CN216244958U - Equipment for enhancing heat supply efficiency of single geothermal well - Google Patents
Equipment for enhancing heat supply efficiency of single geothermal well Download PDFInfo
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- CN216244958U CN216244958U CN202122864564.8U CN202122864564U CN216244958U CN 216244958 U CN216244958 U CN 216244958U CN 202122864564 U CN202122864564 U CN 202122864564U CN 216244958 U CN216244958 U CN 216244958U
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Abstract
The utility model relates to equipment for enhancing heat supply efficiency of a single geothermal well, and belongs to the field of new energy. The technical scheme is as follows: a branch well (7) communicated with the geothermal well main well is arranged above a heat taking stratum (10) of the geothermal well main well, and a target layer of a branch well terminal point and a heat taking annulus (11-1) of the geothermal well main well are positioned in the same heat taking stratum; an annular upper packer (12) and an annular lower packer (20) are arranged between a second completion casing (22) of the geothermal well main well and the heat extraction pipe column (15), and the upper packer and the lower packer are respectively positioned above and below a joint (4) of the geothermal well main well and the branch well so as to seal and separate a geothermal well bore annulus (11) between the heat extraction pipe column and the second completion casing; and a circulating pump (8) is arranged in the heat taking annular space below the lower packer. The utility model does not extract underground water and inject external fluid into the stratum, and can effectively improve the heat extraction power under the condition of meeting the requirements of environment-friendly development of geothermal energy.
Description
Technical Field
The utility model relates to equipment for enhancing heat supply efficiency of a single geothermal well, and belongs to the field of new energy.
Background
The geothermal energy is abundant in reserves in China, is green new energy with cleanness and reproducibility, the vigorous development of geothermal energy technology and the realization of high-efficiency environment-friendly development of geothermal energy have important significance for adjusting energy structures in China and realizing carbon peak carbon neutralization targets, and at present, the main modes for exploiting geothermal energy comprise a water-collecting heat-taking mode and an enhanced geothermal energy development mode. Wherein, the directly extracted geothermal water is limited, forbidden to be extracted and even shut down in China due to ground settlement caused by direct extraction and water level falling funnels; the enhanced geothermal mode needs to fill high-pressure water into the stratum, and has the problems of polluting the stratum and causing secondary geological disasters such as ground cracks. Establishing a totally-enclosed geothermal energy extraction system and developing a green geothermal energy technology which can extract heat but not extract water becomes urgent.
The fully-closed geothermal energy extraction technology is a new geothermal energy extraction technology developed in recent years, and a heat-taking medium circularly completes heat-taking and heat-releasing processes in a fully-closed pipeline system, and comprises different forms of a single-well concentric tube heat exchanger, a horizontal-well buried tube heat exchanger, a U-shaped butt-joint well heat exchanger, a heat pipe and the like. The technology is that a closed heat extraction pipe column is installed in a well hole, and the outer wall of the heat extraction pipe column is contacted with underground heat storage fluid; when the heat taking medium in the heat taking pipe column flows through the heat taking section, heat exchange is carried out between the heat taking medium and the heat storage fluid through the pipe wall, the heat taking medium absorbing geothermal energy returns to the ground through the inner pipe annulus and the outer pipe annulus, and the ground heat exchanger releases the heat energy carried by the heat taking medium to a heat supply user.
In the existing totally-enclosed geothermal energy extraction system, geothermal water in pores of a heat storage stratum exchanges heat with a heat extraction pipe column by means of natural convection. The natural convection flow rate of the geothermal water in the pores of the heat storage stratum is slow, so that the heat exchange strength between the geothermal water and the heat extraction pipe column is low, the temperature of the geothermal water in the adjacent area of the heat extraction pipe column is reduced, and the geothermal water at a far position cannot be supplemented in time. The heat taking medium is not contacted with the heat storage stratum, which is the advantage of the totally-enclosed geothermal energy extraction technology, but the heat storage fluid can only exchange heat with the medium in the heat taking pipe through natural convection in the pores of the stratum, so that the heat exchange efficiency is greatly reduced, and the heat taking power of the totally-enclosed geothermal energy extraction technology is far lower than that of a large-displacement water-taking heat-taking mode and an enhanced geothermal energy mode. How to improve the heat exchange efficiency between a heat taking medium and a heat storage stratum through totally-enclosed geothermal energy extraction is a technical problem to be solved urgently in the field.
