CN102129810A - Physical simulation device for seepage of mine water - Google Patents

Physical simulation device for seepage of mine water Download PDF

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Publication number
CN102129810A
CN102129810A CN 201110034710 CN201110034710A CN102129810A CN 102129810 A CN102129810 A CN 102129810A CN 201110034710 CN201110034710 CN 201110034710 CN 201110034710 A CN201110034710 A CN 201110034710A CN 102129810 A CN102129810 A CN 102129810A
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China
Prior art keywords
cavity
water
bearing zone
mine
gushing
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CN 201110034710
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Chinese (zh)
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CN102129810B (en
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刘盛东
刘树才
许进鹏
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China University of Mining and Technology CUMT
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China University of Mining and Technology CUMT
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Publication of CN102129810B publication Critical patent/CN102129810B/en
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Abstract

The invention discloses a physical simulation device for the seepage of mine water and belongs to a mine water seepage simulation device. The physical simulation device comprises a bracket, wherein a simulation cavity capable of rotating at 360 DEG around a rotating shaft is installed on the bracket through the rotating shaft; the simulation cavity comprises an aquifer cavity and a bursting water quantity cavity communicated with the aquifer cavity; a screen sealing head is arranged between the aquifer cavity and the bursting water quantity cavity; four lines of electrode holes and two lines of sensor mounting holes are axially distributed on the outer wall of the aquifer cavity at equal intervals; an aquifer cavity end cover with a water inlet is arranged at the end part of the outer side of the aquifer cavity; two lines of sensor mounting holes are axially distributed on the outer wall of the bursting water quantity cavity at equal intervals; and a bursting water quantity cavity end cover with a water outlet is arranged at the end part of the outer side of the bursting water quantity cavity. The seepage of the mine water is simulated through filling a medium in the aquifer cavity. The physical simulation device has the beneficial effects of reasonable structure, convenience for operation and capability of realizing the simulation of water bursting characteristics of different solid media and key strata.

