IP Library › Granted Patent US 11,560,121
Granted Patent B2
US 11,560,121 · App. 16/811,230 · Granted Jan 24, 2023

Distance measurement device and distance measurement method

Inventors: Shoji Ootaka (Yokohama Kanagawa, JP); Tsuneo Suzuki (Kamakura Kanagawa, JP); Hiroshi Yoshida (Yokohama Kanagawa, JP); Masaki Nishikawa (Yokohama Kanagawa, JP); Katsuya Nonin (Kawasaki Kanagawa, JP); Takayuki Kato (Kawasaki Kanagawa, JP); Yoshiharu Nito (Yokohama Kanagawa, JP); Masayoshi Oshiro (Ota Tokyo, JP)
Assignees: KABUSHIKI KAISHA TOSHIBA; TOSHIBA ELECTRONIC DEVICES & STORAGE CORPORATION
B60R25/30B60R25/248G01S13/103
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Quick Facts
Patent No.
US 11,560,121
App. No.
16/811,230
Granted
Jan 24, 2023
Kind
B2
Abstract

A first device includes: a first reference signal source; a first transmitting/receiving unit which transmits two or more first carrier signals and receives two or more second carrier signals using an output of the first reference signal source; and a calculating unit. A second device includes: a second reference signal source configured to be operated independently from the first reference signal source; and a second transmitting/receiving unit configured to transmit two or more second carrier signals and receive two or more first carrier signals using an output of the second reference signal source. A frequency group of two or more first carrier signals and a frequency group of two or more second carrier signals differ from each other. The calculating unit calculates a distance between the first device and the second device based on a phase detection result obtained by receiving the first and second carrier signals.

Claims (40)

1. A distance measurement device which calculates a distance based on carrier phase detection, the distance measurement device comprising a calculating unit configured to calculate a distance between a first device and a second device, at least one of the first device and the second device being moveable based on phase information acquired from the first device and the second device, wherein

the first device includes:

a first reference signal source; and

a first transmitting/receiving unit configured to transmit two or more first carrier signals and receive two or more second carrier signals using an output of the first reference signal source,

the second device includes:

a second reference signal source configured to be operated independently from the first reference signal source; and

a second transmitting/receiving unit configured to transmit the two or more second carrier signals and receive the two or more first carrier signals using an output of the second reference signal source,

a frequency group of the two or more first carrier signals and a frequency group of the two or more second carrier signals differ from each other,

the calculating unit calculates the distance based on a phase detection result obtained by receiving the first and second carrier signals,

the first and second reference signal sources are continuously operated during a period in which the two or more first carrier signals and the two or more second carrier signals are transmitted and received by the first and second transmitting/receiving units, and

wherein when frequencies of the frequency group of the two or more first carrier signals are set to f 11 , f 12 , f 1 N from a lower side, frequencies of the frequency group of the two or more second carrier signals are set to f 21 , f 22 , f 2 N from a lower side, and signals of the frequencies f 2 i (i=1, N) are transmitted from the second device in response to transmission of signals of frequencies f 1 i (i=1, N) from the first device, assuming ΔfCH as an inter-channel frequency, frequencies of the respective carrier signals are set such that a relationship expressed by a following equation is established: |f 1 i −f 2 i |=k×ΔfCH (k=integer).

2. The distance measurement device according to claim 1 , wherein

the first transmitting/receiving unit has a first phase detector configured to detect respective phases of the two or more second carrier signals, and

the second transmitting/receiving unit has a second phase detector configured to detect respective phases of the two or more first carrier signals.

3. The distance measurement device according to claim 1 , wherein a transmitting unit of each of the first transmitting/receiving unit and the second transmitting/receiving unit is configured to directly modulate an output signal of a voltage-controlled oscillator, and a receiving unit of each of the first and the second transmitting/receiving units has a configuration of a heterodyne method or a Low-Intermediate Frequency (“IF”) method.

4. A distance measurement device which calculates a distance based on carrier phase detection, the distance measurement device comprising a calculating unit configured to calculate a distance between a first device and a second device, at least one of the first device and the second device being moveable based on phase information acquired from the first device and the second device, wherein

the first device includes:

a first reference signal source; and

a first transmitting/receiving unit configured to transmit two or more first carrier signals and receive two or more second carrier signals using an output of the first reference signal source,

the second device includes:

a second reference signal source configured to be operated independently from the first reference signal source; and

a second transmitting/receiving unit configured to transmit the two or more second carrier signals and receive the two or more first carrier signals using an output of the second reference signal source, a frequency group of the two or more first carrier signals and

a frequency group of the two or more second carrier signals differ from each other,

the calculating unit calculates the distance based on a phase detection result obtained by receiving the first and second carrier signals, and

the first and second reference signal sources are continuously operated during a period in which the two or more first carrier signals and the two or more second carrier signals are transmitted and received by the first and second transmitting/receiving units, wherein

when a local oscillation frequency of the first reference signal source is higher than a signal frequency of the received second carrier signal in the first device, a local oscillation frequency of the second reference signal source is lower than a signal frequency of the received first carrier signal in the second device, and

when a local oscillation frequency of the first reference signal source is lower than a signal frequency of the received second carrier signal in the first device, a local oscillation frequency of the second reference signal source is higher than a signal frequency of the received first carrier signal in the second device.

5. A distance measurement device which calculates a distance based on carrier phase detection, the distance measurement device comprising a calculating unit configured to calculate a distance between a first device and a second device, at least one of the first device and the second device being moveable based on phase information acquired from the first device and the second device, wherein

the first device includes:

a first reference signal source; and

a first transmitting/receiving unit configured to transmit two or more first carrier signals and receive two or more second carrier signals using an output of the first reference signal source,

the second device includes:

a second reference signal source configured to be operated independently from the first reference signal source; and

a second transmitting/receiving unit configured to transmit the two or more second carrier signals and receive the two or more first carrier signals using an output of the second reference signal source,

a frequency group of the two or more first carrier signals and a frequency group of the two or more second carrier signals differ from each other,

the calculating unit calculates the distance based on a phase detection result obtained by receiving the first and second carrier signals, and

the first and second reference signal sources are continuously operated during a period in which the two or more first carrier signals and the two or more second carrier signals are transmitted and received by the first and second transmitting/receiving units, wherein

a transmission circuit of each of the first transmitting/receiving unit and the second transmitting/receiving unit is configured to directly modulate a voltage-controlled oscillator, and

a reception circuit of each of the first transmitting/receiving unit and the second transmitting/receiving unit has a configuration of a heterodyne method or a Low-Intermediate Frequency (“IF”) method, the reception circuit including an RF mixer, a carrier sense mixer, a carrier-sense use frequency divider, and an IF mixer, and

an operation of the carrier sense mixer and an operation of the carrier-sense use frequency divider are stopped when distance measurement is performed.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 6, 2020
From: OOTAKA, SHOJI; SUZUKI, TSUNEO; YOSHIDA, HIROSHI; NISHIKAWA, MASAKI; NONIN, KATSUYA; KATO, TAKAYUKI; NITO, YOSHIHARU; OSHIRO, MASAYOSHI
To: KABUSHIKI KAISHA TOSHIBA; TOSHIBA ELECTRONIC DEVICES & STORAGE CORPORATION
Reel/Frame 053124/0664 →
Priority Claims (1)
JP JP2019-169722 · Sep 18, 2019 · national
Continuity (1)
Related Publication 20210078537A1 · Mar 18, 2021
Cited By (1)
US 12,730,213