SUMMERY OF THE UTILITY MODEL
The utility model aims to provide equipment for enhancing the heat supply efficiency of a single geothermal well, which greatly improves the heat supply capacity of a heat storage stratum and the heat exchange efficiency between a heat taking medium and a heat storage fluid and solves the technical problems in the prior art.
In order to achieve the purpose, the technical scheme of the utility model is as follows:
a device for enhancing heat supply efficiency of a single geothermal well is characterized in that a heat extraction pipe column is arranged in the center of a well completion section of a main geothermal well, a second well completion sleeve is arranged outside the heat extraction pipe column, and a geothermal well bore annulus is arranged between the heat extraction pipe column and the second well completion sleeve; a heat taking stratum is arranged below the completion section, the heat taking stratum is provided with a heat taking section which is connected with the heat taking pipe column into a whole, and the tail end of the heat taking section is closed; a heat taking annulus of the heat taking stratum is connected with a geothermal shaft annulus into a whole, and a sieve tube II is arranged in the heat taking annulus; the heat taking pipe column, the heat taking section and the heat taking pipe form a sleeve structure with a closed outer cylinder tail end, and a heat taking medium enters the tail end of the heat taking section from the heat taking pipe and returns through an annular space between the heat taking pipe column, the heat taking section and the heat taking pipe to form a totally closed system for circularly taking heat; it is characterized in that: arranging a branch well communicated with the geothermal well main well above a heat taking stratum of the geothermal well main well, wherein the branch well is an inclined well or a horizontal well; the target layer of the branch well terminal point and the heat taking annulus of the geothermal well main well are positioned in the same heat taking stratum, and a well completion pipe column with a through hole on the pipe wall is arranged at the target layer of the branch well terminal point; the other part of the branch well is provided with a first completion sleeve, and the first completion sleeve is connected with a second completion sleeve arranged in the annulus of the geothermal wellbore into a whole; an annular upper packer and an annular lower packer are arranged between a second completion casing of the geothermal well main well and the heat extraction pipe column, and the upper packer and the lower packer are respectively positioned above and below the joint of the geothermal well main well and the branch well so as to seal and separate a geothermal well shaft annulus between the heat extraction pipe column and the second completion casing; the upper packer can pass through a cable, and the lower packer can pass through the cable and the overflowing nipple, so that a communicating channel is formed by a screen pipe II of a geothermal well main well, a heat taking annulus, the overflowing nipple, a branch well and a well completion pipe string with a through hole in the pipe wall; a circulating pump is arranged in the heat taking annulus below the lower packer, the outlet of the circulating pump is connected with an overflowing nipple, and the circulating pump is powered by a cable; the overflowing nipple and the cable both penetrate through the lower packer.
The well completion pipe string with the through hole on the pipe wall comprises a screen pipe or a slotted liner pipe and the like.
The overflowing nipple penetrates through the lower packer to communicate the upper space with the lower space of the lower packer.
The circulating pump is an electric submersible pump centrifugal pump.
The ground of the geothermal well main well is provided with power supply equipment which is connected with a circulating pump through a cable; the ground of the geothermal well main well is provided with a water pump and a heat exchanger unit, the water pump and the heat exchanger unit are connected with a totally closed system for circularly taking heat through a heat exchange pipeline, and the heat exchanger unit is connected with a heat supply user after heat exchange.
And heat-extracting pipes are arranged in the heat-extracting pipe column and the heat-extracting pipes respectively.
When the heat-taking medium starts to circularly take heat in the totally-enclosed system, the circulating pump is started, geothermal water in the heat-taking stratum enters the heat-taking annular space from the sieve tube II, then enters the branch well through the circulating pump and the overflowing nipple via the joint of the main well and the branch well of the geothermal well, and then flows into the heat-taking stratum through the sieve tube I of the branch well, so that the reinforced circulation of the geothermal water in the heat storage stratum is realized.
