CA2161779A1 - A method for sealing off grounds sites - Google Patents

A method for sealing off grounds sites

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Publication number
CA2161779A1
CA2161779A1 CA002161779A CA2161779A CA2161779A1 CA 2161779 A1 CA2161779 A1 CA 2161779A1 CA 002161779 A CA002161779 A CA 002161779A CA 2161779 A CA2161779 A CA 2161779A CA 2161779 A1 CA2161779 A1 CA 2161779A1
Authority
CA
Canada
Prior art keywords
soil
sealant
boreholes
injected
borehole
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Abandoned
Application number
CA002161779A
Other languages
French (fr)
Inventor
Klaus Kleiser
Hans-Joachim Bayer
Jorg Ganger
Klaus-Dieter Bilkenroth
Ortwin Caldonazzi
Herbert Baier
Manfred Heilmann
Hans-Jurgen Kretzschmar
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
FLOWTEX TECHNOLOGIE-IMPORT VON KABELVERLEGEMASCHINEN GmbH
Original Assignee
Individual
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Family has litigation
First worldwide family litigation filed litigation Critical https://patents.darts-ip.com/?family=25925358&utm_source=google_patent&utm_medium=platform_link&utm_campaign=public_patent_search&patent=CA2161779(A1) "Global patent litigation dataset” by Darts-ip is licensed under a Creative Commons Attribution 4.0 International License.
Application filed by Individual filed Critical Individual
Priority claimed from PCT/EP1994/001352 external-priority patent/WO1994025688A1/en
Publication of CA2161779A1 publication Critical patent/CA2161779A1/en
Abandoned legal-status Critical Current

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Classifications

    • EFIXED CONSTRUCTIONS
    • E21EARTH OR ROCK DRILLING; MINING
    • E21BEARTH OR ROCK DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
    • E21B33/00Sealing or packing boreholes or wells
    • E21B33/10Sealing or packing boreholes or wells in the borehole
    • E21B33/13Methods or devices for cementing, for plugging holes, crevices or the like
    • E21B33/138Plastering the borehole wall; Injecting into the formation
    • EFIXED CONSTRUCTIONS
    • E02HYDRAULIC ENGINEERING; FOUNDATIONS; SOIL SHIFTING
    • E02DFOUNDATIONS; EXCAVATIONS; EMBANKMENTS; UNDERGROUND OR UNDERWATER STRUCTURES
    • E02D31/00Protective arrangements for foundations or foundation structures; Ground foundation measures for protecting the soil or the subsoil water, e.g. preventing or counteracting oil pollution
    • EFIXED CONSTRUCTIONS
    • E02HYDRAULIC ENGINEERING; FOUNDATIONS; SOIL SHIFTING
    • E02DFOUNDATIONS; EXCAVATIONS; EMBANKMENTS; UNDERGROUND OR UNDERWATER STRUCTURES
    • E02D31/00Protective arrangements for foundations or foundation structures; Ground foundation measures for protecting the soil or the subsoil water, e.g. preventing or counteracting oil pollution
    • E02D31/002Ground foundation measures for protecting the soil or subsoil water, e.g. preventing or counteracting oil pollution
    • E02D31/006Sealing of existing landfills, e.g. using mining techniques

Landscapes

  • Engineering & Computer Science (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • Mining & Mineral Resources (AREA)
  • Environmental & Geological Engineering (AREA)
  • General Life Sciences & Earth Sciences (AREA)
  • General Engineering & Computer Science (AREA)
  • Paleontology (AREA)
  • Civil Engineering (AREA)
  • Hydrology & Water Resources (AREA)
  • Structural Engineering (AREA)
  • Geology (AREA)
  • Physics & Mathematics (AREA)
  • Fluid Mechanics (AREA)
  • Geochemistry & Mineralogy (AREA)
  • Consolidation Of Soil By Introduction Of Solidifying Substances Into Soil (AREA)
  • Processing Of Solid Wastes (AREA)

Abstract

The invention pertains to a process for sealing off ground sites (1), in particular a waste dump, abandoned dumping grounds, pipelines or the like, or also still be excavated construction sites, using sealants, wherein a fully course-controlled boring technique is used to drive at least one bore (2) underneath the ground site (1) from the surface outside the ground site (1) and the sealant is injected into the soil surrounding the bore (2). To implement the process, jets for injecting the sealant into the soil are mounted on the steerable remote-controlled boring head.

Description

-A METHOD FOR SEALING OFF GROUND SITES I~ND ~N
~PPA~TUS FOn G~RnYINC OUT THE ~I~THOD

The invention relates to a method for sealing natural or artificially heaped ground sites against an existing or potential gaseous, liquid, radiating and/or solid center of contarnination, such as, for example, in the case of abandoned polluted areas (such as abandoned dumping grounds, abandoned locations~, waste dumps, pipelines or the like, or also excavated construction sites, using liquid, semiplastic and finely divided sealants or eluates, ~s w~ s to ~n app~r~tus for o~r~ying out thcm~thod.

