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Patent · US10753866B2 · B2 · US

Terahertz measuring apparatus and terahertz measurement method for measuring a test object by means of a time-of-flight measurement

(11) Publication number
US10753866B2
(21) Application number
16/310,016
(22) Filing date
2017-06-16
(30) Priority date
2016-06-16
(43) Publication date
2020-08-25
(45) Date of grant
2020-08-25
(51) IPC
G01B 11/06; G01N 21/3581; G01N 21/952
(52) CPC
  • G01N Investigating or analysing materials by determining their chemical or physical properties: 21/3581, 21/952
  • G01B Measuring length, thickness or similar linear dimensions; measuring angles; measuring areas; measuring irregularities of surfaces or contours: 11/06
(73) Assignee
INOEX GmbH INNOVATIONEN und AUSRUESTUNGEN fur DIE EXTRUSIONSTECHNIK
(72) Inventors
Ralph Klose
(54) Title
Terahertz measuring apparatus and terahertz measurement method for measuring a test object by means of a time-of-flight measurement
(57) Abstract

The invention relates to a terahertz measuring apparatus (1) for measuring a test object (2) by means of a run-time measurement while determining at least one distance (d 1, d 2, d 3, d 4), said terahertz measuring apparatus (1) comprising: a terahertz transmitter and receiver unit (3) for emitting terahertz radiation (5) and detecting the terahertz radiation reflected by the test object (2), and an evaluation unit (12) for determining a run-time of the terahertz radiation and at least one distance of the test object (2), Hereby, it is provided, that at least one, preferably several passive terahertz receiver devices (4) are provided the optical axes (C- 4) of which are arranged shifted or angled in relation to the optical axis (C- 3) of the terahertz transmitter and receiver unit (3) and detect a second reflected terahertz radiation (6 b) emitted by the terahertz transmitter and receiver unit (3) and reflected on the test object (2), a data connection (10) for synchronising the terahertz transmitter and receiver unit (3) and the at least one passive terahertz receiver unit (4) by means of a synchronising signal (S 1) is provided, with the evaluation unit (12) or the terahertz receiver unit (4) determining a second run-time (Δt 3, Δt 4) and a second distance from the second reflected terahertz radiation (6 b) and the synchronising signal (S 1).

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Claims (18)

