IP Library Granted Patent US 12,467,786
Granted Patent B2
US 12,467,786 · App. 18/341,902 · Granted Nov 11, 2025

Measurement device, synthesized light applying method, optical measuring method, service providing system, and service providing method

Inventors: Yuki Endo (Machida, JP); Hideo Ando (Machida, JP); Satoshi Hayata (Machida, JP)
Assignee: JAPAN CELL CO., LTD.
G01J3/10G01N21/27G01N21/41G01J3/0218G01N21/64
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Quick Facts
Patent No.
US 12,467,786
App. No.
18/341,902
Granted
Nov 11, 2025
Kind
B2
Abstract

According to one embodiment of a method of generating synthesized light, a light emitter emits a first light element and a second light element, the synthesized light includes the first light element and the second light element, the first light element passing through a first optical path propagates toward a first direction, the second light element passing through a second optical path propagates toward a second direction, the first optical path has a first optical path length, the second optical path has a second optical path length, the first optical path length is different from the second optical path length, and the first direction is different from the second direction.

Claims (90)

1 . A measurement device, comprising:

a light modulation controller which uses a modulation signal;

a light source including a modulation light emitter, an optical characteristic converter, and an optical synthesizer,

wherein:

the modulation light emitter emits initial modulation light,

the optical characteristic converter divides the initial modulation light into a first light beam and a second light beam,

the optical characteristic converter makes an optical path length difference between the first light beam and the second light beam larger than a coherence length,

the optical synthesizer synthesizes the first light beam and the second light beam having the optical path length difference larger than the coherence length to form synthesized modulation light,

the light source irradiates the synthesized modulation light to a measured object, and

light intensity of the synthesized modulation light changes according to the modulation signal;

the measurement device further comprising:

a measurer receiving the synthesized modulation light obtained from the measured object to generate a time-dependent signal; and

a signal receptor collecting the time-dependent signal,

wherein:

the time-dependent signal is synchronized with the modulation signal, and

the modulation signal has a timing shift compared with the collection timing of the time-dependent signal in the signal receptor.

2 . A method of applying synthesized modulation light, comprising:

emitting the synthesized modulation light to irradiate to a measured object;

receiving the synthesized modulation light obtained from the measured object to generate a time-dependent signal;

collecting the time-dependent signal; and

emitting, by a modulation light emitter, initial modulation light,

wherein:

the initial modulation light is divided into a first light beam and a second light beam,

the first light beam passes through a first optical path,

the second light beam passes through a second optical path,

the first optical path has a first optical path length,

the second optical path has a second optical path length,

an optical path length difference between the first optical path length and the second optical path length is larger than a coherence length,

the synthesized modulation light includes the first light beam and the second light beam having the optical length difference larger than the coherence length,

light intensity of the synthesized modulation light changes according to a modulation signal,

the time-dependent signal is synchronized with the modulation signal, and

the modulation signal has a timing shift compared with the collection timing of the time-dependent signal.

3 . An optical measuring method, comprising:

irradiating a measured object with synthesized light;

detecting the synthesized light obtained from the measured object to generate time-dependent signals;

extracting a prescribed time-dependent signal from the time-dependent signals;

generating first extracted information from the prescribed time-dependent signal;

generating second extracted information from the time-dependent signals in accordance with a frequency and a phase of the first extracted information; and

emitting initial light by a light emitter,

wherein:

the initial light is divided into a first light beam and a second light beam,

the first light beam passes through a first optical path,

the second light beam passes through a second optical path,

the first optical path has a first optical path length,

the second optical path has a second optical path length,

an optical path length difference between the first optical path length and the second optical path length is larger than a coherence length,

the synthesized light includes the first light beam and the second light beam having the optical path length difference larger than the coherence length.

4 . A measurement device, comprising:

a light source including a light emitter, an optical characteristic converter, and an optical synthesizer,

wherein:

the light emitter emits initial light,

the optical characteristic converter divides the initial light into a first light beam and a second light beam,

the optical characteristic converter makes an optical path length difference between the first light beam and the second light beam larger than a coherence length,

the optical synthesizer synthesizes the first light beam and the second light beam having the optical path length difference larger than the Coherence length to form synthesized light, and

the light source irradiates the synthesized light to a measured object,

the measurement device further comprising:

a measurer to receive the synthesized light obtained from the measured object to generate time-dependent signals;

a signal receptor to receive the time-dependent signals to extract a prescribed time-dependent signal; and

a signal processor to generate first extracted information from the prescribed time-dependent signal,

wherein the signal processor generates second extracted information from the time-dependent signals in accordance with a frequency and a phase of the first extracted information.

5 . A service providing system, comprising:

a system controller;

a light modulation controller which uses a modulation signal;

a light source including a modulation light emitter, an optical characteristic converter, and an optical synthesizer,

wherein:

the modulation light emitter emits initial modulation light,

the optical characteristic converter divides the initial modulation light into a first light beam and a second light beam,

the optical characteristic converter makes an optical path length difference between the first light beam and the second light beam larger than a coherence length,

the optical synthesizer synthesizes the first light beam and the second light beam having the optical path length difference larger than the Coherence length to form synthesized modulation light,

the light source irradiates the synthesized modulation light to a measured object, and

a light intensity of the synthesized modulation light changes according to the modulation signal,

the service providing system further comprising:

a measurer to receive the synthesized modulation light obtained from the measured object to generate a time-dependent signal; and

a signal receptor to collect the time-dependent signal,

wherein:

the time-dependent signal is synchronized with the modulation signal,

the modulation signal has a timing shift compared with the collection timing the time-dependent signal in the signal receptor, and

the system controller provides a user with a service based on the collected time-dependent signal.

6 . A service providing method comprising:

emitting initial modulation light;

dividing the initial modulation light into a first light beam and a second light beam;

making an optical path length difference between the first light beam and the second light beam larger than a coherence length;

synthesizing the first light beam and the second light beam having the optical path length difference larger than the coherence length to form synthesized modulation light;

irradiating the synthesized modulation light to a measured object, a light intensity of the synthesized modulation light changes according to a modulation signal;

receiving the synthesized modulation light obtained from the measured object to generate a time-dependent signal;

collecting the time-dependent signal; and

providing a user with a service based on the collected time-dependent signal,

wherein:

the time-dependent signal is synchronized with the modulation signal, and

the modulation signal has a timing shift compared with the collection timing of the time-dependent signal.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 27, 2023
From: ENDO, YUKI; ANDO, HIDEO; HAYATA, SATOSHI
To: JAPAN CELL CO., LTD.
Reel/Frame 064075/0743 →
Priority Claims (1)
WO PCT/JP2021/006685 · Feb 22, 2021 · international
Continuity (2)
Continuation PCTJP2022001156 · Jan 14, 2022
Related Publication 20230341263A1 · Oct 26, 2023
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