Claims
- 1. An isobaric tensiometer for measuring soil water potential at a monitoring elevation within a vadose zone, comprising:a porous cup having a liquid-filled interior; a differential pressure transducer having a monitoring port and a reference port; a chamber surrounding the transducer, the chamber being in open fluid communication with the reference port of the transducer; a closed fluid path formed through the chamber between the interior of the porous cup and the monitoring port of the transducer to permit fluid communication between interstitial soil water that contacts the porous cup at the monitoring elevation and the monitoring port; and a vent formed through the chamber to permit communication between soil air at a monitoring elevation and the reference port of the transducer; whereby pressure data produced by the tensiometer is compensated to a true soil water potential corrected for changes in barometric pressure of the soil air at the monitoring elevation.
- 2. An isobaric tensiometer as set out in claim 1, further comprising:an outer guide tube mounting the porous cup, the outer guide tube having a perforated section adjacent to its lower end; a coaxial inner guide tube positioned within the outer guide tube, the inner guide tube having an interior that contains the transducer; the exterior of the inner guide tube being sealingly engageable with respect to the interior of the outer guide tube at elevationally spaced locations that are respectively below and above its perforated section; and a seal formed across the interior of the inner guide tube at an elevation above the perforated section of the outer guide tube.
- 3. An isobaric tensiometer as set out in claim 1, further comprising:an outer guide tube mounting the porous cup, the outer guide tube having a perforated section adjacent to its lower end; a coaxial inner guide tube positioned within the outer guide tube, the inner guide tube having an interior that contains the transducer; the exterior of the inner guide tube being sealingly engageable with respect to the interior of the outer guide tube at a location that is below its perforated section; and a a seal formed across the top end of the outer guide tube; the interior of the inner guide tube being vented to the reference port of the transducer and to the interior of the outer guide tube.
- 4. An isobaric tensiometer as set out in claim 1, further comprising:an outer guide tube mounting the porous cup, the outer guide tube having a perforated section adjacent to its lower end; a coaxial inner guide tube positioned within the outer guide tube, the inner guide tube having an interior that contains the transducer; the exterior of the inner guide tube being sealingly engageable with respect to the interior of the outer guide tube at elevationally spaced locations that are respectively below and above its perforated section; and a seal formed across the interior of the inner guide tube at an elevation above the perforated section of the outer guide tube; an aperture formed through the first gasket as part of the closed fluid path between the interior of the porous cup and the monitoring port of the transducer.
- 5. An isobaric tensiometer as set out in claim 1, further comprising:an outer guide tube mounting the porous cup, the outer guide tube having a perforated section adjacent to its lower end; a coaxial inner guide tube positioned within the outer guide tube, the inner guide tube having an interior that contains the transducer; the exterior of the inner guide tube being sealingly engageable with respect to the interior of the outer guide tube at elevationally spaced locations that are respectively below and above its perforated section; and a seal formed across the interior of the inner guide tube at an elevation above the perforated section of the outer guide tube; and the inner guide tube including a perforate section located adjacent to its lower end.
- 6. An isobaric tensiometer as set out in claim 1, further comprising:an outer guide tube mounting the porous cup, the outer guide tube having a perforated section adjacent to its lower end; a coaxial inner guide tube positioned within the outer guide tube, the inner guide tube having an interior that contains the transducer; the exterior of the inner guide tube being sealingly engageable with respect to the interior of the outer guide tube at elevationally spaced locations that are respectively below and above its perforated section; and a seal formed across the interior of the inner guide tube at an elevation above the perforated section of the outer guide tub; and the first gasket being fixed at the lower end of the inner guide tube; and the second gasket being elevationally movable relative to the inner guide tube and first gasket.
- 7. An isobaric tensiometer as set out in claim 1, further comprising:an outer guide tube mounting the porous cup, the outer guide tube having a perforated section adjacent to its lower end; a coaxial inner guide tube positioned within the outer guide tube, the inner guide tube having an interior that contains the transducer; the exterior of the inner guide tube being sealingly engageable with respect to the interior of the outer guide tube at elevationally spaced locations that are respectively below and above its perforated section; and a seal formed across the interior of the inner guide tube at an elevation above the perforated section of the outer guide tub; and the first gasket being fixed at the lower end of the inner guide tube; the second gasket being elevationally movable relative to the inner guide tube and first gasket; and a biasing member operatively engaged between the inner guide tube and the second gasket and urging the second gasket toward the first gasket.