More specifically, the method comprises the following steps: drilling a branch well in the geothermal well main well above a heat taking stratum, respectively arranging an upper packer and a lower packer above and below the joint of the geothermal well main well and the branch well, wherein the upper packer can pass through a cable, and the lower packer can pass through the cable and an overflowing short section to enable a sieve tube II, a heat taking annulus, the overflowing short section, the branch well and the sieve tube I of the geothermal well main well to form a communicated channel; the forced convection of the geothermal water improves the heat exchange strength between the geothermal water and the heat extraction pipe column on the one hand, and the geothermal water in a large range is transferred to participate in heat exchange on the other hand, so that the temperature of the geothermal water in the heat extraction annular space is kept basically constant.
The utility model is constructed on the basis of the existing totally-enclosed system for circularly taking heat, and is suitable for various totally-enclosed geothermal energy extraction systems such as a single-well concentric tube heat exchanger, a horizontal-well buried tube heat exchanger, a heat pipe and the like.
The utility model has the beneficial effects that: the utility model is implemented on the basis of the full closed system for circularly taking heat in the prior art, and forced convection is formed by circulating geothermal water in the range of a heat-taking stratum, thereby well making up the defects of the prior art, and greatly improving the heat supply capacity of stratum heat storage and the heat exchange efficiency between a heat-taking medium and the heat storage; compared with a water extraction heat extraction mode, the method does not extract underground water; compared with enhanced geothermal energy, the utility model does not inject external fluid into the stratum, and does not have the problems of polluting the stratum and fracturing the stratum. The utility model can effectively improve the heat extraction power under the condition of meeting the requirements of environment-friendly development of geothermal energy.
Drawings
FIG. 1 is a schematic structural diagram of an embodiment of the present invention;
FIG. 2 is a schematic structural diagram of a second embodiment of the present invention;
in the figure: the system comprises the ground 1, power supply equipment 2, a cable 3, a connecting part 4 of a main well and a branch well of the geothermal well, geothermal water 5, a first well completion casing 6, a branch well 7, a circulating pump 8, a first sieve tube 9, a heat taking stratum 10, a geothermal well bore annulus 11, a heat taking annulus 11-1, an upper packer 12, a heat insulation layer 13, a heat taking medium 14, a heat taking pipe column 15, a heat taking section 15-1, a heat exchange pipeline 16, a water pump 17, a heat exchange unit 18, a heat supply user 19, a lower packer 20, an overflowing nipple 21, a second well completion casing 22, a second sieve tube 23 and a heat taking pipe 24.
Detailed Description
The present invention will be further described by way of examples with reference to the accompanying drawings.
A device for enhancing heat supply efficiency of a single geothermal well is characterized in that a heat extraction pipe column 15 is arranged in the center of a well completion section of a main geothermal well, a second completion casing 22 is arranged outside the heat extraction pipe column 15, and a geothermal well bore annulus 11 is arranged between the heat extraction pipe column 15 and the second completion casing 22; a heat extraction stratum 10 is arranged below the completion section, the heat extraction stratum 10 is provided with a heat extraction section 15-1 which is connected with a heat extraction pipe column 15 into a whole, and the tail end of the heat extraction section 15-1 is closed; a heat taking annular space 11-1 of the heat taking stratum 10 is connected with the geothermal wellbore annular space 11 into a whole, and a screen pipe II 23 is arranged in the heat taking annular space 11-1; a heat taking pipe 24 is arranged in the heat taking pipe column 15 and the heat taking section 15-1, the heat taking pipe column 15, the heat taking section 15-1 and the heat taking pipe 24 form a sleeve structure with a closed outer cylinder tail end, a heat taking medium 14 enters the tail end of the heat taking section 15-1 from the heat taking pipe 24 and returns through an annular space between the heat taking pipe column 15 and the heat taking section 15-1 and the heat taking pipe 24 to form a totally closed system for circularly taking heat; it