Claims
- 1. An irrigation system comprising an energized cooling system for cooling a liquid to a temperature below ground temperature, closed-loop condensation piping placed on or adjacent below ground surface and an energized liquid circulating arrangement for circulating the liquid through the system; and control system is provided for retaining a substantially constant temperature difference ΔT by regulating liquid temperature, where:
- 2. An irrigation system according to claim 1, wherein a liquid reservoir is provided.
- 3. An irrigation system according to claim 2, wherein at least the liquid reservoir is placed under ground.
- 4. An irrigation system according to claim 1, wherein the cooling system includes heat exchanger arrangements.
- 5. An irrigation system according to claim 1, wherein one or both of the liquid circulating arrangement and the cooling system are energized by an energy extracted from at least one of the following solar, wind, electric, hydraulic and biomass energy source.
- 6. An irrigation system according to claim 1, wherein the piping is formed with increased section area for increasing the amount of liquid condensed on a sheath thereof as compared with a piping having a circular cross-section.
- 7. An irrigation system according to claim 6, wherein the piping has an indented or serrated sheath surface.
- 8. An irrigation system according to claim 1, wherein the control system governs flow parameters and operative patterns of the irrigation system.
- 9. An irrigation system according to claim 1, wherein the cooling system comprises one or more cooling units.
- 10. A method for underground irrigation according to which a liquid is propelled at a temperature below ground temperature, through a closed piping system buried below ground surface, thereby condensing liquid over sheath of the piping for consumption by agriculture growth in the vicinity of the piping.
- 11. An irrigation method according to claim 10, wherein the piping is connected to a liquid reservoir, a circulating arrangement and a cooling system for chilling the liquid.
- 12. An irrigation method according to claim 10, wherein the piping is formed with increased section area for increasing the amount of liquid condensed on the sheath of the piping, as compared with a piping having a circular cross-section.
- 13. An irrigation method according to claim 10, wherein a control system is provided for retaining a substantially constant temperature difference ΔT by regulating liquid temperature, where:
- 14. An irrigation system comprising a closed-loop piping system of which at least a portion of which is a condensing section extending on or adjacent below ground surface, and at least an other portion of which is a cool-collecting section buried under ground at a cool ground zone; said closed-loop piping holding a liquid which is propelled by a circulating system fitted along the piping system; whereby said liquid is chilled by heat exchanging at the cool ground zone and then flows to the condensing section where moisture from the vicinity is extracted by condensation over the by condensing section, readily available for consumption by agriculture growth.
- 15. An irrigation system according to claim 14, wherein the cool-collecting section is buried at least 3 meters under ground surface.
- 16. An irrigation system according to claim 14, wherein the cool-collecting section is buried at or below a depth at which the gradient of temperature change is substantially constant.
- 17. An irrigation system according to claim 14, wherein the liquid comprises an anti-freeze agent, to thereby decrease its freezing point.
- 18. An irrigation system according to claim 14, wherein the piping system comprises several condensing sections and several cool-collecting sections; said cool-collecting sections being arranged in altering depths to thereby minimize heat transfer influence between adjoining sections.
- 19. An irrigation system according to claim 14, wherein the cool-collecting section comprises with a heat exchanger arrangement for increasing heart exchange rate as compared with a piping having a circular cross-section.
- 20. An irrigation systems according to claim 14, wherein several closed-loop piping systems are connected via flow control valving system to a central circulating system.
- 21. An irrigation systems according to claim 14, further comprising a control system for activating the central circulating system only when the temperature of the cool ground zone is below a predetermined temperature value of the vicinity of the condensing section.
- 22. An irrigation systems according to claim 21, wherein the control system comprises a controller associated with circulating system a ground temperature sensing system for sensing temperature at the cool-collecting section and an ambient temperature system for sensing temperature at the condensing section; said sensing systems generating corresponding temperature signals which are processed by the controller to generate an activating signal to the condensing section, whenever the cool ground zone is below a predetermined temperature value of the vicinity of the condensing section.
- 23. An irrigation system according to claim 22, wherein the temperature sensing systems measure either or both liquid temperature and vicinity temperature.
- 24. A method for irrigation whereby a liquid is propelled through a closed-loop piping system comprising at least a condensing section extending on or adjacent-below ground surface, and at least a cool-collecting section buried under ground at a cool ground zone; said liquid being chilled at the cool-collecting section, whereby moisture is condensed over sheath at the condensing section, readily available for consumption by agriculture growth.
RELATED APPLICATIONS
[0001] The present application is a continuation-in-part of U.S. application Ser. No. 09/503,587 filed Feb. 14, 2000.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09503587 |
Feb 2000 |
US |
Child |
10044342 |
Oct 2001 |
US |