DYNAMICALLY SELF-BALANCING PRESSURIZED BOREHOLE-SEALING APPARATUS AND METHOD THEREOF FOR COAL SEAM GAS PRESSURE MEASUREMENT
20190323340 ยท 2019-10-24
Inventors
- Wei Lu (Qingdao, CN)
- Zhen Liu (Qingdao, CN)
- Guansheng Qi (Qingdao, CN)
- Jinliang Li (Qingdao, CN)
- Dongling Sun (Qingdao, CN)
- Weimin Cheng (Qingdao, CN)
- Dong Wang (Qingdao, CN)
- Chuanrui Qin (Qingdao, CN)
Cpc classification
E21B33/1246
FIXED CONSTRUCTIONS
E21F17/00
FIXED CONSTRUCTIONS
International classification
Abstract
Provided are a dynamically self-balancing pressurized borehole sealing apparatus and a method thereof for coal seam gas pressure measurement, wherein the dynamically self-balancing pressurized borehole sealing apparatus for coal seam gas pressure measurement comprises a pressure measuring tube arranged in a borehole, one end of the pressure measuring tube is provided with a pressure measuring unit for measuring a gas pressure, the pressure measuring tube is surrounded and wrapped with an expansion airbag, the pressure measuring tube is provided with a pressure introducing hole communicating with the expansion airbag, both sides of the expansion airbag on the pressure measuring tube are surrounded and wrapped with a front borehole sealing airbag and a rear borehole sealing airbag respectively, a gel injection chamber is reserved between the three of the front borehole sealing airbag, the rear borehole sealing airbag and the expansion airbag and an inner side of the borehole, the gel injection chamber is filled with a sealing gel body, the front borehole sealing airbag and the rear borehole sealing airbag are connected to an inflating unit outside the borehole through an inflating pipe, and the gel injection chamber is connected to a gel injecting unit outside the borehole through a gel injection pipe. The present disclosure has the following benefits: a coal seam borehole sealing effect of coal seam gas pressure measurement is effectively improved and the coal seam gas pressure can be measured accurately.
Claims
1. A dynamically self-balancing pressurized borehole sealing apparatus for coal seam gas pressure measurement, comprising a pressure measuring tube arranged in a borehole, wherein one end of the pressure measuring tube is provided with a pressure measuring unit for measuring a gas pressure, an expansion airbag is surrounded and wrapped on the pressure measuring tube, a pressure introducing hole is opened on the pressure measuring tube, the pressure introducing hole communicates with the expansion airbag, both sides of the expansion airbag on the pressure measuring tube are surrounded and wrapped with a front borehole sealing airbag and a rear borehole sealing airbag respectively, a gel injection chamber is reserved between the three of the front borehole sealing airbag, the rear borehole sealing airbag and the expansion airbag and an inner wall of the borehole, the gel injection chamber is filled with a sealing gel body, the front borehole sealing airbag and the rear borehole sealing airbag are connected to an inflating unit outside the borehole through an inflating pipe, and the gel injection chamber is connected to a gel injecting unit outside the borehole through a gel injection pipe.
2. The dynamically self-balancing pressurized borehole sealing apparatus for coal seam gas pressure measurement according to claim 1, wherein a side that is on the front borehole sealing airbag and the rear borehole sealing airbag and faces the expansion airbag is provided with an annular baffle surrounding the pressure measuring tube respectively.
3. The dynamically self-balancing pressurized borehole sealing apparatus for coal seam gas pressure measurement according to claim 1, wherein the other end of the pressure measuring tube is connected with a sieving tube and a plurality of sieve pores are opened on an end of the sieving tube.
4. The dynamically self-balancing pressurized borehole sealing apparatus for coal seam gas pressure measurement according to claim 3, wherein an end of the sieving tube is provided with a cone-shaped cap covering the sieve pores.
5. The dynamically self-balancing pressurized borehole sealing apparatus for coal seam gas pressure measurement according to claim 1, wherein a tube diameter of a part that is on the pressure measuring tube and surrounded and wrapped by the expansion airbag is less than the tube diameter of a part that is not surrounded and wrapped by the expansion airbag.