is characterized in that: a branch well 7 communicated with the geothermal well main well is arranged above a heat taking stratum 10 of the geothermal well main well, and the branch well 7 is an inclined well or a horizontal well; a target layer at the terminal point of the branch well 7 and a heat extraction annulus 11-1 of the geothermal well main well are positioned in the same heat extraction stratum, and a well completion pipe string with a through hole on the pipe wall is arranged at the target layer at the terminal point of the branch well 7; the other part of the branch well 7 is provided with a first completion casing 6, and the first completion casing 6 is connected with a second completion casing 22 arranged in the geothermal wellbore annulus 11 into a whole; an annular upper packer 12 and an annular lower packer 20 are arranged between a second completion casing 22 of the geothermal well main well and the heat extraction pipe string 15, and the upper packer 12 and the lower packer 20 are respectively positioned above and below a junction 4 of the geothermal well main well and the branch well so as to seal off a geothermal well bore annulus 11 between the heat extraction pipe string 15 and the second completion casing 22; the upper packer 12 can pass through the cable 3, and the lower packer can pass through the cable 3 and the overflowing nipple 21, so that a communicating channel is formed by a second sieve tube 23 of the geothermal well main well, the heat taking annulus 11-1, the overflowing nipple 21, the branch well 7 and a well completion pipe string with a through hole in the pipe wall; a circulating pump 8 is arranged in the heat taking annular space 11-1 below the lower packer 20, the outlet of the circulating pump 8 is connected with an overflowing nipple 21, and the circulating pump 8 is powered by a cable 3; both the flow nipple 21 and the cable 3 pass through the lower packer 20.
The completion pipe string with the through holes on the pipe wall comprises a first sieve pipe 9 or a slotted liner pipe and the like.
The overflowing nipple 21 penetrates through the lower packer 20 to communicate the upper space and the lower space of the lower packer 20.
The circulating pump 8 is an electric submersible pump centrifugal pump.
The ground 1 of the geothermal well main well is provided with a power supply device 2 which is connected with a circulating pump 8 through a cable 3; a water pump 17 and a heat exchanger unit 18 are arranged on the ground 1 of the geothermal well main well, the water pump 17 and the heat exchanger unit 18 are connected with a totally-enclosed system for circularly taking heat through a heat exchange pipeline 16, and the heat exchanger unit 18 is connected with a heat supply user 19 after heat exchange.
And the heat extraction pipe column 15 and the heat extraction pipe 24 are internally provided with heat insulation layers 13.
When the heat taking medium 14 starts to circularly take heat in a fully-closed system, the circulating pump 8 is started, geothermal water 5 in the heat taking stratum 10 enters the heat taking annular space 11-1 from the sieve tube II 23, then enters the branch well 7 through the circulating pump 8 and the overflowing nipple 21 through the joint 4 of the main well and the branch well of the geothermal well, and then the geothermal water 5 flows downwards through the sieve tube I9 of the branch well and flows into the heat taking stratum 10, so that the reinforced circulation of the geothermal water in the heat storage stratum is realized.
More specifically, the method comprises the following steps: drilling a branch well 7 in a geothermal well main well above a heat taking stratum 10, respectively arranging an upper packer 12 and a lower packer 20 above and below a junction 4 of the geothermal well main well and the branch well, wherein the upper packer 12 can pass through a cable 3, and the lower packer 20 can pass through the cable 3 and a flow short section 21, so that a second sieve tube 23, a heat taking annular 11-1, a flow short section 21, the branch well 7 and a first sieve tube 9 of the geothermal well main well form a communicated channel, and geothermal water 5 flows in the channel under the driving of a circulating pump 8, so that geothermal water 5 in the geothermal well main well heat taking annular 11-1 generates forced convection; forced convection of the geothermal water 5 improves the heat exchange strength between the geothermal water 5 and the heat extraction pipe column 15 on one hand, and transfers the geothermal water in a large range to participate in heat exchange on the other hand so as to keep the temperature of the geothermal water 5 in the heat extraction annular space 11-1 basically constant.
