AU580119B2 - Airborne measurement of ocean optical scattering coefficient - Google Patents

Airborne measurement of ocean optical scattering coefficient

Info

Publication number
AU580119B2
AU580119B2 AU50905/85A AU5090585A AU580119B2 AU 580119 B2 AU580119 B2 AU 580119B2 AU 50905/85 A AU50905/85 A AU 50905/85A AU 5090585 A AU5090585 A AU 5090585A AU 580119 B2 AU580119 B2 AU 580119B2
Authority
AU
Australia
Prior art keywords
ocean
view
field
efficient
platform
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Expired
Application number
AU50905/85A
Other versions
AU5090585A (en
Inventor
Brian Billard
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Commonwealth of Australia
Original Assignee
Commonwealth of Australia
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Commonwealth of Australia filed Critical Commonwealth of Australia
Priority to AU50905/85A priority Critical patent/AU580119B2/en
Publication of AU5090585A publication Critical patent/AU5090585A/en
Application granted granted Critical
Publication of AU580119B2 publication Critical patent/AU580119B2/en
Anticipated expiration legal-status Critical
Expired legal-status Critical Current

Links

Classifications

    • GPHYSICS
    • G01MEASURING; TESTING
    • G01SRADIO DIRECTION-FINDING; RADIO NAVIGATION; DETERMINING DISTANCE OR VELOCITY BY USE OF RADIO WAVES; LOCATING OR PRESENCE-DETECTING BY USE OF THE REFLECTION OR RERADIATION OF RADIO WAVES; ANALOGOUS ARRANGEMENTS USING OTHER WAVES
    • G01S17/00Systems using the reflection or reradiation of electromagnetic waves other than radio waves, e.g. lidar systems
    • G01S17/88Lidar systems specially adapted for specific applications
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01NINVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
    • G01N21/00Investigating or analysing materials by the use of optical means, i.e. using sub-millimetre waves, infrared, visible or ultraviolet light
    • G01N21/17Systems in which incident light is modified in accordance with the properties of the material investigated
    • G01N21/47Scattering, i.e. diffuse reflection
    • G01N21/49Scattering, i.e. diffuse reflection within a body or fluid
    • G01N21/53Scattering, i.e. diffuse reflection within a body or fluid within a flowing fluid, e.g. smoke
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01NINVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
    • G01N21/00Investigating or analysing materials by the use of optical means, i.e. using sub-millimetre waves, infrared, visible or ultraviolet light
    • G01N21/17Systems in which incident light is modified in accordance with the properties of the material investigated
    • G01N2021/1793Remote sensing
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01NINVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
    • G01N21/00Investigating or analysing materials by the use of optical means, i.e. using sub-millimetre waves, infrared, visible or ultraviolet light
    • G01N21/17Systems in which incident light is modified in accordance with the properties of the material investigated
    • G01N21/47Scattering, i.e. diffuse reflection
    • G01N2021/4704Angular selective
    • G01N2021/4709Backscatter

Landscapes

  • Physics & Mathematics (AREA)
  • General Physics & Mathematics (AREA)
  • Engineering & Computer Science (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • Analytical Chemistry (AREA)
  • Radar, Positioning & Navigation (AREA)
  • Remote Sensing (AREA)
  • Health & Medical Sciences (AREA)
  • Computer Networks & Wireless Communication (AREA)
  • Chemical & Material Sciences (AREA)
  • Electromagnetism (AREA)
  • Biochemistry (AREA)
  • General Health & Medical Sciences (AREA)
  • Immunology (AREA)
  • Pathology (AREA)
  • Investigating Or Analysing Materials By Optical Means (AREA)
  • Investigating Or Analysing Materials By The Use Of Chemical Reactions (AREA)

