Ladder-Structural Gravity-Assisted-Heat-Pipe Geothermal Energy Recovery System without Liquid-Accumulation Effect
20210254862 ยท 2021-08-19
Assignee
Inventors
- Fangming Jiang (Guangzhou, CN)
- Wenbo Huang (Guangzhou, CN)
- Wenjiong Cao (Guangzhou, CN)
- Yiwei Wang (Guangzhou, CN)
Cpc classification
F24T10/17
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D15/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D2015/0216
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24T2010/56
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E10/10
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F28D15/0266
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F24T10/40
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D15/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A ladder-structural gravity-assisted-heat-pipe geothermal energy recovery system without liquid-accumulation effect, comprises a ladder-structural gravity-assisted heat pipe, a condenser, and a liquid tank. The ladder-structural gravity-assisted heat pipe comprises a return pipe, an outer pipe and an inner pipe. The return pipe is provided in a space between the outer pipe and the inner pipe and communicated with the liquid tank, and the space between the outer pipe and the inner pipe is divided to form a ladder structure. A liquid working medium flows from the liquid tank through the return pipe into each section sequentially, absorbs heat from a high-temperature rock through a wall of the outer pipe, vaporizes into a gaseous working medium, gets into the inner pipe, and rises to the condenser to condense and flows to the liquid tank to circulate. Such design greatly improves the heat transfer efficiency in geothermal energy recovery using ultra-long heat pipes.
Claims
1. A ladder-structural gravity-assisted-heat-pipe geothermal energy recovery system without liquid-accumulation effect, comprising a gravity-assisted heat pipe, a condenser, and a liquid tank, wherein the gravity-assisted heat pipe is disposed underground and the condenser and the liquid tank are disposed aboveground; wherein the gravity-assisted heat pipe comprises an outer pipe and an inner pipe, a space between the outer pipe and the inner pipe is divided to form a ladder structure; the ladder structure comprises a plurality of division plates and a plurality of liquid-level control tubes, wherein the plurality of division plates and the plurality of liquid-level control tubes are provided in the space between the outer pipe and the inner pipe, wherein the plurality of division plates are sequentially arranged in a vertical direction where the gravity-assisted heat pipe contacts a high-temperature rock and are configured to divide the space between the outer pipe and the inner pipe into a plurality of sections, each two adjacent sections are communicated via one of the liquid-level control tubes, and the topmost section is communicated with a return pipe; the liquid-level control tubes are hollow pipes fixed in the division plates, and are configured to allow a liquid working medium to flow to a lower section through the liquid-level control tube when a liquid level in one of the sections is higher than the liquid-level control tube so as to maintain the liquid level in the section below a certain level.
2. The geothermal energy recovery system according to claim 1, further comprising a plurality of wicks, wherein the plurality of wicks with a certain length are provided on an inner surface of the outer pipe at an area below each of the division plates.
3. The geothermal energy recovery system according to claim 2, further comprising a plurality of gas holes, wherein the plurality of gas holes are provided on a surface of the inner pipe at an area between a top of each of the liquid-level control tubes and the division plate above the liquid-level control tube.
4. The geothermal energy recovery system according to claim 3, further comprising a plurality of openings, wherein the plurality of openings are provided at a bottom of the inner pipe, and are configured to allow the liquid working medium in the bottommost section of the space between the outer pipe and the inner pipe to flow into the inner pipe through the openings; an upper level detector and a lower level detector are provided on an inner wall at the bottom of the inner pipe, wherein the upper level detector is disposed below the gas holes of the bottommost section, and the lower level detector is disposed above the openings at the bottom of the inner pipe.
5. The geothermal energy recovery system according to claim 4, further comprising a throttling valve, wherein the throttling valve is provided at a junction of the liquid tank and the return pipe and configured to regulate a flow rate of the liquid working medium by adjusting an openness of the throttling valve.
6. The geothermal energy recovery system according to claim 5, further comprising a groove, wherein the groove is formed along a rim of each division plate for placing an O-ring in order to ensure sealing between the division plate and the outer pipe.
7. The geothermal energy recovery system according to claim 6, further comprising an exhaust valve, wherein the exhaust valve is provided at a top of the outer pipe for vacuumizing the space between the outer pipe and the inner pipe at non-heated sections so as to maintain a temperature of a gaseous working medium in the inner pipe.
