Claims
- 1. A tensiometer for collecting data regarding a matric potential of a sample, comprising:
a tensiometer casing having a base portion and a tip portion; an upper reservoir positioned within the tensiometer casing; a lower reservoir positioned within the tensiometer casing, below the upper reservoir; a first fluid conduit coupled in fluid flowing relation relative to the upper reservoir, and which, in operation, supplies a fluid to the upper reservoir; a second fluid conduit which couples the upper and lower reservoirs in fluid flowing relation, and which, in operation, supplies the fluid from the upper reservoir to the lower reservoir; a membrane coupled in fluid flowing relation relative to the lower reservoir, and through which, in operation, the fluid from the lower reservoir passes as it is drawn by a matric potential of a sample adjacent to the membrane; and a lower pressure sensor positioned within the tensiometer casing, and which is configured to in operation measure the matric potential of the sample.
- 2. The tensiometer of claim 1, and further comprising an upper pressure sensor operably coupled to the tensiometer casing, and which, in operation, measures local soil air pressure near the lower reservoir.
- 3. The tensiometer of claim 1, wherein the membrane comprises a porous stainless steel membrane.
- 4. The tensiometer of claim 1, wherein the lower pressure sensor is located in the tip portion of the tensiometer casing.
- 5. The tensiometer of claim 1, wherein the lower pressure sensor is located below the lower reservoir within the tip portion of the tensiometer casing to reduce variations in pressure reading.
- 6. The tensiometer of claim 1, wherein the tip portion is removable and replaceable.
- 7. The tensiometer of claim 1 and comprising a lower valve member defining the lower reservoir, the lower valve member body including an outer annular surface, wherein the membrane includes an inner annular surface selectively slidingly received over the outer annular surface of the lower valve member body, wherein the tip portion is selectively threadedly connected to the lower valve member body and wherein the membrane is held in place between the tip portion and the lower valve member body when the tip portion is threaded to the lower valve member body.
- 8. The tensiometer of claim 7 wherein the membrane is removable and replaceable.
- 9. The tensiometer of claim 7, wherein the valve is removable.
- 10. The tensiometer of claim 1, wherein the pressure sensor is an absolute type pressure sensor that does not need to be vented to atmosphere.
- 11. The tensiometer of claim 1, and further comprising:
an upper pressure sensor operably coupled to the tensiometer casing, and which, in operation, measures local soil air pressure near the lower reservoir; an upper calibration valve for calibrating the upper pressure sensor; a fill valve for selectively controlling fluid flow from the upper reservoir to the lower reservoir; and a lower calibration valve for calibrating the lower pressure sensor.
- 12. The tensiometer of claim 1, and further comprising:
an upper pressure sensor operably coupled to the tensiometer casing, and which, in operation, measures local soil air pressure near the lower reservoir; and a plurality of valves which function as substantial barrier to contaminants.
- 13. The tensiometer of claim 11, wherein the plurality of valves, in operation, allow the lower pressure sensor to be calibrated remotely while the tensiometer is positioned within a sample.
- 14. The tensiometer of claim 11, wherein the plurality of valves, in operation, allow the upper pressure sensor to be calibrated remotely while the tensiometer is positioned within a sample.
- 15. The tensiometer of claim 11, wherein the plurality of valves, in operation, allow the tensiometer to be flushed out remotely while the tensiometer is positioned within a sample.
- 16. The tensiometer of claim 11, wherein each of the plurality of valves may be removed and replaced.
- 17. The tensiometer of claim 11, wherein the upper and the lower pressure sensors may be individually removed and replaced.
- 18. The tensiometer of claim 1 wherein the membrane is supported in the tip portion of the casing and is selectively removable from the tip portion of the casing and is replaceable.
- 19. The tensiometer of claim 1, wherein the membrane is configured to selectively couple with the tip at a joint, and wherein the tensiometer includes a seal at the joint between the membrane and the tip.
- 20. The tensiometer of claim 19, wherein the seal at the joint between the membrane and the tip comprises redundant seals.
- 21. The tensiometer of claim 18, wherein the base connection seal comprises two base connection seals.
- 22. The tensiometer of claim 18, wherein bearing surfaces at the base connection joint isolate the base connection seal from large loads.
- 23. The tensiometer of claim 1, wherein the tensiometer casing comprises stainless steel, and wherein the tensiometer casing is of adequate durability for installation into a sample by direct push.
- 24. The tensiometer of claim 1, wherein the tensiometer casing comprises stainless steel, and wherein the tensiometer casing is of adequate durability for installation into a sample by sonic drilling.
- 25. The tensiometer of claim 1, wherein the tensiometer casing comprises stainless steel, and wherein the tensiometer casing is of adequate durability for installation into a sample by a combination of direct push and sonic drilling.