Description

AIRBORNE MEASUREMENT OF OCEAN OPTICAL SCATTERING COEFFICIENT
This invention relates to a method and means for measuring the optical scattering coefficient of the ocean by means of a laser beam used from a platform for measuring ocean depth.
5. The development of a system for laser hydrography that has sufficient accuracy to meet the standard require¬ ments of the international hydrographic community must incorporate an allowance for the variation (mostly elongation) of the effective path length of the laser 10. beam as it passes through the sea. The variation arises as light photons interact with particles and other scattering centres within the body of the ocean, and are either absorbed or scattered in a possibly different direction to the direction of incidence.
15. The effective net path variation, as viewed by an airborne receiver, will depend on sea depth, the scan angle at which the laser pulse is fired relative to the local vertical, the concentration and nature of hydrosols within the ocean causing scattering of
20. the laser beam, as well as a number of other factors.
This general field was described in the specification of a Patent Application filed under the Patent Cooperation Treaty, International Publication Number WO 82/01075 which related to Ocean Depth sounding from the air by
25. laser beam which used a red and green laser beam and received reflected signals back by means of a pair of telescopes, one receiving the infrared signal and the other the green signal. The work which resulted in the Application was undertaken by what is known as the
30. WRELADS group of the Defence Department of the Commonwealth of Australia. Analysis of the large bank of data collected by the WRELADS laser hydrographic system shows that con¬ sideration of sea depth and scan angle are not sufficient to meet accuracy requirements, and that account must 5. be taken of temporal as well as geographic variations in sea turbidity.
Sea turbidity can be characterised by what is commonly referred to as the inherent optical properties. These are the absorption coefficient "a", the scattering co- 10. efficient "b", and the volume scattering function (β(θ), where θ is the angle of scattered photon to it direction of incidence on a scattering centre). The volume scattering function is on many occasions approximated by the two components
15. b,_ and b, are referred to as the forward scattering and the backscatter coefficients respectively, and the forward scatter is generally very much greater than the backscatter.
This invention describes a method for the real 20. time estimation of the scatter "b" by airborne laser hydro¬ graphic systems to an accuracy sufficient for incorporation within a predictive model of the process of photon path variation by scattering. It is noted that the process of backscatter within the sea bulk will lead to the detection by an airborne system of what is commonly referred to as a backscatter envelope. Studies from both a theorectical basis and 5« an experimental basis as carried out by WRELADS show that the shape of this envelope under normal conditions of a uniform mixture of hydrosols within the vertical column of seawater traversed by the laser beam is of an initial high point followed by an exponential decay. 10- Under conditions of constant system gain and laser power, the peak height of the envelope will be proportional to the backscatter coefficient. The exponential decay is characterised by the decay constant 2k, which is referred to as the attenuation coefficient.
15. Theorectical studies, using Monte Carlo techniques and assumed volume scattering functions, have shown that "k" is a function of both "a" and "b", but under normal conditions in hydrographic laser systems such as WRELADS, the field of view of the receiver is sufficiently large
20. for k = a to be a good approximation. These theoretical studies also show, however, that in the limit of a very small field of view, then "k" approaches c = a + b. "c" is sometimes referred to as the total (or beam) attenuation coefficient, since it represents the decay constant
25. for energy in the laser beam associated with photons that have been neither scattered nor absorbed as they pass downwards through the sea. Studies to date using WRELADS data have concentrated on using measurements of "k", and hence "a", together with a parameter proportional to the backscatter envelope amplitude, and hence b-, to make inferences about changes 5. in "b", and hence in the light path variation. However, while these studies have shown that these inherent optical proporties may be functionally linked within a limited time and space, the link is insufficient to make the general inferences that would be required in an operational 10. system of air borne laser hydrography.
In the invention described herein, changes in "b" will be monitored more directly by analysis of the decay constants of the back scatter envelopes resulting from the use of two different receiver fields of view. The 15. large field of view will give a estimate of the absorption coefficient "a", while a small field of view will give a decay constant "k" from which may be deduced a value of "b".
The advantages of this method are that it more directly measures "b", the optical property most closely
20. associated with the process of path variation by scattering, without having to rely on inferences of proportionality to b, , the backscatter coefficient - which inferences have now been demonstrated to be valid only within limited regimes. Secondly, the measurement of the decay constant
25- for a backscatter envelope is independent of the effective system gain, which has proved very difficult to calibrate in WRELADS studies of b, . Tests done with various fields of view using the WRELADS system have shown that fields of view can be selected that are sufficiently large to receive a measurable backscatter envelope while being sufficiently 5. small to observe the effect described above.
Thus it will be seen that this invention is novel in its use of two receiver fields of view to measure forward scatter from an airborne platform for use in laser hydrography and other scientific oceanographic 10. applications.
In order however that the nature of the invention will be fully appreciated an embodiment thereof will now be described with reference to the accompanying drawings to details of which the invention need however 15. not necessarily be limited.
In the drawings:
FIG. 1 is a schematic view of an ocean depth sounding device which uses laser beams from a platform positioned above the surface of the ocean, the depth of which is to be measured, this view depicting the general prior 20. art as disclosed in International Publication No. WO82/01075 by the same applicants.
FIG. 2 is a schematic view showing how the ocean depth measuring beam scans the ocean bottom generally normally to the direction of travel of the platform 25. and at the end of each traverse alternately reads a large field of view and a small field of view. FIG. 3 is a schematic drawing showing in front elevation how the field of view may be changed by a pair of shutters, and
FIG. 4 is a sectional view at right angles to FIG 5. 3 showing the shutters in the open position where the large field of view is effective.
It will be realised from FIG. 1 that the green pulse scans the ocean floor over a substantial area transversely to the direction of travel so that an average reading of 10. ocean depth results by the depth scanned whereas the infrared pulse which measures the surface distance from is steady as the surface position varies only by tidal and wave motion whereas the ocean bottom may vary substanially in its depth over the traverse of the lateral scan.
15. It will be seen from the prior art document that the green beam 1 and the infrared beam 2 are both measured at the surface 3 but the green beam is also measured at the bottom 4 to give a depth of water differential, the beams in that case being produced by a laser 5 acting
20. through a coupling 6 to direct the steady infrared pulse through the telescope 7 to the ocean surface and the green pulse through the telescope 8 to the scanning mirror 9, the red pulse being detected by the telescope 10 and the green pulse being detected by the telescope
25. 11 through the scanning mirror and these pulses are then processed to give the ocean depth.
In the present invention the green beam 15 is directed from the platform 16 to the ocean bottom but at the commencement of one traverse a reading is taken on a 30. small field of view as indicated at 17 and at the other end of the traverse a large field of view reading is taken as indicated at 18. The same method of reading the return pulses can be used as indicated in FIG. 1 and from that view it will be seen that the green beam which penetrates the ocean surface spreads on the return deflection to be 5. readable over a relatively large area at the ocean surface 3, but according to the present invention whereas in the prior art case a uniform dimension surface scan is being read, according to this invention at the end of each traverse either a large field of view is scanned 10. or a small field of view and this then allows the cal¬ culation of the present invention to be effected to very materially increase the accuracy of the reading of depth of the ocean.
The device of this invention comprises a pair of 15. shutters 20 and 21 which in FIG. 3 are shown in the closed position so that the shutters 20 and 21 reduce the field of view to the small field of view given by the circular aperture 22 whereas in the position shown in FIG. 4 the shutters 20 and 21 are in parallel alignment 20. with the axis 23 of the beam and the aperture 30 is now defined by the iris 24 which may if required be selectable to define the maximum aperture required at the particular time.
The shutters 20 and 21 are driven respectively 25. by stepper motors 25 and 26 which have shafts 27 and 28 which carry the shutters the stepper motors 25 and 26 can readily be actuated by any known type of signal to alternately position the shutters as the beam reaches the end of a traverse.
30. The shutters 20 and 21 are located in an aperture
30 in the return green beam and are preferably positioned adjacent to the telescope which receives the green return beam.

