WO2017179265A1 - Dispositif de réception - Google Patents

Dispositif de réception Download PDF

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Publication number
WO2017179265A1
WO2017179265A1 PCT/JP2017/002727 JP2017002727W WO2017179265A1 WO 2017179265 A1 WO2017179265 A1 WO 2017179265A1 JP 2017002727 W JP2017002727 W JP 2017002727W WO 2017179265 A1 WO2017179265 A1 WO 2017179265A1
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WO
WIPO (PCT)
Prior art keywords
signal
frequency
amplifier
frequency signal
unit
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PCT/JP2017/002727
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English (en)
Japanese (ja)
Inventor
中島 健介
新司 山浦
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株式会社デンソー
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Publication date
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Publication of WO2017179265A1 publication Critical patent/WO2017179265A1/fr

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B1/00Details of transmission systems, not covered by a single one of groups H04B3/00 - H04B13/00; Details of transmission systems not characterised by the medium used for transmission
    • H04B1/06Receivers
    • H04B1/16Circuits
    • H04B1/26Circuits for superheterodyne receivers
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B17/00Monitoring; Testing
    • H04B17/20Monitoring; Testing of receivers
    • H04B17/29Performance testing

Definitions

  • the present disclosure relates to a receiving apparatus having a function of mixing a received signal with a local frequency signal and converting the received signal into an intermediate frequency signal.
  • Non-patent document 1 is known as a related art relating to a receiving apparatus that mixes a received signal with a local frequency signal and converts it into an intermediate frequency signal.
  • the BIST (Bilt-In-Self-Test) signal in the millimeter wave band is a signal having the same frequency that is generated from the same signal source as the local signal of the transceiver, and is down-converted by the local signal at the receiver.
  • the converted signal is converted into a DC signal having only a DC component. This is a so-called direct conversion system.
  • the present disclosure has been made in view of the above circumstances, and an object of the present disclosure is to provide a receiving apparatus capable of testing frequency characteristics of a circuit block in an intermediate frequency band regardless of the frequency of a signal to be converted.
  • the low frequency signal generation unit generates a low frequency signal having a frequency lower than that of the local frequency signal used for conversion to the intermediate frequency signal
  • the test signal generation unit includes the low frequency signal.
  • the test signal is generated by mixing the signal and a signal having the same frequency as the local frequency signal. Then, the test signal and the input portion of the amplifier that amplifies the reception signal are coupled by a coupler, and the control unit tests the operation of the reception unit including the amplifier, the frequency conversion unit, and the intermediate frequency band amplifier using the test signal.
  • the signal converted and output by the frequency conversion unit has the frequency of the low frequency signal. That is, since a signal having a predetermined frequency can be obtained at the time of the test, the operation of the receiving unit can be tested regardless of the frequency of the intermediate frequency signal converted by the frequency converting unit.
  • FIG. 1 is a functional block diagram mainly showing the configuration of an IC in the first embodiment.
  • FIG. 2 is a diagram illustrating a specific numerical example of each frequency signal in the receiving unit and the receiving BIST unit, and a power spectrum.
  • FIG. 3 is a diagram showing a configuration of an in-vehicle millimeter wave radar system.
  • FIG. 4 is a flowchart showing the contents of the BIST process by the control unit.
  • FIG. 5 is a functional block diagram mainly showing the configuration of the IC in the second embodiment.
  • FIG. 6 is a functional block diagram mainly showing the configuration of the IC in the third embodiment.
  • FIG. 1 is a functional block diagram mainly showing the configuration of an IC in the first embodiment.
  • FIG. 2 is a diagram illustrating a specific numerical example of each frequency signal in the receiving unit and the receiving BIST unit, and a power spectrum.
  • FIG. 3 is a diagram showing a configuration of an in-vehicle millimeter wave radar system.
  • FIG. 7 is a functional block diagram mainly showing the configuration of the IC in the fourth embodiment.
  • FIG. 8 is a functional block diagram mainly showing the configuration of the IC in the fifth embodiment.
  • FIG. 9 is a functional block diagram mainly showing the configuration of the IC in the sixth embodiment.
  • FIG. 10 is a functional block diagram mainly showing the configuration of the IC in the seventh embodiment.
  • FIG. 11 is a functional block diagram mainly showing the configuration of an IC in the eighth embodiment.
