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US20180038787A1 - Field Deployable Soil Observation Topographic Differential Absorption LiDAR (SOTDiAL) - Google Patents

Field Deployable Soil Observation Topographic Differential Absorption LiDAR (SOTDiAL)
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Publication number
US20180038787A1
US20180038787A1US15/671,040US201715671040AUS2018038787A1US 20180038787 A1US20180038787 A1US 20180038787A1US 201715671040 AUS201715671040 AUS 201715671040AUS 2018038787 A1US2018038787 A1US 2018038787A1
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United States
Prior art keywords
soil
light
received
light energy
active
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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.)
Abandoned
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US15/671,040
Inventor
Sean E. Salazar
Richard A. Coffman
Cyrus D. Garner
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University of Arkansas at Little Rock
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University of Arkansas at Little Rock
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.)
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Publication date
Application filed by University of Arkansas at Little RockfiledCriticalUniversity of Arkansas at Little Rock
Priority to US15/671,040priorityCriticalpatent/US20180038787A1/en
Publication of US20180038787A1publicationCriticalpatent/US20180038787A1/en
Priority to US16/559,535prioritypatent/US10908080B2/en
Abandonedlegal-statusCriticalCurrent

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Abstract

A soil analysis system that provides a field deployable device that is configured to remotely measure in situ soil suction through correlation with relative humidity at the soil surface.

Description

Claims (22)

What is claimed is:
1. A soil analysis system that provides a field deployable device that is configured to remotely measure in situ soil suction through correlation with relative humidity at the soil surface comprising: an active element where light energy is both transmitted and received and a passive element where light energy is received.
2. The system ofclaim 1 wherein external light is used by said passive element.
3. The system ofclaim 1 wherein active light energy is transmitted by two low-power cavity diode lasers.
4. The system ofclaim 1 wherein active light energy is transmitted by two low-power cavity diode lasers arranged in a self-chirped homodyne laser detection scheme tuned to wavelengths of 823.3-nm and 847.0-nm.
5. The system ofclaim 1 wherein the wavelengths used by said active element corresponds with water absorption and reflection characteristics.
6. The system ofclaim 1 wherein the wavelengths used by said passive element receives light range from the visual to the near-infrared spectrum (400-nm to 2500-nm).
7. The system ofclaim 1 wherein said active and passive elements of the system operate in tandem.
8. The system ofclaim 1 wherein laser light is emitted onto the surface of a soil, while light is also received simultaneously through said optical aperture.
9. The system ofclaim 8 wherein laser light is partially scattered into the atmosphere and light energy is reflected back into said aperture of the system.
10. The system ofclaim 9 wherein the system is adapted to also use the remaining backscatter of sun light.
11. The system ofclaim 1 wherein the system analyzes the spectra of transmitted and received light and performs a correlation with relative humidity at the soil surface to determine in situ properties of the soil, including soil water potential (i.e. soil suction).
12. The system ofclaim 1 wherein said optical aperture is a tripod-based telescope.
13. The system ofclaim 1 wherein said light emitting device and said optical aperture are motorized.
14. The system ofclaim 1 wherein said light emitting device and said optical aperture are motorized and provide a 360-degrees of data collection.
15. The system ofclaim 1 wherein the spatial and temporal resolution are up to 1500 feet.
16. A method of performing soil analysis comprising the steps of: providing a field deployable device that is configured to remotely measure in situ soil suction through correlation with relative humidity at the soil surface, said field deployable device having an active element where light energy is both transmitted and received and a passive element where light energy is received by the device.
17. The method ofclaim 16 wherein external light is used by said passive element.
18. The system ofclaim 16 wherein the wavelengths used by said active element correspond with water absorption and reflection characteristics.
19. The method ofclaim 16 wherein said active and passive elements of the system operate in tandem.
20. The method ofclaim 16 wherein said light energy is a laser light that is emitted onto the surface of a soil, while light is also received simultaneously through said optical aperture.
21. The method ofclaim 16 wherein laser light is partially scattered into the atmosphere, but some light energy is reflected back into the aperture of the system, while the remaining backscatter of sun light into the system.
22. The system ofclaim 21 wherein based on the spectra of transmitted and received light a correlation is performed with relative humidity at the soil surface to determine in situ properties of the soil, including soil water potential (i.e. soil suction), plasticity and fines content of the soil.
US15/671,0402016-08-052017-08-07Field Deployable Soil Observation Topographic Differential Absorption LiDAR (SOTDiAL)AbandonedUS20180038787A1 (en)

Priority Applications (2)