Claims (1)

  1. THE CLAIMS DEFINING THE INVENTION ARE AS FOLLOWS:
    1. The method of measuring the optical scattering co-efficient of the ocean by means of a laser beam (15) from a platform (16) above the ocean surface
    (3) in which an ocean penetrating beam (15) is directed 5. to the surface of the ocean (3) and through it to the ocean bottom (4) to be back-reflected to the ocean surface (3) and to a receiver on the platform (16), and in which the said beam (15) is swept transversely across the direction of movement of the platform,
    10. characterised by changing the field of view at first (17) and second (18) selected positions of the sweep to alternately use a first field of view of one dimension and then use a second field of view of a substantially different dimension and calculating from the larger
    15. field of view an estimate of the absorption co-efficient and calculating from the smaller f-ield of view an estimate of beam attenuation co-efficient.
    2. The method of claim 1 in which the said first position is at one end of a sweep and the said second position is at the other end of the sweep.
    3. Means for measuring the optical scattering co-efficient of the ocean by means of a laser beam from a platform (16) above the ocean surface (3) in which an ocean penetrating beam (15) is directed to
    5. the surface of the ocean (3) and through it to the ocean bottom (4) to be back-reflected to the ocean surface (3) and to a receiver on the platform (16), characterised by means to project an ocean penetrating beam (15) from the platform (16) to the ocean bottom 10. and to receive the back reflected beam at the platform (16), and by means (20-21) at the platform (16) in the path of the beam (15) to periodically and alternately change the field of view to receive a first field of view of one dimension and then a second field of view of a substantially different dimension, and by 5. means to calculate an estimate of the absorption from the larger field of view and an estimate of beam attenuation from the smaller field of view.
    4. Means for measuring the optical scattering co-efficient of the ocean according to claim 1 wherein the means for selecting the dimension of the said first and second field of view comprises shutter means
    5. (20-21) disposed in the reflected beam which are driven to define a small field of view in the one position and a large field of view in the other position.
    5. Means for measuring the optical scattering co-efficient according to claim 4 wherein the said shutter means comprise a pair of shutters (20-21) dimensioned to extend across an aperture (30) through
    5. which the return beam is arranged to pass, said shutters (20-21) having a smaller aperture (22) defined by them when said shutters are positioned to extend across the said aperture (30) normal to the axis (23) of the beam and to be movable to be parallel to the said 10. axis (23) when the larger field of view is required.
    6. Means for measuring the optical scattering co-efficient according to claim 4 or 5 in which the said shutters (20-21) are driven by a pair of stepper motors (25-26) on the shafts (27-28) of which the
    5. shutters (20-21) are mounted. 7. Means for measuring the optical scattering co-efficient according to claim 5 or 6 wherein the said aperture (30) has an iris diaphragm (24) to allow selection of the dimension of the larger field of view.
    8. The method of measuring the optical scattering co-efficient of the ocean substantially as described in the specification.
    9. The means for measuring the optical scattering co-efficient of the ocean substantially as described and illustrated with reference to the accompanying drawings.
AU50905/85A 1984-11-09 1985-11-08 Airborne measurement of ocean optical scattering coefficient Expired AU580119B2 (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
AU50905/85A AU580119B2 (en) 1984-11-09 1985-11-08 Airborne measurement of ocean optical scattering coefficient