  • FIG. 12 is a functional block diagram mainly showing the configuration of the IC in the ninth embodiment.
  • the in-vehicle millimeter wave radar system 1 includes an IC 2 and a control unit 3 that performs signal processing and controls the IC 2.
  • the control unit 3 transfers data to and from the control unit 4 that performs vehicle safety control.
  • the control unit 4 communicates with other control units arranged in each part of the vehicle by an in-vehicle LAN or the like.
  • the reference clock signal fclk generated by the reference clock generation unit 5 is input to IC2.
  • the reference clock signal fclk is given to an internal PLL (Phase Locked Loop) frequency synthesizer 6.
  • the name of a signal may indicate the frequency of the corresponding signal.
  • the frequency synthesizer 6 generates a signal fLO / N obtained by dividing the frequency of the local frequency signal fLO used in the IC 2 by N and outputs it to each unit as described below.
  • the IC 2 includes a circuit control register 7, and the control unit 3 controls each unit of the IC 2 through the circuit control register 7. Data is transferred between the control unit 3 and the circuit control register 7 according to a communication standard such as SPI (Serial Peripheral Interface) or I2C (Inter-Integrated Circuit), but the communication standard used is not limited to these.
  • a communication standard such as SPI (Serial Peripheral Interface) or I2C (Inter-Integrated Circuit)
  • SPI Serial Peripheral Interface
  • I2C Inter-Integrated Circuit
  • the IC 2 includes a transmission unit 11, a reception unit 12, and a reception BIST unit 13.
  • the transmitter 11 multiplies the signal fLO / N by N by receiving the signal fLO / N, and inputs the signal of the frequency fLO to the power amplifier 16 via the phase shifter 15.
  • the power amplifier 16 amplifies the input signal and outputs the amplified signal to the transmission antenna 17, and the transmission antenna 17 transmits a radio signal having the frequency fLO to the outside.
  • the radio wave signal transmitted by the transmitter 11 as described above is reflected by a target 18 such as another vehicle, and the reflected wave is received by the receiving antenna 19.
  • the receiving unit 12 amplifies the signal received by the receiving antenna 19 by the low noise amplifier 20 and inputs the amplified signal to the mixer 21.
  • the signal fLO / N is also multiplied by N by the multiplier 22 in the receiver 12 to generate a local frequency signal having the frequency fLO.
  • the local frequency signal fLO is input to the mixer 21 and mixed with the signal amplified by the low noise amplifier 20.
  • the signal output from the mixer 21 is an intermediate frequency signal, and the intermediate frequency signal is amplified by the intermediate frequency band amplifier 23 having a variable amplification gain and input to the control unit 3.
  • the intermediate frequency signal is A / D converted by an A / D converter (not shown) built in the control unit 3 and read.
  • the actual receiving unit 12 includes a plurality of, for example, four receiving channels (1) to (4).
  • the control unit 4 and the transmission unit 11 are not shown.
  • the reception BIST unit 13 divides the reference clock signal fclk by the test signal generator 24 to generate the low frequency signal fIF in order to generate the test signal ftest used for testing the frequency characteristic of the reception unit 12. .
  • the reception BIST unit 13 multiplies the frequency-divided signal fLO / N generated by the frequency synthesizer 6 by N by the multiplier 25 to generate a signal having the same frequency as the local frequency signal fLO. These signals are input to the mixer 26 and mixed to generate a test signal ftest.
  • the test signal ftest is input to the input terminal of the low noise amplifier 20 via the coupler 27.
  • the mixer 26 corresponds to a test signal generation unit.
  • the frequency fclk of the reference clock signal is set to 52 MHz
  • the frequency fLO of the local frequency signal is set to 80 GHz.
  • the frequency synthesizer 6 generates a signal fLO / 2 having a frequency of 40 GHz using the reference clock signal.
  • the signal fLO / 2 is doubled by the multiplier 22 to become a local frequency signal fLO.
  • the signal fLO / 2 is doubled by the multiplier 25 to generate a signal fLO whose frequency is equal to the local frequency signal.
  • the frequency of the signal transmitted from the transmission unit 11 is 80 GHz, and the frequency of the local frequency signal fLO input to the mixer 21 of the reception unit 12 is 80 GHz. Therefore, the IC 2 that is a transceiver constituting the millimeter wave radar system 1 employs a direct conversion method in which the intermediate frequency signal output from the mixer 21 is only a DC component.
  • the radar modulation signal (FMCW) generated by the frequency synthesizer 6 is reflected by the target 18.
  • the intermediate frequency signal output from the mixer 21 when the reflected wave is received by the receiving unit 12 is down-converted with a radar modulation signal having a different frequency by a time difference corresponding to the distance, and a frequency component corresponding to the time difference. Only can be obtained.