  1. A terahertz measuring apparatus (1) for measuring a test object (2) by means of a run-time measurement while determining at least one distance (d 1, d 2, d 3, d 4), said terahertz measuring apparatus (1) comprising: a terahertz transmitter and receiver unit (3) for emitting terahertz radiation (5) and detecting the terahertz radiation (6 a) reflected from said test object (2), an evaluation unit (12) for determining a run-time (Δt) of the terahertz radiation and at least one distance (d 1, d 2, d 3, d 4) of said test object (2) from the determined run-time (Δt), wherein at least one passive terahertz receiver device (4) is provided, the optical axis (C- 4) of which is arranged shifted or angled in relation to the optical axis (C- 3) of said terahertz transmitter and receiver unit (3) and a second terahertz radiation (6 b) emitted from said terahertz transmitter and receiver unit (3) and reflected on said test object (2) is detected, a data connection (10) is provided for synchronising said terahertz transmitter and receiver unit (3) and the at least one passive terahertz receiver unit (4) by means of a synchronising signal (S 1), said evaluation unit (12) or said terahertz receiver unit (4) determining a second run-time (Δt 3, Δt 4) and a second distance from said second reflected terahertz radiation (6 b) and said synchronising signal (S 1), whereby several passive terahertz receiver units (4) are being arranged around a measuring region for said test object (2).
  2. The terahertz measuring apparatus (1) according to claim 1, wherein said evaluation unit (12) or said passive terahertz receiver device (4) utilizing store geometric data or distance date relating to the arrangement of said terahertz transmitter and receiver unit (3) and said passive terahertz receiver units (4) for determining said second distance.
  3. The terahertz measuring apparatus (1) according to claim 1, wherein the several passive terahertz receiver units (4) are arranged around the measuring region for said test object, for the purpose of measuring the entire perimeter of said test object (2).
  4. The terahertz measuring apparatus (1) according to claim 1, wherein said terahertz transmitter and receiver unit (3) and said several passive terahertz receiver units (4) are arranged in a circular manner, for example, forming a semi-circle, about a symmetry axis (A) and their optical axes (C- 3, C- 4) run through said symmetry axis (A) or intersect in the symmetry axis (A), in particular, in a common plane.
  5. The terahertz measuring apparatus (1) according to claim 1, wherein said passive terahertz receiver units (4) pick up terahertz radiation which has been reflected not on proper boundary surfaces reflected, and said evaluation unit (12) or die terahertz receiver unit determines measuring peaks in the signal amplitudes (S 4) of said passive terahertz receiver units (4) that do not correspond to the proper boundary surfaces as impurities, in particular, while determining the position and/or shape and/or size of the impurities.
  6. The terahertz measuring apparatus (1) according to claim 1, wherein said data connection (10) runs between said units (3, 4) or from a central evaluation unit (12) to said units (3, 4).
  7. The terahertz measuring apparatus (1) according to claim 6, wherein said data connection (10) runs always between two adjacent units (3, 4; 4, 4), for example as a bus system.
  8. The terahertz measuring apparatus (1) according to claim 1, wherein the emitting terahertz transmitter and receiver unit (3) puts out said synchronising signal (S 1), for example as a trigger signal for specifying the time of transmission (t 0) or as an analogue saw tooth signal, said passive terahertz receiver units (4) determining the time of transmission (t 0) from said synchronization signal (S 1).
  9. The terahertz measuring apparatus (1) according to claim 1, wherein said terahertz transmitter and receiver unit (3) is designed as master unit and said at least one passive terahertz receiver unit (4) as slave unit.
  10. The terahertz measuring apparatus (1) according to claim 1, wherein said terahertz transmitter and receiver unit (3) emits terahertz radiation in a frequency range between 0.01 and 10 THz, in particular 100 GHz and 3 THz, in particular, fully electronically by means of a dipole.
  11. A terahertz measuring method for measuring a test object (2), in particular, a pipe (2), wherein a terahertz transmitter and receiver unit (3) emits terahertz radiation (6 a) along its optical axis (C- 3) and detects terahertz radiation (6 a) reflected from said test object (2), whereby at least one time difference (Δt) is determined from a run-time measurement wherein a distance (d 1, d 2, d 3, d 4) is determined, from the time difference (Δt), further, at least one passive terahertz receiver unit (4), the optical axis (C- 4) of which is arranged shifted or angled in relation to the optical axis (C- 3) of said terahertz transmitter and receiver unit (3), receives second terahertz radiation (6 b) emitted by said terahertz transmitter and receiver unit (3) and reflected on said test object (2) and determines at least one second distance from this, whereby a synchronising signal (S 1) for specifying the time of transmission (t 0) is utilized for determining said second distance whereby several passive terahertz receiver units (4) are being arranged around a measuring region for said test object (2).
  12. The terahertz measuring method according to claim 11, wherein said synchronising signal (S 1) is transmitted by said terahertz transmitter and receiver unit (3) to said terahertz receiver unit (4).
  13. The terahertz measuring method according to claim 12, wherein said terahertz transmitter and receiver unit (3) puts out said synchronising signal (S 1) to said several terahertz receiver units (4) each for specifying the time of transmission (t 0), and said terahertz receiver unit (4) determines, from the time of transmission (t 0) and from the signal amplitude (S 4) of the second reflected radiation, run-times (Δt 3, Δt 4) and, from these, geometric distances using stored date relating to a geometric arrangement, in particular, a distance and/or angle of the optical axes (C- 3, C- 4) of said terahertz transmitter and receiver unit (3) and said terahertz receiver unit (4) in relation to each other.
  14. The terahertz measuring method according to claim 11, wherein at least two, in particular, more than two terahertz transmitter and receiver units (3) are synchronised with each other, whereby, successively, terahertz-measurements are carried out in which always one of said terahertz transmitter and receiver units (3) actively emits terahertz radiation (5) and the other terahertz transmitter and receiver units, as passive terahertz receiver units (4), measure reflected radiation, and, subsequently, another of said terahertz transmitter and receiver units (3) emits terahertz radiation (5) and the at least one other terahertz transmitter and receiver unit detects as passive terahertz receiver unit (4).
  15. The terahertz measuring method according to claim 11, wherein distances to boundary surfaces or between boundary surfaces of said test object (2) are determined from the measurements of said first and/or second reflected terahertz radiation (6 a, 6 b) and, further, additionally, distances of impurities in or on said test object (2) are determined from the detected second terahertz radiation (6 b), in particular, from reflected terahertz radiation which has been reflected not on proper boundary surfaces of said test object.
  16. The terahertz measuring method according to claim 15, wherein said terahertz receiver units (4) each determine a position point set of one or more impurities (10, 110), and a position and/or size and/or shape of the individual impurities (10, 110) is determined from the several position point sets.
  17. The terahertz measuring method according to claim 11, wherein the run-time measurement are carried out as measurements in the time domain, e.g. using pulsed terahertz radiation, or as measurements in the time frequency domain, e.g. using frequency modulation.
  18. The terahertz measuring method according to claim 11, wherein a pipe is measured as the test object (2) which is being conveyed perpendicularly to a detection determined by the terahertz radiation, in particular, continuously in a continuous process, with said pipe (2) being measured in its entire perimeter.