At the present time, various methods are already known for subsequently encapsulating centers of cont~n~in~tion, particularly disordered garbage dumps, so that the pollutants deposited therein cannot be emitted to the environment.

A method is known from the Gerrnan Auslegeschri~ 3 407 382 for the subsequent underground sealing preferably of dumping grounds. For this method, working pipes are introduced under the waste dump site from a region outside of a waste dump site, without having to drill through the dump site for this purpose. These working pipes are set up below the waste dump from a previously produced vertical shaft produced by a mining method. The sealant is injected from these working pipes with a special apparatus into the soil region. In the case of this method, a very large technical effort is required and the mining procedure for incorporating the working pipes is justifiable only in special cases.

` 2161779 The German Auslegeschrift 34 39 ~58 discloses that a continuous sealing base is produced with the help of cutting and injection equipment outside of the shielded subterranean curtain surrounding the mass of soil that is to be enclosed by undercutting the latter and is connected tightly with the vertical subterranean curtain.
The vertical, supported subterranean curtains, required for this method, once again require a high technical effort and are very expensive.

A further method for the subsequent treatment of waste dumps for protecting the environment is described in the German Auslegeschrift 33 80 897. For this method, the ground surface of the waste dump is divided into immediately adjacent sections. Where the latter are joined, pilot boreholes are made as controlled target boreholes from the starting shafts to the respective opposite draw shafts.
Conducting elements are then introduced into these pilot boreholes and their start and end are in opposite starting and draw shafts. In the annular space between the conducting elements, a broaching and injecting apparatus is introduced between the conducting elements and loosens the soil of the sections with a broaching element and prepares it for treatment with a sealant. For this method also, expensive starting and draw shafts are required in order to accommodate the broaching and injection equipment. Moreover, it is not possible to adapt the sealing of the waste dump site to the contours, since the pilot boreholes must run straight for operating the broaching and m~ectlon equlpment.

From the EP-A-0 317 369, a method of the introductory portion of claim 1 is known. The known method is an electrokinetic one, for which suitable sealants, such as asphalt or the like, are injected with an electrode, which is subsequently used as injection pipe and, before the sealant is injected, is used to heat the surrounding soil region. The sealant is injected under low pressure through perforation openings introduced in the electrode, so that saturation of the soil takes place.

The technical problem, on which the invention is based, consists of providing a simple method for completely sealing ground sites, particularly centers of contamination such as waste dumps, pipelines or also construction sites, which are still to be excavated, for which method tunnels, flat mining spaces or shafts, produced by mining procedures, are not required.

This technical problem is solved owing to the fact that a drilling method for producing at least one borehole, the progression of which method is fully controlled, is advanced from the surface outside of the ground site underneath the ground site and that a gaseous, liquid and/or finely divided solid sealant is injected continuously during a longitudinal motion of the drilling head in the borehole into the soil region surrounding the borehole. All forms of introducing the sealant are referred to as injecting in the following.

Due to the drilling method, the progression of which is controlled, all activities can be carried from the surface, so that starting and draw shafts, etc., which are produced by expensive mining procedures, are no longer required.

In this connection, it is particularly advantageous that the boreholes can be adapted, as required, to the contour of the contaminated region for example, as a result of which only a minimum of sealant need be injected into the soil regions. The number and length of the boreholes, required for completely enclosing the center of contamination or the construction site that is still to be excavated, is minimized hereby.

Depending on the soil conditions and on the preliminary investigation of the lower contour of the center of contamination, which investigation either is in existence or still has to be conducted, a safety distance between the boreholes, which have been introduced, and the center of contamination and/or below the lowest points .

of the investigational boreholes of at least several decimeters is advantageous, in order to achieve absolutely reliable sealing the center of contamination.

For advancing the boreholes, a known, yet modified, fully controllable, remotely controlled drilling head is used, which enables the boreholes to be advanced in any desired direction and to any desired depth.

The inventive method is particularly simple and efficient, if the sealant is injected continuously into the region of the soil surrounding the borehole during a longitudinal motion of the drill head in the borehole. The injection can take place already while the borehole is being advanced and/also when the drilling head or a special broaching device is being retracted towards the inlet opening. The sealant is injected into the soil region through nozzles or outlet openings disposed on the drilling head.

In order to produce a-2-dimensional barrier layer through boreholes, the progression of which is controlled, it is advantageous to bring out the sealant either in at least one lateral jet (additional front jets are possible) from the rotating drilling strand for producing adjoining to overlapping cylindrical injection sites or, if the drilling strand is not rotating, to bring it out through at least two lateral and/or front jets to produce wing-shaped contacting to overlapping injection sites or to have it ernerge with a different geometric arrangement of nozzles for the arrangement ofinjection sites resulting therefio,ll. The overall objective is to produce barrier layers, which act predomin~ntly horizontally and appear, for example, to be tub-shaped or to basin-shaped.