  • the reception BIST unit 13 divides the reference clock signal fclk by 1000 by the low frequency signal generator 24 to generate a low frequency signal fIF having a frequency of 52 kHz.
  • the frequency of the generated test signal ftest is (80 GHz ⁇ 52 kHz). Therefore, if only the test signal ftest is input to the receiving unit 12, the frequency of the signal output from the mixer 21 is 52 kHz.
  • the level of the local frequency signal component fLO can be suppressed as shown in FIG.
  • the control unit 3 turns on the reception BIST unit 13 from the state of the reception mode in which the frequency synthesizer 6 and the reception unit 12 are ON, and shifts to the BIST mode (S1) to set the test items. (S2).
  • S1 the state of the reception mode in which the frequency synthesizer 6 and the reception unit 12 are ON
  • S2 shifts to the BIST mode (S1) to set the test items.
  • S2 An example of test items is shown below.
  • the voltage amplitude of the intermediate frequency signal fIF which is the output of the receiving unit 12 is within an allowable range of desired characteristics when the test signal ftest is input to the receiving unit 12.
  • the voltage amplitudes of the intermediate frequency signals fIF of the channels 12 (1) to 12 (4) are all within the allowable range of the desired characteristics. . -Is the frequency characteristic of the voltage amplitude of the intermediate frequency signal fIF within an allowable range of the desired frequency characteristic? That is, are the desired filter characteristics and cut-off frequency obtained?
  • the frequency synthesizer 6 is set according to the test item, and the local frequency signal LO used in the BIST is set (S3).
  • the frequency of the signal is set, and in the case of a radar modulation signal (FMCW), a modulation frequency range and a modulation period are set.
  • FMCW radar modulation signal
  • the receiving BIST circuit 13 is configured.
  • the low frequency signal generator 24 is set (S5).
  • the frequency band characteristic of the intermediate frequency band amplifier 23 can be self-tested by setting the frequency fIF of the low frequency signal to the same value as the frequency of the signal output from the mixer 21 of the receiving unit 12.
  • BIST is started (S6). That is, the control unit 3 determines whether or not the intermediate frequency signal or the reception signal obtained via the reception unit 12 satisfies a desired characteristic. If the determination result of this test is bad (S7, NO), it is determined whether or not improvement is possible by changing the setting parameter of each circuit block constituting the receiving unit 12 and whether or not the circuit adjustment is possible (S11). If adjustment is possible (YES), the parameter setting is changed (S14), and the process returns to step S2. As a result, not only the occurrence of a failure in the receiving unit 12 but also the millimeter wave signal receiving characteristics (gain, frequency) are determined, and the desired millimeter wave signal receiving characteristics can be obtained using the adjustment function of each circuit block of the receiving unit 12. Calibrate and adjust to obtain.
  • step S11 if circuit adjustment is not possible in step S11 (NO), the failure test item / condition and the test result are stored (S12), and it is determined whether the necessary test items are completed (S13). If the necessary test items are not completed (NO), the process returns to step S2.
  • step S7 if the test determination result is good (YES), the good test item / condition and the test result are stored (S8), and it is determined whether the required test item is completed (S9). ). If the necessary test items are not completed (NO), the process returns to step S2.
  • step S9 or S13 if the necessary test items are completed (YES), the reception BIST circuit 13 is turned off to end the reception BIST (S10) and return to the reception mode.
  • the low frequency signal generator 24 generates the low frequency signal fIF having a frequency lower than that of the local frequency signal fLO used for the conversion to the intermediate frequency signal, and the mixer 26
  • the test signal ftest is generated by mixing the low frequency signal fIF and a signal having the same frequency as the local frequency signal fLO.
  • the test signal ftest and the input part of the amplifier 20 that amplifies the received signal are coupled by a coupler 27, and the control unit 3 has an amplifier 20, a mixer 21, and an intermediate frequency band amplifier 23 using the test signal ftest. The operation of the receiving unit 13 is tested.
  • the signal converted and output by the mixer 21 has the frequency of the low-frequency signal fIF. That is, since a signal having a predetermined frequency fIF can be obtained during the test, it is possible to test the operation of the receiving unit 13 regardless of the frequency of the intermediate frequency signal converted by the mixer 21 in the normal communication operation. Become.
  • IC2 is replaced with IC32.