The utility model is constructed on the basis of the existing totally-enclosed system for circularly taking heat, and is suitable for various totally-enclosed geothermal energy extraction systems such as a single-well concentric tube heat exchanger, a horizontal-well buried tube heat exchanger, a heat pipe and the like.
The utility model comprises two embodiments.
First embodiment, referring to fig. 1, the present invention is applied to a specific embodiment of a single vertical well coaxial tube closed heat exchanger:
1) after the completion of the geothermal well main well, an inclined branch well 7 is drilled on the upper side of a heat taking stratum 10 in a windowing and side drilling mode, a target layer of the branch well 7 and a heat taking annular space 11-1 of the geothermal well main well are located on the same heat taking stratum, a connecting part 4 of the geothermal well main well and the branch well is located above the heat taking stratum 10, and the branch well 7 inclines downwards to enter the heat taking stratum 10. A screen pipe I9 is arranged at the target layer part of the branch well 7 for well completion, and a well completion sleeve I6 is arranged at the other part of the branch well 7;
2) a heat extraction pipe column 15 is put in and connected with ground heat exchange equipment to form a totally-closed geothermal circulation heat extraction system;
3) after an outlet of the circulating pump 8 is connected with the overflowing nipple 21, the circulating pump is lowered into the geothermal wellbore annulus 11 to a first completion casing 23 below the geothermal wellbore annulus 11, and the circulating pump 8 obtains electric energy from the ground power supply equipment 2 through the cable 3;
4) a lower packer 20 is arranged in the geothermal well shaft annulus 11 and a second completion casing 22 section below the junction 4 of the geothermal well main well and the branch well, and the lower packer can seal a heat extraction annulus 11-1 between a heat extraction pipe column 15 and the second completion casing 22 in the geothermal well through a cable 3 and an overflowing nipple 21;
5) an upper packer 12 is arranged in the geothermal well shaft annular space and above the junction 4 of the geothermal well main well and the branch well, and the upper packer can seal the heat extraction annular space 11-1 between the heat extraction pipe column 15 and the well completion casing pipe II 22 in the geothermal well through a cable 3;
6) and (3) starting the circulating pump 8, allowing geothermal water 5 in the pores of the geothermal heat-taking stratum 10 to enter the heat-taking annulus 11-1 from the screen pipe II 23 of the geothermal wellbore, ascending sequentially through the circulating pump 8, the overflowing nipple 21 and the junction 4 of the geothermal well main well and the branch well, and then entering the branch well 7, and then flowing into the heat-taking stratum 10 from the screen pipe I9 of the branch well 7, so that the geothermal water 5 forms forced convection in the heat-taking annulus 11-1.
According to the utility model, geothermal water in a larger range around the geothermal well is fully adjusted, so that on one hand, the geothermal water 5 in the heat extraction annular space 11-1 keeps a basically constant temperature for a long time, and on the other hand, forced convection formed in the heat extraction annular space 11-1 can greatly improve the heat exchange strength between the geothermal water 5 and the heat extraction pipe column 15.
In the second embodiment, referring to fig. 2, the utility model is applied to a single horizontal well coaxial tube closed heat exchanger.
After the heat taking main well is vertical to the ground and reaches a heat taking stratum 10, the heat taking main well starts to be bent into a horizontally arranged heat taking main well, and a heat taking pipe column 15 which is put in is bent into a shape which is the same as the whole shape of the heat taking main well. The rest of the structure is the same as the first embodiment.
When the heat taking medium 14 starts to circularly take heat in a fully-closed system, the circulating pump 8 is started, geothermal water 5 in the heat taking stratum 10 enters the heat taking annulus 11-1 from the sieve tube II 23, then enters the branch well 7 through the circulating pump 8 and the overflowing nipple 21 through the joint 4 of the main well and the branch well of the geothermal well, and then the geothermal water 5 flows downwards through the sieve tube I9 of the branch well and flows into the heat taking stratum 10, so that the intensified circulation of the geothermal water in the heat storage stratum is realized, and the temperature of the geothermal water 5 in the heat taking annulus 11-1 is kept basically constant.