Description

The invention relates to a Terahertz measuring apparatus and a terahertz measuring method, for measuring a test object by means of a run-time measurement.

In such measuring devices and measuring methods terahertz radiation is emitted from a terahertz transmitter and receiver unit along an optical axis onto a test object, and the radiation reflected back from the test object is detected again by the terahertz transmitter and receiver unit whereby the run-time of the radiation can be determined. Hereby, for example, pulsed radiation can be transmitted and the run-time of the pulses can be measured, or it is possible to transmit frequency modulated radiation with a measurement in the frequency domain, whereby such measuring methods technically correlate with each other or, respectively, can be described as a Fourier transformation in relation to each other. Thus test objects may be measured that are transparent to terahertz radiation, in particular plastics, but also stone materials such as earthenware, porcelain, ceramics, and e.g. paper.

The terahertz radiation is partially reflected an boundary surfaces between materials with differing refraction index, for example, air having a refraction index of n0=1, and plastics materials having a refraction index of, for example, about 1.5, so that the radiation reflected perpendicularly on a boundary surface and along the optical axis back to the terahertz transmitter and receiver unit can be detected.

Citations (3)

  • US20070235658A1
  • WO2015073807A1
  • US20150219571A1
Record as JSON
{
  "publication_number": "US10753866B2",
  "country": "US",
  "kind": "B2",
  "title": "Terahertz measuring apparatus and terahertz measurement method for measuring a test object by means of a time-of-flight measurement",
  "abstract": "The invention relates to a terahertz measuring apparatus (1) for measuring a test object (2) by means of a run-time measurement while determining at least one distance (d 1, d 2, d 3, d 4), said terahertz measuring apparatus (1) comprising: a terahertz transmitter and receiver unit (3) for emitting terahertz radiation (5) and detecting the terahertz radiation reflected by the test object (2), and an evaluation unit (12) for determining a run-time of the terahertz radiation and at least one distance of the test object (2), Hereby, it is provided, that at least one, preferably several passive terahertz receiver devices (4) are provided the optical axes (C- 4) of which are arranged shifted or angled in relation to the optical axis (C- 3) of the terahertz transmitter and receiver unit (3) and detect a second reflected terahertz radiation (6 b) emitted by the terahertz transmitter and receiver unit (3) and reflected on the test object (2), a data connection (10) for synchronising the terahertz transmitter and receiver unit (3) and the at least one passive terahertz receiver unit (4) by means of a synchronising signal (S 1) is provided, with the evaluation unit (12) or the terahertz receiver unit (4) determining a second run-time (Δt 3, Δt 4) and a second distance from the second reflected terahertz radiation (6 b) and the synchronising signal (S 1).",
  "claims": [
    "1. A terahertz measuring apparatus (1) for measuring a test object (2) by means of a run-time measurement while determining at least one distance (d 1, d 2, d 3, d 4), said terahertz measuring apparatus (1) comprising: a terahertz transmitter and receiver unit (3) for emitting terahertz radiation (5) and detecting the terahertz radiation (6 a) reflected from said test object (2), an evaluation unit (12) for determining a run-time (Δt) of the terahertz radiation and at least one distance (d 1, d 2, d 3, d 4) of said test object (2) from the determined run-time (Δt), wherein at least one passive terahertz receiver device (4) is provided, the optical axis (C- 4) of which is arranged shifted or angled in relation to the optical axis (C- 3) of said terahertz transmitter and receiver unit (3) and a second terahertz radiation (6 b) emitted from said terahertz transmitter and receiver unit (3) and reflected on said test object (2) is detected, a data connection (10) is provided for synchronising said terahertz transmitter and receiver unit (3) and the at least one passive terahertz receiver unit (4) by means of a synchronising signal (S 1), said evaluation unit (12) or said terahertz receiver unit (4) determining a second run-time (Δt 3, Δt 4) and a second distance from said second reflected terahertz radiation (6 b) and said synchronising signal (S 1), whereby several passive terahertz receiver units (4) are being arranged around a measuring region for said test object (2).",