  • the IC 32 includes an A / D converter 34 at the output unit of the intermediate frequency band amplifier 23 in the receiving unit 33. Therefore, the control unit 35 can acquire the received signal as digital data from the IC 32 without incorporating an A / D converter.
  • the IC 32 in the system 31 of the second embodiment is replaced with an IC.
  • the IC 42 is configured by the reception BIST unit 43 in which the low frequency signal generator 24 is replaced with a programmable frequency divider 44.
  • the control unit 35 appropriately sets a frequency division ratio in the programmable frequency divider 44.
  • the receiving BIST unit 43 includes the programmable frequency divider 44, the frequency of the low frequency signal fIF can be arbitrarily changed.
  • the millimeter wave radar system 41 ⁇ / b> A of the fourth embodiment has a frequency synthesizer in which the clock signal input to the programmable frequency divider 44 in the system 41 of the third embodiment is changed to the reference clock signal fclk. 6 is a signal fLO / N output from 6. In this case, if an example of each frequency is the same as that shown in FIG. 2 of the first embodiment, the frequency division ratio set in the programmable frequency divider 44 may be (13/10000000).
  • the clock signal input to the programmable frequency divider 44 is changed to the signal fLO / N output from the frequency synthesizer 6 in place of the reference clock signal fclk, thereby generating a frequency higher than the reference clock signal fclk frequency. can do.
  • the IC 32 in the system 31 of the second embodiment is replaced with an IC 52.
  • the IC 52 is configured by a reception BIST unit 53 in which the low frequency signal generator 24 is replaced with a PLL frequency synthesizer 54.
  • the PLL frequency synthesizer 54 can set the low frequency signal fIF more flexibly.
  • the IC 32 in the system 31 of the second embodiment is replaced with an IC 62.
  • the reception BIST unit 63 switch circuits 64 (1) to 64 (4) are arranged between the mixer 26 and the reception channels 33 (1) to 33 (4).
  • the switch circuit 64 is configured by an analog switch or the like, for example, and the control unit 35 can control ON / OFF thereof via the circuit control register 65.
  • the switch circuit 64 corresponds to an output stop unit.
  • the isolation between (4) can be increased. For example, when the switch circuits 64 (1) to 64 (4) are not provided, the isolation between the reception channels 12 (1) to 12 (4) is almost determined by the coupling amount of the two couplers 27.
  • the switch circuit 64 may be connected in series to the line through which the test signal ftest is transmitted, as shown in FIG. 9, or connected in parallel to the ground via a DC cut capacitor and coupled.
  • the input terminal of the device 27 may be dropped to the ground level to prevent the input of the signal.
  • the IC 62 in the system 61 of the sixth embodiment is replaced with an IC 72.
  • the reception BIST unit 73 includes amplifiers 74 (1) to 74 (4) instead of the switch circuits 64 (1) to 64 (4).
  • the amplifier 74 is configured such that the control unit 35 can stop the amplification operation via the circuit control register 65, and corresponds to an output stop unit.
  • the amplifiers 74 (1) to 74 (4) By arranging the amplifiers 74 (1) to 74 (4) in this way, attenuation is caused by the loss of the connection line from the mixer 26 to each of the reception channels 33 (1) to 33 (4) and the loss of the coupler 27.
  • the test signal ftest can be amplified.
  • the control unit 35 turns off the amplifier 74 in the normal operation of the millimeter wave radar system 1 as in the sixth embodiment, so that the isolation between the reception channels 33 (1) to 33 (4) is achieved. Can be increased.
  • the IC 72 in the system 71 of the seventh embodiment is replaced with an IC 82.
  • the reception 83 includes a high-pass filter 84 between the mixer 21 and the intermediate frequency amplifier 23.
  • the IC 82 in the system 81 of the eighth embodiment is replaced with an IC 82A.
  • the IC 82A is different from the eighth embodiment only in the connection position of the amplifier 74 in the reception BIST unit 73A.
  • four amplifiers 74 (1) to 74 (4) are connected in series to the output terminal of the mixer 26, and correspond to the output terminals of the amplifiers 74 (1) to 74 (4).
  • the input terminals of the couplers 27 (1) to 27 (4) are connected to each other. According to 9th Embodiment comprised as mentioned above, the effect similar to 8th Embodiment is acquired.
  • the number of reception channels is not limited to “4”, but may be “3” or less or “5” or more, for example, 8 channels or 16 channels. Further, it is not always necessary to provide a plurality of reception channels. If “NO” is determined in the step S7, the step S14 may be executed as necessary.
  • the present invention is not limited to the direct conversion method and can be applied. Further, the present invention is not limited to the one applied to the in-vehicle millimeter wave radar system, but can be applied to any receiving device that performs down-conversion in the receiving system. What is necessary is just to change suitably the specific numerical value of a frequency according to an individual design.