6. The dynamically self-balancing pressurized borehole sealing apparatus for coal seam gas pressure measurement according to claim 1, wherein the part that is on the pressure measuring tube and surrounded and wrapped by the expansion airbag is provided with a pressure introducing hole.
7. The dynamically self-balancing pressurized borehole sealing apparatus for coal seam gas pressure measurement according to claim 1, wherein the sealing gel body is formed by blending water glass gel and high water absorbent resin.
8. The dynamically self-balancing pressurized borehole sealing apparatus for coal seam gas pressure measurement according to claim 1, wherein one end of the pressure measuring tube is provided with a wooden stopper.
9. A dynamically self-balancing pressurized borehole sealing method for coal seam gas pressure measurement, the method being applied to the dynamically self-balancing pressurized borehole sealing apparatus for coal seam gas pressure measurement according to claim 1, and comprising: at step 1, communicating an expansion airbag with a pressure measuring tube through a pressure introducing hole, assembling a baffle and a rear borehole sealing airbag at an inner side of the expansion airbag on the pressure measuring tube, assembling a baffle and a front borehole sealing airbag at an outer side of the expansion airbag on the pressure measuring tube, connecting the front borehole sealing airbag and the rear borehole sealing airbag to an inflating unit outside a borehole through an inflating pipe, connecting a gel injection chamber to a gel injecting unit outside the borehole through a gel injection pipe, connecting one end of the pressure measuring tube to a pressure measuring unit and the other end of the pressure measuring tube to a sieving tube and placing the pressure measuring tube in the borehole; at step 2, performing sealing for the borehole by inflating the front borehole sealing airbag and the rear borehole sealing airbag with the inflating unit, wherein inflation pressures of the front borehole sealing airbag and the rear borehole sealing airbag are greater than an estimated gas pressure in the borehole; and injecting the sealing gel body into the gel injection chamber by the gel injecting unit, wherein a gel injection pressure of injecting the sealing gel body is greater than the estimated gas pressure in the borehole; and at step 3, along with increasing gas pressure in the borehole, a large quantity of gas surges into the pressure measuring tube from the borehole, a part of gas enters the expansion airbag through the pressure introducing hole to expand the expansion airbag, and expansion of the expansion airbag continuously squeezes the sealing gel body in the gel injection chamber to allow the sealing gel body to enter fracture-pores of a coal rock around the borehole, realizing dynamically pressurized sealing.
10. The dynamically self-balancing pressurized borehole sealing method for coal seam gas pressure measurement according to claim 9, wherein a step 4 that the sealing gel body is injected again into the gel injection chamber by the gel injecting unit when the pressure measuring unit monitors no visible change of the gas pressure in the borehole, is further included, wherein the gel injection pressure is greater than the gas pressure in the borehole.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0020] To describe technical solutions of the examples of the present disclosure and the prior art more clearly, brief descriptions will be made below to the accompanying drawings required for descriptions of the examples and the prior art. Apparently, the accompanying drawings described below are merely some examples of the present disclosure. Other drawings may be obtained by those skilled in the art based on these drawings without paying creative labor.
[0021]
[0022]
[0023]
[0024]
[0025]
[0026] In the drawings, 1 refers to a wooden stopper, 2 refers to a front borehole sealing airbag, 3 refers to a sealing gel body, 4 a rear borehole sealing airbag, 5 refers to a sieving tube, 6 refers to a gel injection pipe, 7 refers to an inflation pipe, 8 refers to a baffle, 9 refers to an expansion airbag, 10 refers to a pressure measuring tube, 11 refers to a pressure introducing hole, 12 refers to a borehole, 13 refers to an inflating pump, 14 is a gel injection pump, 15 refers to a pressure gauge, 16 refers to a fracture-pore, 17 refers to a coal rock.