Claims (4)
1. A device for enhancing heat supply efficiency of a single geothermal well is characterized in that a heat extraction pipe column (15) is arranged in the center of a well completion section of a main geothermal well, a second completion casing (22) is arranged outside the heat extraction pipe column (15), and a geothermal well bore annulus (11) is arranged between the heat extraction pipe column (15) and the second completion casing (22); a heat extraction stratum (10) is arranged below the completion section, the heat extraction stratum (10) is provided with a heat extraction section (15-1) which is connected with a heat extraction pipe column (15) into a whole, and the tail end of the heat extraction section (15-1) is closed; a heat taking annular space (11-1) of the heat taking stratum (10) is connected with the geothermal well bore annular space (11) into a whole, and a screen pipe II (23) is arranged in the heat taking annular space (11-1); a heat taking pipe (24) is arranged in the heat taking pipe column (15) and the heat taking section (15-1), the heat taking pipe column (15), the heat taking section (15-1) and the heat taking pipe (24) form a sleeve structure with a closed outer cylinder tail end, a heat taking medium (14) enters the tail end of the heat taking section (15-1) from the heat taking pipe (24) and returns through an annular space between the heat taking pipe column (15), the heat taking section (15-1) and the heat taking pipe (24) to form a totally closed system for circularly taking heat; the method is characterized in that: a branch well (7) communicated with the geothermal well main well is arranged above a heat taking stratum (10) of the geothermal well main well, and the branch well (7) is an inclined well or a horizontal well; a target layer at the terminal point of the branch well (7) and a heat extraction annular space (11-1) of the geothermal well main well are positioned in the same heat extraction stratum, and a well completion pipe column with a through hole on the pipe wall is arranged at the target layer at the terminal point of the branch well (7); the other part of the branch well (7) is provided with a first completion casing (6), and the first completion casing (6) is connected with a second completion casing (22) arranged in the geothermal wellbore annulus (11) into a whole; an annular upper packer (12) and an annular lower packer (20) are arranged between a second completion casing (22) of the main geothermal well and the heat extraction pipe column (15), and the upper packer (12) and the lower packer (20) are respectively positioned above and below a joint (4) of the main geothermal well and the branch well so as to seal an annular space (11) of the geothermal well between the heat extraction pipe column (15) and the second completion casing (22); the upper packer (12) can pass through the cable (3), and the lower packer can pass through the cable (3) and the overflowing nipple (21), so that a communicating channel is formed by a second screen pipe (23) of the geothermal well main well, a heat taking annular space (11-1), the overflowing nipple (21), the branch well (7) and a well completion pipe string with a through hole in the pipe wall; a circulating pump (8) is arranged in a heat taking annular space (11-1) below the lower packer (20), an outlet of the circulating pump (8) is connected with an overflowing nipple (21), and the circulating pump (8) is powered by a cable (3); the overflowing nipple (21) and the cable (3) both penetrate through the lower packer (20).
2. An apparatus for intensifying the heating efficiency of a single-type geothermal well according to claim 1, wherein: the completion pipe string with the through hole on the pipe wall comprises a first sieve pipe (9) or a slotted liner pipe.
3. An apparatus for intensifying the heating efficiency of a single-type geothermal well according to claim 1 or 2, wherein: the overflowing nipple (21) penetrates through the lower packer (20) to communicate the upper space with the lower space of the lower packer (20).
4. An apparatus for intensifying the heating efficiency of a single-type geothermal well according to claim 1 or 2, wherein: the ground (1) of the geothermal well main well is provided with a power supply device (2) which is connected with a circulating pump (8) through a cable (3); the ground (1) of the geothermal well main well is provided with a water pump (17) and a heat exchanger unit (18), the water pump (17) and the heat exchanger unit (18) are connected with a totally-enclosed system for circularly taking heat through a heat exchange pipeline (16), and the heat exchanger unit (18) is connected with a heat supply user (19) after heat exchange.
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