Applications Claiming Priority (3)

Application Number Priority Date Filing Date Title
AUPG8062 1984-11-09
AUPG806284 1984-11-09
AU50905/85A AU580119B2 (en) 1984-11-09 1985-11-08 Airborne measurement of ocean optical scattering coefficient

Publications (2)

Publication Number Publication Date
AU5090585A AU5090585A (en) 1986-06-03
AU580119B2 true AU580119B2 (en) 1989-01-05

Family

ID=25629116

Family Applications (1)

Application Number Title Priority Date Filing Date
AU50905/85A Expired AU580119B2 (en) 1984-11-09 1985-11-08 Airborne measurement of ocean optical scattering coefficient

Country Status (1)

Country Link
AU (1) AU580119B2 (en)

Citations (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
AU7584981A (en) * 1980-09-22 1982-04-14 Commonwealth Of Australia, The Ocean depth sounding from the air by laser beam

Patent Citations (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
AU7584981A (en) * 1980-09-22 1982-04-14 Commonwealth Of Australia, The Ocean depth sounding from the air by laser beam

Also Published As

Publication number Publication date
AU5090585A (en) 1986-06-03

Similar Documents

Publication Publication Date Title
US4754151A (en) Method and apparatus for measuring the optical scattering co-efficient of the ocean using large and small fields of view
CA1338358C (en) Method and apparatus for determining k-factor and depth measurements
EP0060280B1 (en) Ocean depth sounding from the air by laser beam
DE19642967C1 (en) Method of automatically determining visibility with light detection and ranging or LIDAR system
EP3165876A2 (en) Opto-electronic measuring device
US4123160A (en) Method and apparatus for remotely measuring sub-surface water temperatures
DE4341080C1 (en) Photoelectric device having a test object
US4152069A (en) Process and apparatus for ascertainment of the valuation data of gems
Steinvall et al. Experimental evaluation of an airborne depth-sounding lidar
DE102005015914A1 (en) Combined laser height and ground speed measuring device
US4263511A (en) Turbidity meter
Tulldahl et al. Simulation of sea surface wave influence on small target detection with airborne laser depth sounding
DE3930272C2 (en)
Wong et al. Characterization and decomposition of waveforms for LARSEN 500 airborne system
EP1695109A1 (en) Device for measuring the distance to far-off objects and close objects
Steinvall et al. Depth sounding lidar: An overview of Swedish activities and future prospects
CA2228499C (en) Optical measurement of marine conditions
AU580119B2 (en) Airborne measurement of ocean optical scattering coefficient
EP0467127A2 (en) Method and device for optically detecting and evaluating scattered light signals
EP1195617B1 (en) Distance measuring device
WO2018086786A1 (en) Particle sensor having at least two laser doppler sensors
DE2847604A1 (en) Blast furnace charge profile display - uses photodiodes receiving diffused light from YAG laser scanning surface
CA2628027C (en) Short range lidar apparatus having a flat spatial response
CN118501848B (en) Laser reflection point distance and azimuth calculating device and method for inner wall of wading space
SE460739B (en) Airborne method measurement ocean optical scattering coefficient