DETAILED DESCRIPTION OF THE EMBODIMENTS
[0027] As shown in
[0028] An annular expansion airbag 9 is surrounded and wrapped on a borehole sealing segment of the pressure measuring tube 10, and the expansion airbag 9 is completely airtight, soft in texture and has expandable deformability. An inner diameter of the expansion airbag 9 is determined according to a tube diameter of the borehole sealing segment of the pressure measuring tube 10, the expansion airbag 9 is completely adhered to the borehole sealing segment of the pressure measuring tube 10, an outer diameter of the expansion airbag 9 is determined according to a hole diameter of the borehole 12 and usually is 0.8-1.2 times the hole diameter.
[0029] The pressure measuring tube 10 is provided with a pressure introducing hole 11 communicating with the expansion airbag 9 so that a part of gas released from a coal seam is introduced into the expansion airbag 9 through the pressure introducing hole 11. The pressure introducing hole 11 may communicate with the expansion airbag 9 through a gas transporting pipe. In the example, the pressure introducing hole 11 is opened on a part that is on the pressure measuring tube 10 and surrounded and wrapped by the expansion airbag 9 to realize communication of the pressure introducing hole 11 and the expansion airbag 9, simplifying a structure and avoiding gas leakage at a connection due to an insecure connection with the gas transporting pipe.
[0030] The pressure measuring tube 10 is a reducing tube and the tube diameter of the part that is on the pressure measuring tube 10 and surrounded and wrapped by the expansion airbag 9 is less than that of the part that is not surrounded and wrapped by the expansion airbag 9. The tube diameter of the part that is on the pressure measuring tube 10 and surrounded and wrapped by the expansion airbag 9 is of the tube diameters of both ends. Both sides of the expansion airbag 9 on the pressure measuring tube 10 are surrounded and wrapped by an annular front borehole sealing airbag 2 and an annular rear borehole sealing airbag 4 respectively. The inner diameters of the front borehole sealing airbag 2 and the annular rear borehole sealing airbag 4 are determined according to a tube diameter of both sides of the borehole sealing segment of the pressure measuring tube 10, and outer diameters of the front borehole sealing airbag 2 and the annular rear borehole sealing airbag 4 are determined according to a hole diameter of the borehole 12, and usually are 0.8-1.0 times the hole diameter.
[0031] An annular baffle 8 surrounding the pressure measuring tube 10 is arranged on a side that is on the front borehole sealing airbag 2 and the rear borehole sealing airbag 4 and faces the expansion airbag 9 respectively. The front borehole sealing airbag 2 and the rear borehole sealing airbag 4 are fixed on both ends of the pressure measuring tube 10 through the baffle 8, and a sealing gel body 3 in a gel injection chamber will not be squeezed to the front borehole sealing airbag 2 and the rear borehole sealing airbag 4, thereby ensuring airtightness of the borehole 12. The gel injection chamber is reserved between the three of the front borehole sealing airbag 2 (or the baffle 8 at the position of the front borehole sealing airbag 2), the rear borehole sealing airbag 4 (or the baffle 8 at the position of rear borehole sealing airbag 4) and the expansion airbag 9 and an inner wall of the borehole 12 and the gel injection chamber is filled with the sealing gel body 3. The sealing gel body 3 is formed by blending water glass gel and high water absorbent resin and has particular fluidity and stickiness and its water retention can continue for more than one month in the coal seam environment. The front borehole sealing airbag 2 and the rear borehole sealing airbag 4 are connected to an inflating unit outside the borehole 12 through an inflating pipe 7 and the inflating unit in the example is an inflating pump 13. The gel injection chamber is connected to a gel injecting unit outside the borehole 12 through a gel injection pipe 6 and the gel injecting unit in the example is a gel injection pump 14.
[0032] A dynamically self-balancing pressurized borehole sealing method for coal seam gas pressure measurement is also provided in an example of the present disclosure. The method may be applied to the dynamically self-balancing pressurized borehole sealing apparatus for coal seam gas pressure measurement as above and may include the following steps.