Description

Mine water seepage flow physical simulating device
Technical field:
The present invention relates to a kind of mine water seepage flow physical simulating device, belong to the mine water Seepage Flow Simulation Test Unit.Be particularly useful for the simulation of water bursting in mine environment, can realize to mine laneway meet head on, the gushing water environment of base plate, top board etc. and the physical simulation of gushing water amount, and to the simultaneous observation of hydraulic parameter and electrostatic field, change of temperature field in the underground water flow event.
Background technology:
Be subjected to the threat of mine water disaster in the Coal Production process, tend to occur that mine gushes, gushing water in tunnelling and working surface production process, bring to mine safety to seriously influence, the personnel's lives and properties and the economic loss that are caused are huge.Therefore the research of conducting shaft gushing water mechanism has important theory and practice significance.Research is based upon on-the-spot aspects such as outflow test, mechanics numerical simulation calculation and electric analogy mostly to water bursting in mine mechanism for a long time, has certain degree of difficulty and carry out physical simulation targetedly by seepage experimental apparatus, fails well to carry out.
Summary of the invention:
The purpose of this invention is to provide a kind of mine water seepage flow physical simulating device, to mine gush, the gushing water environment carries out physical simulation.
The present invention realizes with following technical scheme: a kind of mine water seepage flow physical simulating device is characterized in that: comprise support, by rotating shaft the simulation cavity that can carry out 360 ° of rotations around the shaft is installed on support; The gushing water amount cavity that described simulation cavity comprises the water-bearing zone cavity and is communicated with the water-bearing zone cavity is equiped with the screen cloth end socket between water-bearing zone cavity and gushing water amount cavity; Be equally spaced vertically on the chamber outer wall of described water-bearing zone four row electrode holes and two biographies sensor mounting holes are equipped with chamber, the water-bearing zone end cap of bringing the mouth of a river in the outboard end of water-bearing zone cavity; The two biographies sensor mounting holes that have been equally spaced vertically on described gushing water amount chamber outer wall, the outboard end of gushing water amount cavity is equipped with the gushing water amount chamber end cap that has water delivering orifice.
Technique scheme is on the basis of long-term mine water Study of Prevention Technology and numerical simulation study, combines the new development of mine geophysical prospecting.Physical simulation is carried out in tunnel and the prominent water burst environment of workplace, the hydraulic parameter and the geophysical field parameter of test flow event, and critical technical parameter such as sunykatuib analysis seepage environment and gushing water condition, gushing water water yield, for the mine water Study of Prevention Technology is provided fundamental basis and the technological guidance.Especially be implemented in the quantitative simulation of the gushing water water yield under quiet, the moving HYDRODYNAMIC CONDITION RELATING TO.For the research of the water bursting in mine mechanism and the gushing water water yield provides the experimental technique means, also be applicable to the control wate research and the engineering in fields such as Geotechnical Engineering, underground works.Have great researching value and wide application prospect at the groundwater dynamics in the mine water management field, mine geophysical field, mine water disaster control.
The invention has the beneficial effects as follows:
(1) device can carry out 360 ° of rotations, is applicable to that mine water seepage flow is met head in the tunnel, the collection of top board, three kinds of gushing water types of base plate and gushing water amount;
(2) can carry out that elementary errors is pressed, the accurate measurement of little water yield and seepage flow kinetic parameter, earth electric field, sound field, temperature field real-time parallel online observation simulation test;
(3) can carry out pore water, crevice water, tomography water, old empty water, karst water that mine laneway is met head on, to mine working face base plate karst crevice water, tomography water, karst collapse col umn water, to the physical simulation experiment of gushing water environment such as mine working face top board trickle, gushing water, the water of bursting and gushing water amount;
(4) the gushing water feature that can realize different solid dielectrics and key stratum is simulated.
Description of drawings
Fig. 1 is a perspective view of the present invention;
Fig. 2 is a main TV structure synoptic diagram of the present invention;
Fig. 3 is a side-looking structural representation of the present invention;
Fig. 4 is a plan structure synoptic diagram of the present invention;
Fig. 5 is support of the present invention and annular cover card connection synoptic diagram.
Among the figure: 1, chamber, water-bearing zone end cap, 2, electrode hole, 3, ring flange, 4, the sensor mounting hole, 5, the water-bearing zone cavity, 6, screen cloth end socket, 7, middle cavity, 8, annular cover card, 9, gushing water amount cavity, 10, support, 11, bolt, 12, gushing water amount chamber end cap, 13, rotating shaft.
Embodiment
As Fig. 1, Fig. 2, Fig. 3, Fig. 4 and shown in Figure 5, mine water seepage flow physical simulating device of the present invention mainly is made of support 10 and the simulation cavity that is installed on the support 10.The simulation cavity is installed on the support 10, can carry out 360 ° of rotations; The gushing water amount cavity 9 that the simulation cavity comprises water-bearing zone cavity 5 and is communicated with water-bearing zone cavity 5 is equiped with screen cloth end socket 6 at water-bearing zone cavity 5 and 9 of gushing water amount cavitys; Length according to experiment situation water-bearing zone cavity 5 and gushing water amount cavity 9 can be connected a plurality of cavitys compositions, and present embodiment adopts ring flange 3 to connect.Water-bearing zone cavity 5 among the figure and gushing water amount cavity 9 respectively are 2 joints, are connected with bolt 11 with ring flange 3.Water-bearing zone cavity 5 among the figure and gushing water amount cavity 9 respectively are 2 joints, are connected with bolt 11 with ring flange 3.Cavity 7 links together in water-bearing zone cavity 5 among the figure and gushing water amount cavity 9 usefulness.Screen cloth end socket 6 is installed in the middle cavity 7.In the outer wall of cavity 7 be provided with its annular of holding tightly cover card 8, the both sides of annular cover card 8 are fixed with rotating shaft 13 respectively, the other end of rotating shaft 13 flexibly connects with support 10, realizes simulating cavity and can carry out 360 ° of rotations around the shaft.Be equally spaced vertically on cavity 5 outer walls of described water-bearing zone four row electrode holes 2 and two biographies sensor mounting holes 4 are used to install data collectors such as temp probe, water pressure probe, sound field probe.Outboard end at water-bearing zone cavity 5 is equipped with chamber, the water-bearing zone end cap 1 of bringing the mouth of a river into; The two biographies sensor mounting holes 4 that have been equally spaced vertically on described gushing water amount cavity 9 outer walls, the outboard end of gushing water amount cavity 9 is equipped with the gushing water amount chamber end cap 12 that has water delivering orifice.In the hole of each electrode hole 2, all be equiped with the conduction nut of connection electrode.In each sensor mounting hole 4 sealing-plug is housed all.
Be connected with flange between above-mentioned water-bearing zone cavity 5 and middle cavity 7, middle cavity 7 and the gushing water amount cavity 9.Also can connect, but not influence protection scope of the present invention with other modes
360 ° of rotations of above-mentioned simulation cavity can be simulated the water body seepage flow mutation process of various roadway engineerings such as gurmy tunnel, inclined drift, vertical.