8. The geothermal energy recovery system according to claim 7, wherein the high-temperature rock comprises a high-permeability water-bearing rock, a hot dry rock, and an artificial fractured rock constructed by hydraulic excitation.
9. The geothermal energy recovery system according to claim 8, wherein the liquid working medium and the gaseous working medium comprise distilled water, ammonia, carbon dioxide, and organic working medium.
10. The geothermal energy recovery system according to claim 9, wherein the inner pipe is a plastic pipe with lower thermal conductivity in order to maintain a temperature of vapor in the pipe.
11. A process for recovering geothermal energy using the geothermal energy recovery system of claim 1, comprising adding the liquid working medium into the liquid tank, wherein the liquid working medium flows from the liquid tank through the return pipe into each of the sections of the space between the outer pipe and the inner pipe sequentially, absorbs heat from the high-temperature rock through a wall of the outer pipe, and vaporizes into a gaseous working medium; the gaseous working medium gets into the inner pipe and rises to the condenser; the condenser exchanges heat with environment to condense the gaseous working medium into the liquid working medium which is then transferred to the liquid tank; the liquid working medium in the liquid tank flows through the return pipe into the gravity-assisted heat pipe again to circulate.
12. The process of claim 11, wherein a plurality of wicks with a certain length are provided on an inner surface of the outer pipe at an area below each of the division plates, and bottoms of the wicks are immersed in the liquid working medium in order to ensure the inner surface of the outer pipe to be completely wetted above the liquid level.
13. The process of claim 12, wherein a plurality of gas holes are provided on a surface of the inner pipe at an area between a top of each of the liquid-level control tubes and the division plate above the liquid-level control tube, wherein after the liquid working medium absorbs heat and vaporizes into the gaseous working medium, the gaseous working medium gets into the inner pipe through the gas holes and rises to the condenser.
14. The process of claim 13, wherein a plurality of openings are located at a bottom of the inner pipe, the liquid working medium in the bottommost section of the space between the outer pipe and the inner pipe flows into the inner pipe through the openings; an upper level detector and a lower level detector are located on an inner wall at the bottom of the inner pipe, wherein the upper level detector is disposed below the gas holes of the bottommost section, and the lower level detector is disposed above the openings at the bottom of the inner pipe.
15. The process of claim 14, wherein the liquid working medium and the gaseous working medium comprise distilled water, ammonia, carbon dioxide, and organic working medium.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0019]
[0020]
[0021] Reference signs: 1. ladder-structural gravity-assisted heat pipe; 2. condenser; 3. liquid tank; 4. exhaust/injection valve; 5. throttling valve; 6. high-temperature rock; 7. return pipe; 8. outer pipe; 9. inner pipe; 10. division plate; 11. liquid-level control tube; 12. wick; 13. gas hole; 14. upper level detector; 15. lower level detector.
DETAILED DESCRIPTION OF THE EMBODIMENTS
[0022] The present invention will be described in detail below with reference to the drawings and specific embodiment.
[0023] In the present embodiment, the ladder-structural gravity-assisted-heat-pipe geothermal energy recovery system without liquid-accumulation effect comprises a ladder-structural gravity-assisted heat pipe 1, a condenser 2, and a liquid tank 3. The ladder-structural gravity-assisted heat pipe 1 comprises a return pipe 7, an outer pipe 8 and an inner pipe 9. The return pipe 7 is provided in a space between the outer pipe 8 and the inner pipe 9 and communicated with the liquid tank 3. A vapor outlet at the top of the inner pipe 9 is communicated with the condenser 2. The condenser 2 exchanges heat with environment, while its condensate outlet is communicated with the liquid tank 3. The liquid working medium in the liquid tank 3 flows through the return pipe 7 into the gravity-assisted heat pipe 1 again to circulate.
[0024] Division plates 10, liquid-level control tubes 11, and wicks 12 are provided in the space between the outer pipe 8 and the inner pipe 9. The division plates 10 are arranged at equal intervals in the area where the lower part of the heat pipe contacts a high-temperature rock 6 and configured to divide the space between the outer pipe 8 and the inner pipe 9 into a plurality of sections. The topmost section is communicated with the return pipe 7, while each two adjacent sections are communicated via one liquid-level control tube 11. A plurality of gas holes 13 are provided on a surface of the inner pipe 9 at an area between a top of each liquid-level control tube 11 and the division plate 10 above the liquid-level control tube. The arrangement of the inner pipe 9, the division plates 10, the liquid-level control tubes 11, and the gas holes 13, is illustrated by
[0025] The wicks 12 having a certain length are provided on an inner surface of the outer pipe 8 at an area below each division plate 10, and bottoms of the wicks 12 are immersed in the liquid working medium.