Application NumberPriority DateFiling DateTitle
US15/671,040US20180038787A1 (en)2016-08-052017-08-07Field Deployable Soil Observation Topographic Differential Absorption LiDAR (SOTDiAL)
US16/559,535US10908080B2 (en)2016-08-052019-09-03Field deployable soil observation topographic differential absorption LiDAR (SOTDiAL)

Applications Claiming Priority (2)

Application NumberPriority DateFiling DateTitle
US201662371288P2016-08-052016-08-05
US15/671,040US20180038787A1 (en)2016-08-052017-08-07Field Deployable Soil Observation Topographic Differential Absorption LiDAR (SOTDiAL)

Related Child Applications (1)

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US16/559,535ContinuationUS10908080B2 (en)2016-08-052019-09-03Field deployable soil observation topographic differential absorption LiDAR (SOTDiAL)

Publications (1)

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US20180038787A1true US20180038787A1 (en)2018-02-08

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US15/671,040AbandonedUS20180038787A1 (en)2016-08-052017-08-07Field Deployable Soil Observation Topographic Differential Absorption LiDAR (SOTDiAL)
US16/559,535ActiveUS10908080B2 (en)2016-08-052019-09-03Field deployable soil observation topographic differential absorption LiDAR (SOTDiAL)

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US16/559,535ActiveUS10908080B2 (en)2016-08-052019-09-03Field deployable soil observation topographic differential absorption LiDAR (SOTDiAL)

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Cited By (2)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
CN111292325A (en)*2020-03-312020-06-16中国地质调查局西安地质调查中心(西北地质科技创新中心)Fluorite ore identification method and system based on remote sensing technology
US11009394B2 (en)*2016-11-032021-05-18Oregon Health & Science UniversityMultispectrum super resolution microscopy

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* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US12399278B1 (en)2016-02-152025-08-26Red Creamery LlcHybrid LIDAR with optically enhanced scanned laser
US12123950B2 (en)2016-02-152024-10-22Red Creamery, LLCHybrid LADAR with co-planar scanning and imaging field-of-view
US11556000B1 (en)2019-08-222023-01-17Red Creamery LlcDistally-actuated scanning mirror
US12399279B1 (en)2016-02-152025-08-26Red Creamery LlcEnhanced hybrid LIDAR with high-speed scanning

Citations (5)

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US20120060588A1 (en)*2010-09-102012-03-15The Hong Kong University Of Science And TechnologyHumidity and osmotic suction-controlled box
US20150014543A1 (en)*2012-02-222015-01-15Iti Scotland LimitedHeterodyne detection system and method
US20150277440A1 (en)*2014-03-252015-10-01Amazon Technologies, Inc.Sense and avoid for automated mobile vehicles
US20160356890A1 (en)*2014-08-262016-12-08Dale G. FriedMethods and Apparatus for Three-Dimensional (3D) Imaging
US20170223947A1 (en)*2014-08-152017-08-10Monsanto Technology LlcApparatus and methods for in-field data collection and sampling

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Publication numberPriority datePublication dateAssigneeTitle
US9585307B2 (en)*2007-07-032017-03-07Kyle H. HollandOptical real-time soil sensor and auto-calibration methods
US9622255B2 (en)2012-06-292017-04-11Cable Television Laboratories, Inc.Network traffic prioritization
US9612412B2 (en)*2013-10-312017-04-04The United States Of America As Represented By The Secretary Of The ArmyOptical device for beam combining and/or routing and method
US10215846B2 (en)2015-11-202019-02-26Texas Instruments IncorporatedCompact chip scale LIDAR solution

Patent Citations (5)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US20120060588A1 (en)*2010-09-102012-03-15The Hong Kong University Of Science And TechnologyHumidity and osmotic suction-controlled box
US20150014543A1 (en)*2012-02-222015-01-15Iti Scotland LimitedHeterodyne detection system and method
US20150277440A1 (en)*2014-03-252015-10-01Amazon Technologies, Inc.Sense and avoid for automated mobile vehicles
US20170223947A1 (en)*2014-08-152017-08-10Monsanto Technology LlcApparatus and methods for in-field data collection and sampling
US20160356890A1 (en)*2014-08-262016-12-08Dale G. FriedMethods and Apparatus for Three-Dimensional (3D) Imaging

Cited By (2)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US11009394B2 (en)*2016-11-032021-05-18Oregon Health & Science UniversityMultispectrum super resolution microscopy
CN111292325A (en)*2020-03-312020-06-16中国地质调查局西安地质调查中心(西北地质科技创新中心)Fluorite ore identification method and system based on remote sensing technology

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US10908080B2 (en)2021-02-02
US20200018695A1 (en)2020-01-16

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