- 26. An apparatus for collecting data regarding a matric potential of a media, comprising:
a tensiometer casing having a base portion, and a tip portion; an upper reservoir positioned within the tensiometer casing; a lower reservoir positioned within the tensiometer casing, below the upper reservoir; a first fluid conduit coupled in fluid flowing relation relative to the upper reservoir, and which, in operation, supplies a fluid to the upper reservoir; a second fluid conduit which couples the upper and lower reservoirs in fluid flowing relation, and which, in operation, supplies the fluid from the upper reservoir to the lower reservoir; a porous membrane coupled in fluid flowing relation relative to the lower reservoir, and through which the fluid from the lower reservoir passes as it is drawn by a matric potential of a media adjacent to the porous membrane; a lower pressure sensor positioned within the tensiometer casing and coupled in sensing relation relative to the lower reservoir, and which, in operation, measures the matric potential of the media; an upper pressure sensor operably coupled to the tensiometer casing, and which, in operation, measures local soil air pressure near the lower reservoir; and a plurality of probe casings selectively coupled to form an insertion tube, the insertion tube having an instrument receiving end, a surface end, and an insertion tube wall which together define a center cavity, and wherein the instrument receiving end of the insertion tube is selectively coupled to the base portion of the tensiometer casing.
- 27. The apparatus of claim 25, wherein the plurality of probe casings are selectively coupled at casing joints to form the insertion tube, and wherein the casing joints include a seal which functions as a substantial barrier to contaminants.
- 28. The apparatus of claim 25, wherein the seal comprises a plurality of seals.
- 29. The apparatus of claim 25, wherein the instrument receiving end of the insertion tube is selectively coupled to the base portion of the tensiometer casing at a base connection joint, and wherein the base connection joint includes a base connection seal which functions as a substantial barrier to contaminants.
- 30. The apparatus of claim 28, wherein the base connection seal comprises a plurality of base connection seals.
- 31. The apparatus of claim 28, wherein selectively coupling the instrument receiving end of the insertion tube and the base portion of the tensiometer casing requires less than four turns to fully engage the base connection joint and the base connection seal.
- 32. The apparatus of claim 28, wherein selectively coupling the instrument receiving end of the insertion tube and the base portion of the tensiometer casing requires about two and one-half turns to fully engage the base connection joint and the base connection seal.
- 33. The apparatus of claim 25, wherein the insertion tube has an outside diameter of less than four inches.
- 34. The apparatus of claim 25, wherein the insertion tube has an outside diameter of about two and one half inches.
- 35. The apparatus of claim 25, wherein the insertion tube comprises stainless steel.
- 36. The apparatus of claim 25, and further comprising:
at least one sensor conduit coupled to the upper and lower pressure sensors for transmitting data, and wherein the insertion tube functions as a conduit through which the at least one sensor conduit passes.
- 37. The apparatus of claim 25, and further comprising:
at least one air conduit coupled to the plurality of valves for controlling operation of the valves, and wherein the insertion tube functions as a conduit through which the at least one air conduit passes.
- 38. The apparatus of claim 25, wherein the insertion tube functions as a conduit through which the first fluid conduit passes.
- 39. The apparatus of claim 25, wherein the insertion tube and the tensiometer casing are of adequate durability for installation into the ground by direct push.
- 40. The apparatus of claim 25, wherein the insertion tube and the tensiometer casing are of adequate durability for installation into the ground by sonic drilling.
- 41. The apparatus of claim 25, wherein the insertion tube and the tensiometer casing are of adequate durability for installation into the ground by a combination of direct push and sonic drilling.
- 42. A method of collecting data regarding a matric potential of a media, comprising:
providing a tensiometer including a porous membrane comprising stainless steel, a lower reservoir, a first fluid conduit which couples the lower reservoir in fluid flowing relation relative to the porous membrane, and a tensiometer casing having a base portion; providing an insertion tube comprising a plurality of probe casings which have been selectively coupled at casing joints, the casing joints including a seal which functions as a substantial barrier to contaminants, the insertion tube having an instrument receiving end, a surface end, and an insertion tube wall which together define a center cavity; selectively coupling the instrument receiving end of the insertion tube with the base portion of the tensiometer casing at a base connection joint, the base connection joint including a base connection seal which functions as a substantial barrier to contaminants; inserting the insertion tube and the tensiometer into a media, so that the porous membrane is in contact with the media; providing the lower reservoir with a fluid, wherein the fluid is in contact with the porous membrane, and wherein the fluid is exposed to a matric potential the media exerts on the fluid through the porous membrane; sealing the tensiometer using a plurality of valves, which act as a substantial barrier to contaminants; and measuring the matric potential the media exerts on the fluid.
- 43. The method of claim 41, wherein inserting the insertion tube and the tensiometer into a media comprises using direct push.
- 44. The method of claim 41, wherein inserting the insertion tube and the tensiometer into a media comprises using sonic drilling.
- 45. The method of claim 41, wherein inserting the insertion tube and the tensiometer into a media comprises using a combination of direct push and sonic drilling.
- 46. A method for collecting data regarding a matric potential of a media, comprising:
providing a tensiometer having a stainless steel tensiometer casing, the stainless steel tensiometer casing comprising a tip portion which includes a wetted porous stainless steel membrane through which a matric potential of a media is sensed; driving the tensiometer into the media using an insertion tube comprising a plurality of probe casing which are selectively coupled to form the insertion tube as the tensiometer is progressively driven deeper into the media, wherein the wetted porous stainless steel membrane is in contact with the media; and sensing the matric potential the media exerts on the wetted porous stainless steel membrane.
GOVERNMENT RIGHTS
[0001] This invention was made with Government support under Contract DE-AC07-99ID13727 awarded by the U.S. Department of Energy. The Government has certain rights in the invention.