceramics).
- the SAW filter can be made smaller than a high-frequency module having a separate SAW filter and mounting the SAW filter on the top surface of the laminate.
- the inductance and capacitance shown in the above embodiment are examples for realizing the configuration of this embodiment, and the inductance is used so that the characteristic characteristic of the present invention as described above can be obtained as the LC filter circuit. It is also possible to set the capacitance to other values as appropriate.
- 1, 1A LC filter circuit
- 10, 10A, 10B LC parallel circuit
- 100 signal line
- 102 second inductor
- 200 capacitor 101A, 101B, 102A, 102B
- 104 inductor
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Abstract
Description
図3(A)は第1、第2入出力端子P1,P2が50Ω終端に設定されており、第1インダクタ101のインダクタンスL1は1.0nH、第2インダクタ102のインダクタンスL2は8.0nHに設定されており、第1、第2インダクタ101,102の内部抵抗は10Ωに設定されている。また、キャパシタ103のキャパシタンスC1は0.5pFに設定されており、インダクタ102とキャパシタ103とから構成される並列回路の内部抵抗は10Ωに設定されている。また、図3(B)は、インダクタンスは1nHに設定されており、キャパシタンスは6.0pFに設定されている。
101:第1インダクタ、102:第2インダクタ、103,103A,103B,200:キャパシタ、
101A,101B,102A,102B,104:インダクタ、
Claims (6)
- 第1入出力端子と第2入出力端子とを結ぶ信号ラインに対して、第1端部が接続する第1インダクタと、
第2インダクタ、および該第2インダクタに並列接続するキャパシタからなるLC並列回路と、を備え、
前記第1インダクタと前記第2インダクタは磁界結合するように配置され、
前記LC並列回路の第2インダクタとキャパシタとの一方の接続点は接地あるいはキャパシタ、インダクタを介して接地されている、LCフィルタ回路。 - 前記第1インダクタの前記第1端部と反対側の第2端部は、接地あるいはキャパシタ、インダクタを介して接地されている、請求項1に記載のLCフィルタ回路。
- 前記第2インダクタのインダクタンスは、前記第1インダクタのインダクタンスよりも大きい、請求項1または請求項2に記載のLCフィルタ回路。
- 前記キャパシタは、前記第2インダクタの寄生キャパシタである、請求項1乃至請求項3のいずれかに記載のLCフィルタ回路。
- 請求項1乃至請求項4のいずれかに記載のLCフィルタ回路の構成からなり、
複数の誘電体層が積層された積層体と、
前記誘電体層に設けられ、前記第1インダクタ、前記第2インダクタ及び前記キャパシタを形成する導電パターンと、を備え、
前記第1インダクタを形成する導電パターンと前記第2インダクタを形成する導電パターンは、前記積層体の積層方向に沿って、少なくとも一部が対向している、高周波モジュール。 - 請求項1乃至請求項4のいずれかに記載のLCフィルタ回路の構成を複数有するとともに、
複数の誘電体層が積層された積層体と、
前記誘電体層に設けられ、前記第1インダクタ、前記第2インダクタ及び前記キャパシタを形成する導電パターンと、を備え、
複数のLCフィルタ回路毎に、前記第1インダクタを形成する導電パターンと前記第2インダクタを形成する導電パターンは、前記積層体の積層方向に沿って、少なくとも一部が対向している、高周波モジュール。
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JP2013542933A JP5804076B2 (ja) | 2011-11-08 | 2012-10-30 | Lcフィルタ回路及び高周波モジュール |
CN201290000758.XU CN204244192U (zh) | 2011-11-08 | 2012-10-30 | Lc滤波器电路及高频模块 |
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JP2015111783A (ja) * | 2013-12-06 | 2015-06-18 | 株式会社村田製作所 | 周波数可変共振回路および周波数可変フィルタ |
WO2018180150A1 (ja) * | 2017-03-29 | 2018-10-04 | 株式会社村田製作所 | トラップフィルタおよびフィルタ回路 |
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CN104735908A (zh) * | 2013-12-18 | 2015-06-24 | 深圳富泰宏精密工业有限公司 | 印刷电路板 |
WO2016167171A1 (ja) * | 2015-04-17 | 2016-10-20 | 株式会社村田製作所 | 共振回路、帯域阻止フィルタおよび帯域通過フィルタ |
DE112019006378T5 (de) * | 2018-12-20 | 2021-09-02 | Avx Corporation | Mehrschicht-elektronikvorrichtung mit einem hochpräzisen induktor |
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CN110366821A (zh) * | 2017-03-29 | 2019-10-22 | 株式会社村田制作所 | 陷波滤波器以及滤波器电路 |
US10903812B2 (en) | 2017-03-29 | 2021-01-26 | Murata Manufacturing Co., Ltd. | Trap filter and filter circuit |
CN110366821B (zh) * | 2017-03-29 | 2023-02-17 | 株式会社村田制作所 | 陷波滤波器以及滤波器电路 |
Also Published As
Publication number | Publication date |
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TW201320591A (zh) | 2013-05-16 |
CN204244192U (zh) | 2015-04-01 |
TWI517570B (zh) | 2016-01-11 |
JP5804076B2 (ja) | 2015-11-04 |
JPWO2013069498A1 (ja) | 2015-04-02 |
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