    "2. The terahertz measuring apparatus (1) according to claim 1, wherein said evaluation unit (12) or said passive terahertz receiver device (4) utilizing store geometric data or distance date relating to the arrangement of said terahertz transmitter and receiver unit (3) and said passive terahertz receiver units (4) for determining said second distance.",
    "3. The terahertz measuring apparatus (1) according to claim 1, wherein the several passive terahertz receiver units (4) are arranged around the measuring region for said test object, for the purpose of measuring the entire perimeter of said test object (2).",
    "4. The terahertz measuring apparatus (1) according to claim 1, wherein said terahertz transmitter and receiver unit (3) and said several passive terahertz receiver units (4) are arranged in a circular manner, for example, forming a semi-circle, about a symmetry axis (A) and their optical axes (C- 3, C- 4) run through said symmetry axis (A) or intersect in the symmetry axis (A), in particular, in a common plane.",
    "5. The terahertz measuring apparatus (1) according to claim 1, wherein said passive terahertz receiver units (4) pick up terahertz radiation which has been reflected not on proper boundary surfaces reflected, and said evaluation unit (12) or die terahertz receiver unit determines measuring peaks in the signal amplitudes (S 4) of said passive terahertz receiver units (4) that do not correspond to the proper boundary surfaces as impurities, in particular, while determining the position and/or shape and/or size of the impurities.",
    "6. The terahertz measuring apparatus (1) according to claim 1, wherein said data connection (10) runs between said units (3, 4) or from a central evaluation unit (12) to said units (3, 4).",
    "7. The terahertz measuring apparatus (1) according to claim 6, wherein said data connection (10) runs always between two adjacent units (3, 4; 4, 4), for example as a bus system.",
    "8. The terahertz measuring apparatus (1) according to claim 1, wherein the emitting terahertz transmitter and receiver unit (3) puts out said synchronising signal (S 1), for example as a trigger signal for specifying the time of transmission (t 0) or as an analogue saw tooth signal, said passive terahertz receiver units (4) determining the time of transmission (t 0) from said synchronization signal (S 1).",
    "9. The terahertz measuring apparatus (1) according to claim 1, wherein said terahertz transmitter and receiver unit (3) is designed as master unit and said at least one passive terahertz receiver unit (4) as slave unit.",
    "10. The terahertz measuring apparatus (1) according to claim 1, wherein said terahertz transmitter and receiver unit (3) emits terahertz radiation in a frequency range between 0.01 and 10 THz, in particular 100 GHz and 3 THz, in particular, fully electronically by means of a dipole.",
    "11. A terahertz measuring method for measuring a test object (2), in particular, a pipe (2), wherein a terahertz transmitter and receiver unit (3) emits terahertz radiation (6 a) along its optical axis (C- 3) and detects terahertz radiation (6 a) reflected from said test object (2), whereby at least one time difference (Δt) is determined from a run-time measurement wherein a distance (d 1, d 2, d 3, d 4) is determined, from the time difference (Δt), further, at least one passive terahertz receiver unit (4), the optical axis (C- 4) of which is arranged shifted or angled in relation to the optical axis (C- 3) of said terahertz transmitter and receiver unit (3), receives second terahertz radiation (6 b) emitted by said terahertz transmitter and receiver unit (3) and reflected on said test object (2) and determines at least one second distance from this, whereby a synchronising signal (S 1) for specifying the time of transmission (t 0) is utilized for determining said second distance whereby several passive terahertz receiver units (4) are being arranged around a measuring region for said test object (2).",
    "12. The terahertz measuring method according to claim 11, wherein said synchronising signal (S 1) is transmitted by said terahertz transmitter and receiver unit (3) to said terahertz receiver unit (4).",
    "13. The terahertz measuring method according to claim 12, wherein said terahertz transmitter and receiver unit (3) puts out said synchronising signal (S 1) to said several terahertz receiver units (4) each for specifying the time of transmission (t 0), and said terahertz receiver unit (4) determines, from the time of transmission (t 0) and from the signal amplitude (S 4) of the second reflected radiation, run-times (Δt 3, Δt 4) and, from these, geometric distances using stored date relating to a geometric arrangement, in particular, a distance and/or angle of the optical axes (C- 3, C- 4) of said terahertz transmitter and receiver unit (3) and said terahertz receiver unit (4) in relation to each other.",