[0026] Openings are provided at a bottom of the inner pipe 9, while an upper level detector 14 and a lower level detector 15 are provided on an inner wall at the bottom of the inner pipe 9. The upper level detector 14 is disposed below the gas holes of the bottommost section, and the lower level detector 15 is disposed above the openings at the bottom of the inner pipe.
[0027] The liquid tank 3 comprises an exhaust/injection valve 4 for discharging non-condensable gas in the liquid tank and pouring a liquid working medium into the liquid tank 3. A throttling valve 5 is provided at a junction of the liquid tank 3 and the return pipe 7.
[0028] An implementation procedure of this embodiment:
[0029] (1) Detecting the high-temperature rock target through geological survey, and drilling a bore well from the ground towards the high-temperature rock 6.
[0030] (2) Placing the outer pipe 8 in the bore well, and injecting slurry between the outer pipe 8 and the borehole for well cementing and filling the space between the outer pipe 8 and the rock.
[0031] (3) Determining the maximum acceptable liquid-accumulation height of the working medium by calculation or experiments, based on the downhole temperature measurement data and the designed heat recovery rate.
[0032] (4) At intervals of the maximum acceptable liquid-accumulation height of the working medium, welding the division plates 10 to the wall of the inner pipe 9 and making the gas holes 13; welding the liquid-level control tubes 11 to the division plates; making the openings at the bottom of the inner pipe 9, and disposing the upper level detector 14 and the lower level detector 15.
[0033] (5) Placing the processed inner pipe 9 and the return pipe 7 into the outer pipe 8, arranging the wicks 12 in the outer pipe 8, then sealing the top of the outer pipe 8, and sequentially connecting the top of the inner pipe 9, the condenser 2, the liquid tank 3, and the return pipe 7.
[0034] (6) Vacuumizing the system via the exhaust/injection valve 4, then switching off the throttling valve 5, and pouring a sufficient amount of the liquid working medium into the liquid tank 3.
[0035] (7) Opening the throttling valve 5 gradually to startup the system. Appropriately increasing the openness of the throttling valve 5 when the lower level detector 15 does not detect liquid, and appropriately reducing the openness of the throttling valve 5 when the upper liquid level detector 14 detects liquid, so that the liquid level in the inner pipe may be maintained between the two level detectors. Such design may avoid dry burning or liquid accumulation inside the heat pipe during the operation.
[0036] (8) During the operation, the liquid working medium flows from the liquid tank 3 through the return pipe 7 into the topmost section; when the level in this section is high than the liquid-level control tube 11, the liquid working medium will spontaneously flows to the lower section. The liquid working medium in each section will absorb heat from the high-temperature rock 6 through the outer pipe 8, and vaporizes into a gaseous working medium, which then gets into the inner pipe 9 through the gas holes 13, rises to the condenser 2 where it condenses and releases heat, and eventually returns to the liquid tank 3.
[0037] In order to ensure the sealing between each division plate 10 and the outer pipe 8, a groove may be formed along the rim of the division plate 10 for placing an O-ring.
[0038] The wicks 12 are attached to the inner surface of the outer pipe 8, and the bottom of each wick 12 should be immersed in the liquid working medium in order to ensure an area of the inner surface of the outer pipe 8 above the liquid level to be completely wetted.
[0039] The high-temperature rock includes but not limited to a high-permeability water-bearing rock, a hot dry rock, and an artificial fractured rock constructed by hydraulic excitation.
[0040] The working medium includes but not limited to distilled water, ammonia, carbon dioxide, and various organic working medium.
[0041] Optionally, an additional exhaust valve may be provided at the top of the outer pipe 8 for vacuumizing the space at the non-heated sections between the outer pipe 8 and the inner pipe 9 so as to maintain the temperature of the gaseous working medium in the inner pipe 9.
[0042] The above detailed description is a specific description of possible embodiments of the present invention, which are not intended to limit the scope of the present invention. Any equivalent implementation or modification that does not deviate from the present invention should be included in the scope of the present case.