- 8. A method for compensating ground water data produced by use of an isobaric tensiometer located at a monitored elevation within a vadose zone to a true soil water potential corrected for changes in barometric pressure at the monitored elevation, comprising:positioning a liquid-filled porous cup at selected subsoil monitoring depth; establishing fluid communication between a monitoring port of a differential pressure transducer within the tensiometer and liquid within the porous cup; isolating a reference port of the transducer from above-grade atmospheric pressure; and establishing fluid communication between soil air at a subsoil location immediately adjacent to the porous cup and the reference port by venting soil air to the reference port.
- 9. The method of claim 8, further comprising:mounting the porous cup to the lower end of an outer guide tube; positioning a coaxial inner guide tube containing the transducer within the outer guide tube with the reference port of the transducer in fluid communication with the interior of the inner guide tube; and sealingly engaging the exterior of the inner guide tube against the interior of the outer guide tube at elevationally spaced locations that are respectively below and above a perforate section provided at the lower end of the outer guide tube and a corresponding perforate section provided on the inner guide tube.
- 10. The method of claim 8, further comprising:mounting the porous cup to the lower end of an outer guide tube; positioning a coaxial inner guide tube containing the transducer within the outer guide tube with the reference port of the transducer in fluid communication with the interior of the inner guide tube; sealingly engaging the exterior of the inner guide tube against the interior of the outer guide tube at an elevational location below a perforate section provided at the lower end of the outer guide tube; sealing the top end of the outer guide tube; and venting the inner guide tube between the reference port of the transducer and the perforate section at the lower end of the outer guide tube.
- 11. The method of claim 8, further comprising:mounting the porous cup to the lower end of an outer guide tube; positioning a coaxial inner guide tube containing the transducer within the outer guide tube with the reference port of the transducer in fluid communication with the interior of the inner guide tube; sealingly engaging the exterior of the inner guide tube against the interior of the outer guide tube at one end of a perforate section provided at the lower end of the outer guide tube by contacting the outer guide tube with a first seal mounted to the inner guide tube; sealingly engaging the exterior of the inner guide tube against the remaining end of the perforate section by contact with a second seal member axially movable along the length of the inner guide tube; and yieldably urging the second seal member toward the first seal member by application of spring pressure.
- 12. A monitoring well for determining below-grade soil moisture conditions in a vadose zone, comprising:an upright first tube having top and lower ends and having an interior which extends between its upper and lower ends, the lower end of the first tube being buried in a vadose zone of earthen soil, and the top end of the first tube being accessible from a location above-grade; a porous cup which matingly cooperates to form a liquid-filled cavity at the lower end of the first tube and wherein the porous cup is disposed in hydraulic contact with the earthen soil in the vadose zone; a second tube having top and lower ends and which is coaxially received within the interior of the first tube, the second tube having an interior extending between its upper and lower ends; a first seal mounted on the lower end of the second tube and which releasably engages an extension of the first tube adjacent to its lower end, and wherein the first seal includes an aperture which permits fluid communication between the liquid-filled cavity defined by the porous cup and the interior of the second tube; a second seal mounted adjacent to the lower end of the second tube in spaced relation relative to the first seal, the second seal releasably engaging the first tube; the interior of the second tube being sealed off from atmospheric pressure at grade; a pressure transducer located within the interior of the second tube and having a monitoring port and a reference port, the monitoring port of the pressure transducer being in fluid communication with the aperture formed through the first seal, and the reference port of the pressure transducer being in fluid communication with the interior of the second tube, and wherein soil water adjacent the porous cup has a capillary potential that is transmitted through the aperture in the first seal to the monitoring port of the pressure transducer; first vents forming a perforate section through the extension of the first tube at an elevation intermediate its engagement by the first and second seals, whereby soil gas pressure adjacent to the lower end of the first tube is communicated to a chamber formed within the interior of the first tube between the first and second seals; and second vents forming a perforate section through the second conduit between the first and second seals, whereby the soil gas pressure within the chamber formed within the interior of the first tube is communicated to the interior of the second tube and to the reference port of the pressure transducer.
- 13. The monitoring well of claim 12 wherein the first seal is movably mounted to the second tube; anda biasing member coaxially borne on the second tube that yieldably urges one of the seals in the direction of the remaining seal.
Government Interests
This invention was made with United States Government support under Contract No. DE-AC07-94ID13223, now Contract No. DE-AC07-99ID13727 awarded by the United States Department of Energy. The United States Government has certain rights in the invention.
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