[0033] At step 1, the expansion airbag 9 is communicated with the pressure measuring tube 10 through the pressure introducing hole 11, the baffle 8 and the rear borehole sealing airbag 4 are assembled at an inner side of the expansion airbag 9 on the pressure measuring tube 10, and the baffle 8 and the front borehole sealing airbag 2 are assembled at an outer side of the expansion airbag 9 on the pressure measuring tube 10, the front borehole sealing airbag 2 and the rear borehole sealing airbag 4 are connected to the inflating pump 13 outside the borehole 12 through the inflating pipe 7, the gel injection chamber is connected to the gel injection pump 14 outside the borehole through the gel injection pipe 6, one end of the pressure measuring tube 10 is connected with the pressure gauge 15, the other end of the pressure measuring tube 10 is connected to the sieving tube 5, the pressure measuring tube 10 is placed in the borehole 12 and one end of the pressure measuring tube 10 is snap-fitted with the wooden stopper 1.
[0034] At step 2, the borehole 12 is initially sealed by inflating the front borehole sealing airbag 2 and the rear borehole sealing airbag 4 with the inflating pump 13, the gel injection chamber between the three of the front borehole sealing airbag 2 (or the baffle 8 at the position of the front borehole sealing airbag 2), the rear borehole sealing airbag 4 (or the baffle 8 at the position of the rear borehole sealing airbag 4) and the expansion airbag 9 and an inner wall of the borehole 12 is also sealed into a closed space after the front borehole sealing airbag 2 and the rear borehole sealing airbag 4 are inflated, where the inflation pressures of the front borehole sealing airbag 2 and the rear borehole sealing airbag 4 are 0.5 MPa or more greater than an estimated gas pressure in the borehole 12; the gel injection chamber is injected with the sealing gel body 3 by the gel injection pump 14, the sealing gel body 3 completely squeezes the gas out of the expansion airbag 9 and a part of sealing gel body 3 is infiltrated into fracture-pores 16 of a coal rock 17, thereby realizing initial sealing of the borehole 12, where a gel injection pressure of injecting the sealing gel body 3 is 1 MPa or more greater than the estimated gas pressure in the borehole 12.
[0035] At step 3, along with increasing gas pressure in the borehole 12, a large quantity of gas continuously surges into the pressure measuring tube 10 from the borehole 12 and a part of gas enters the expansion airbag 9 through the pressure introducing hole 11 to expand the expansion airbag 9, the expansion airbag 9 continuously squeezes the sealing gel body 3 in the gel injection chamber due to its expansion to allow the sealing gel body 3 to slowly enter the fracture-pores 16 of the coal rocks 17 around the borehole 12. Thus, the gas in the region where the gas pressure is measured is prevented from leaking through the fracture-pores 16, thereby avoiding a lower measured gas pressure. As new fracture-pores 16 are formed continuously due to changes of the coal rocks 17, the sealing gel body 3 will be squeezed slowly into the new fracture-pores 16 again, realizing the purpose of dynamically pressurized sealing.
[0036] At step 4, when the pressure gauge 15 monitors no visible changes of the gas pressure in the borehole 12, the sealing gel body 3 is injected again into the gel injection chamber by the gel injection pump 14 with the gel injection pressure 1 MPa or more greater than the estimated gas pressure in the borehole 12 so that gas in the expansion airbag 9 is completely squeezed out to ensure that subsequent gas pressure continues to squeeze the sealing gel body 3 through the expansion airbag 9, thereby achieving a better dynamically pressurized sealing effect. When the gas pressure reaches a maximum value and will not change visibly, the most accurate coal seam gas pressure value can be measured by the pressure gauge 15.
[0037] The dynamically self-balancing pressurized borehole sealing apparatus and the method thereof for coal seam gas pressure measurement in the example effectively improve the sealing effect of the coal seam bore hole 12 for coal seam gas pressure measurement and obtains an accurate coal seam gas pressure; without using an external continuous pressure source, a borehole sealing effect that the sealing gel body 3 may be squeezed into the fracture-pores 16 of the coal rocks 17 more forcefully with a larger gas pressure so that a better airtightness of the coal seam borehole 12 is achieved, thereby realizing a dynamic self-balancing, is realized.
[0038] Of course, the above descriptions are not intended to limit the present disclosure and the present disclosure is not limited to the above examples. Any changes, modifications, addition or substitutions made by those skilled in the art within the substantial scope of the present disclosure shall all fall within the scope of the protection of the present disclosure.