Claims (7)

1. a mine water seepage flow physical simulating device is characterized in that: comprise support (10), go up at support (10) and by rotating shaft (13) the simulation cavity that can carry out 360 ° of rotations around the shaft is installed; Described simulation cavity comprises water-bearing zone cavity (5) and the gushing water amount cavity (9) that is communicated with water-bearing zone cavity (5), is equiped with screen cloth end socket (6) between water-bearing zone cavity (5) and gushing water amount cavity (9); Be equally spaced vertically on described water-bearing zone cavity (5) outer wall four row electrode holes (2) and two biographies sensor mounting holes (4) are equipped with chamber, the water-bearing zone end cap (1) of bringing the mouth of a river in the outboard end of water-bearing zone cavity (5); The two biographies sensor mounting holes (4) that have been equally spaced vertically on described gushing water amount cavity (9) outer wall, the outboard end of gushing water amount cavity (9) is equipped with the gushing water amount chamber end cap (12) that has water delivering orifice.
2. mine water seepage flow physical simulating device according to claim 1, it is characterized in that: be connected with middle cavity (7) between the water-bearing zone cavity (5) of described simulation cavity and the gushing water amount cavity (9), water-bearing zone cavity (5) and gushing water amount cavity (9) with in cavity (7) link together.
3. mine water seepage flow physical simulating device according to claim 1 and 2 is characterized in that: described screen cloth end socket (6) is installed in the middle cavity (7).
4. mine water seepage flow physical simulating device according to claim 1 and 2 is characterized in that: be connected with flange between described water-bearing zone cavity (5) and middle cavity (7), middle cavity (7) and the gushing water amount cavity (9).
5. mine water seepage flow physical simulating device according to claim 1 and 2, it is characterized in that: on the outer wall of middle cavity (7), be equipped with its annular of holding tightly cover card (8), the both sides of annular cover card (8) are fixed with rotating shaft (13) respectively, and the other end of rotating shaft (13) and support (10) flexibly connect.
6. mine water seepage flow physical simulating device according to claim 1 is characterized in that: the conduction nut that all is equiped with connection electrode in the hole of described each electrode hole (2).
7. mine water seepage flow physical simulating device according to claim 1 is characterized in that: in described each sensor mounting hole (4) sealing-plug is housed all.
CN 201110034710 2011-01-25 2011-01-25 Physical simulation device for seepage of mine water Expired - Fee Related CN102129810B (en)

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Application Number Priority Date Filing Date Title
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CN102129810B CN102129810B (en) 2013-05-15

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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN110057682A (en) * 2019-04-30 2019-07-26 华北科技学院 Rich water deformation of the surrounding rock in tunnel unstability analog simulation pilot system

Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN101281186A (en) * 2008-05-19 2008-10-08 许延春 Method and device for detecting sand burst leaking destructive performance
CN201653865U (en) * 2010-01-23 2010-11-24 中国矿业大学 Experimental facility for compression and permeability characteristics of filling slurry of overburden separate-layer zone
CN202047815U (en) * 2011-01-25 2011-11-23 中国矿业大学 Mine water seepage simulator

Patent Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN101281186A (en) * 2008-05-19 2008-10-08 许延春 Method and device for detecting sand burst leaking destructive performance
CN201653865U (en) * 2010-01-23 2010-11-24 中国矿业大学 Experimental facility for compression and permeability characteristics of filling slurry of overburden separate-layer zone
CN202047815U (en) * 2011-01-25 2011-11-23 中国矿业大学 Mine water seepage simulator

Non-Patent Citations (3)

* Cited by examiner, † Cited by third party
Title
《中国煤炭地质》 20100331 刘静等 煤层顶板水渗流视电阻率响应实验研究 第50-55页 1-7 第22卷, 第3期 *
《岩石力学与工程学报》 20090228 刘盛东等 基于地下水渗流中地电场响应的矿井水害预警试验研究 第267-272页 1-7 第28卷, 第2期 *
《采矿与安全工程学报》 20100930 杨国勇等 突水断层水量预测的数值模拟 第351-355页 1-7 第27卷, 第3期 *

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN110057682A (en) * 2019-04-30 2019-07-26 华北科技学院 Rich water deformation of the surrounding rock in tunnel unstability analog simulation pilot system

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