    "14. The terahertz measuring method according to claim 11, wherein at least two, in particular, more than two terahertz transmitter and receiver units (3) are synchronised with each other, whereby, successively, terahertz-measurements are carried out in which always one of said terahertz transmitter and receiver units (3) actively emits terahertz radiation (5) and the other terahertz transmitter and receiver units, as passive terahertz receiver units (4), measure reflected radiation, and, subsequently, another of said terahertz transmitter and receiver units (3) emits terahertz radiation (5) and the at least one other terahertz transmitter and receiver unit detects as passive terahertz receiver unit (4).",
    "15. The terahertz measuring method according to claim 11, wherein distances to boundary surfaces or between boundary surfaces of said test object (2) are determined from the measurements of said first and/or second reflected terahertz radiation (6 a, 6 b) and, further, additionally, distances of impurities in or on said test object (2) are determined from the detected second terahertz radiation (6 b), in particular, from reflected terahertz radiation which has been reflected not on proper boundary surfaces of said test object.",
    "16. The terahertz measuring method according to claim 15, wherein said terahertz receiver units (4) each determine a position point set of one or more impurities (10, 110), and a position and/or size and/or shape of the individual impurities (10, 110) is determined from the several position point sets.",
    "17. The terahertz measuring method according to claim 11, wherein the run-time measurement are carried out as measurements in the time domain, e.g. using pulsed terahertz radiation, or as measurements in the time frequency domain, e.g. using frequency modulation.",
    "18. The terahertz measuring method according to claim 11, wherein a pipe is measured as the test object (2) which is being conveyed perpendicularly to a detection determined by the terahertz radiation, in particular, continuously in a continuous process, with said pipe (2) being measured in its entire perimeter."
  ],
  "description_excerpt": "The invention relates to a Terahertz measuring apparatus and a terahertz measuring method, for measuring a test object by means of a run-time measurement.\n\nIn such measuring devices and measuring methods terahertz radiation is emitted from a terahertz transmitter and receiver unit along an optical axis onto a test object, and the radiation reflected back from the test object is detected again by the terahertz transmitter and receiver unit whereby the run-time of the radiation can be determined. Hereby, for example, pulsed radiation can be transmitted and the run-time of the pulses can be measured, or it is possible to transmit frequency modulated radiation with a measurement in the frequency domain, whereby such measuring methods technically correlate with each other or, respectively, can be described as a Fourier transformation in relation to each other. Thus test objects may be measured that are transparent to terahertz radiation, in particular plastics, but also stone materials such as earthenware, porcelain, ceramics, and e.g. paper.\n\nThe terahertz radiation is partially reflected an boundary surfaces between materials with differing refraction index, for example, air having a refraction index of n0=1, and plastics materials having a refraction index of, for example, about 1.5, so that the radiation reflected perpendicularly on a boundary surface and along the optical axis back to the terahertz transmitter and receiver unit can be detected.",
  "cpc": [
    "G01N 21/3581",
    "G01B 11/06",
    "G01N 21/952"
  ],
  "ipc": [
    "G01B 11/06",
    "G01N 21/3581",
    "G01N 21/952"
  ],
  "assignees": [
    "INOEX GmbH INNOVATIONEN und AUSRUESTUNGEN fur DIE EXTRUSIONSTECHNIK"
  ],
  "inventors": [
    "Ralph Klose"
  ],
  "filing_date": "2017-06-16",
  "publication_date": "2020-08-25",
  "grant_date": "2020-08-25",
  "priority_date": "2016-06-16",
  "application_number": "US-201716310016-A",
  "family_id": "59350584",
  "cited_by_count": 13,
  "citations": [
    "US20070235658A1",
    "WO2015073807A1",
    "US20150219571A1"
  ]
}

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