Abstract

La présente invention concerne un dispositif de réception doté : d'un amplificateur (20) qui amplifie un signal reçu avec une antenne de réception (19) ; une unité de génération de signal de fréquence (5, 6, 22) qui génère un signal de fréquence locale ; une unité de conversion de fréquence (21) qui mélange le signal amplifié par l'amplificateur et le signal de fréquence locale, convertissant ceux-ci en un signal de fréquence intermédiaire ; un amplificateur de bande de fréquence intermédiaire (23) qui amplifie le signal de fréquence intermédiaire ; une unité de génération de signal de basse fréquence (24, 44, 54) qui génère un signal de basse fréquence dont la fréquence est inférieure au signal de fréquence locale ; une unité de génération de signal test (26) qui mélange le signal de basse fréquence et un signal de la même fréquence tel que le signal de fréquence locale en vue de générer un signal test ; des coupleurs (27) couplant l'unité d'entrée de l'amplificateur et le signal test ; et une unité de commande (3, 35) qui utilise le signal test en vue de tester le fonctionnement d'une unité de réception (12, 33, 83) comportant l'amplificateur, l'unité de conversion de fréquence et l'amplificateur de bande de fréquence intermédiaire.
PCT/JP2017/002727 2016-04-13 2017-01-26 Dispositif de réception WO2017179265A1 (fr)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
JP2016-080326 2016-04-13
JP2016080326A JP2017192018A (ja) 2016-04-13 2016-04-13 受信装置

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WO2017179265A1 true WO2017179265A1 (fr) 2017-10-19

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Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN108627810A (zh) * 2018-05-04 2018-10-09 吉林大学 智能汽车毫米波雷达硬件在环测试台架
JP2021110589A (ja) * 2020-01-08 2021-08-02 株式会社デンソー 自己診断装置
JP2021110588A (ja) * 2020-01-08 2021-08-02 株式会社デンソー 自己診断装置
US11237249B2 (en) 2018-01-22 2022-02-01 Mediatek Inc. Apparatus and method for applying frequency calibration to local oscillator signal derived from reference clock output of active oscillator that has no electromechanical resonator

Families Citing this family (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP7063004B2 (ja) * 2018-02-27 2022-05-09 株式会社デンソー 自己診断装置
JP7279580B2 (ja) * 2019-08-22 2023-05-23 株式会社デンソー 自己診断装置

Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2007096647A (ja) * 2005-09-28 2007-04-12 Hitachi Kokusai Electric Inc 受信機
JP2008228038A (ja) * 2007-03-14 2008-09-25 Renesas Technology Corp 半導体集積回路およびそのテスト方法
JP2008300900A (ja) * 2007-05-29 2008-12-11 Fujitsu Ltd オンライン診断方法及び装置

Patent Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2007096647A (ja) * 2005-09-28 2007-04-12 Hitachi Kokusai Electric Inc 受信機
JP2008228038A (ja) * 2007-03-14 2008-09-25 Renesas Technology Corp 半導体集積回路およびそのテスト方法
JP2008300900A (ja) * 2007-05-29 2008-12-11 Fujitsu Ltd オンライン診断方法及び装置

Cited By (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US11237249B2 (en) 2018-01-22 2022-02-01 Mediatek Inc. Apparatus and method for applying frequency calibration to local oscillator signal derived from reference clock output of active oscillator that has no electromechanical resonator
US11693089B2 (en) 2018-01-22 2023-07-04 Mediatek Inc. Apparatus and method for applying frequency calibration to local oscillator signal derived from reference clock output of active oscillator
CN108627810A (zh) * 2018-05-04 2018-10-09 吉林大学 智能汽车毫米波雷达硬件在环测试台架
CN108627810B (zh) * 2018-05-04 2023-05-05 吉林大学 智能汽车毫米波雷达硬件在环测试台架
JP2021110589A (ja) * 2020-01-08 2021-08-02 株式会社デンソー 自己診断装置
JP2021110588A (ja) * 2020-01-08 2021-08-02 株式会社デンソー 自己診断装置
JP7327168B2 (ja) 2020-01-08 2023-08-16 株式会社デンソー 自己診断装置
JP7327169B2 (ja) 2020-01-08 2023-08-16 株式会社デンソー 自己診断装置

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