The possibilities for arranging the above-described injection variations are manifold. Advantageously, in the case of non-rotating drilling strands, the injection paths of in each case one borehole, which are produced by at least two injection outlets and lie side by side or above one another, enclose an angle of about 90 to 180. By these means, percolating water, for example, can run in the thereby formed gutters to the lowest points and be collected and raised in micro-tunnels, which are produced by the same drilling technique and in which filter pipes are installed.

So that the center of contarnination is enclosed completely by a barrier layer, it is advantageous to advance a number of boreholes, which are spaced apart and parallel to one another, in the soil. The in each case adjacent regions of a borehole, injected with sealant, should contact one another or intersect a previously produced lamella, that is, a region of soil injected with sealant, so that percolating water can no longer pass through these barrier layers and their overlapping areas into lower layers of soll.

It is also possible to produce such barrier layers next to and underneath the center of contamination, in order to achieve absolutely reliable sealing of the center of conta-mination. For this purpose, a further number of boreholes is advanced at defined distances from one another at, for example, a vertical angle to the first number of boreholes, which are below the center of contarnination, and the sealant once again is injected from these boreholes into the adjacent regions of soil. By these means, two or more, completely closed barrier layers are formed, which surround the center of cont~min~tion and ensure absolutely reliably that it is closed off.

In order to achieve reliable sealing of the center of contamination, it is, for exarnple, also possible to advance a network of boreholes, adapted to the contour, underneath the center of contamination, as a result of which the regions of soil, in each case adjacent to a borehole, can be injected several times with sealant. By these means, it is ensured that there are no leaks in the barrier layer forrned.

In the case of multiple barrier layers, the boreholes of beds, adjacent to one another in the vertical direction, are advanced below the center of contamination parallel to and at a distance from one another at an angle of 20 to 160 to a first number of boreholes of the adjacent plane.

It has been observed that the use of a lignite wax emulsion as a liquid sealant has excellent properties. Likewise, polymeric silicates, resins, different waxes or other chemically-resistant injection media, which remain flexible, also have very advantageous properties A barriff layer, formed by injecting, for example, a lignite wax emulsion, is very flexible with respect to subsequent settling of the waste dump site and enables flexural deformability of the barrier layer or layers.

Moreover, the barrier layer, formed by the lignite wax emulsion, is resistant to liquid and gaseous materials, which attack the barrier and are present in the percolating, capillary and subterranean water.

It has been observed that a barrier layer, 30 to 60 cm thick, is completely adequate for achieving reliable sealing.

Moreover, in the case of the inventive method, it is possible to admix further materials or, in the case of a multi-layered construction, to introduce also layers with other injective, absorptive and/or sealing materials, in order to achieve outstanding sealing depçnding on the soil circumstances.

The high sliding ability of the lignite wax emulsion is particularly useful in the case of the inventive method, since it also enables other substances to be transported well and, for example, causes very little wear at the nozzles and thus makes a long service life of the drilling head possible.

Depending on the perrneability structure of the region surrounding the borehole, it is also possible to inject the sealant pursuant to the invention below the fracture structure. The barrier layers to be produced can be adapted in an optimum manner to the soil conditions by low pressure injections.

Depending on the nature of the soil or on the perrneating materials to be expected, it is advantageous, in the case of several barrier layers, formed pursuant to the invention in a consecutive or superimposed arrangement, if each of the barrier layers is built up of different se~l~nt~ or injection materials.

An apparatus for carrying out the method advantageously has nozzles at a fully-controllable, remotely controlled drilling head. These nozzles make it possible to introduce the liquid sealant into the soil region with a sensitive or high pressure up to a distance of 2 to 3 m from the borehole wall.

For example, it~is particularly advantageous to dispose a first pair of nozzles opposite a second pair of noz~les offset by 5 to 180 with respect to the longitudinal axis of the drilling head Each of the pairs of nozzles comprises two opposite nozzles, which in each case are directed so that an angle of 30 to 90 is enclosed in each case with the longitudinal axis of the drilling head. By these means, different geometries of soil regions, with concentrations of the material injected, can be produced.

Advantageously, these nozzles can be surrounded by compressed air outlets, which produce a strong air-induced, preparatory cutting or parallel cutting, 216177~

which makes it possible to form a sealing jet of any shape, the two-dimensional introduction of the sealant into the soil being preferred. Generally, injections by monophasic to multiphasic methods are possible. Due to the barrier layers, whichform, for example, two-dimensional gutters and are disposed below the center of contamination, it is possible to direct the percolating water in particular directions. Of course, cylindrically-interlocking barriers can also be produced.

Several exarnples for the further explanation and better understanding of the invention are described and explained in greater detail in the following with reference to the drawings, in which Figure I shows a diagrammatic representation of a contour-adapted sealing of a waste dump by means of the inventive method, Figure 2 shows a diagrammatic representation of the drilling head as it is advancing a borehole under an abandoned dumping ground, Figure 2ashows a diagrarnmatic representation of the formation of a barrier layer by injecting a sealant as the drilling head is being retracted, Figure 3 shows a cross section of a number of boreholes below the waste dump, igures 4 to 10 in each case show a diagrammatic representation of a cross section of a number of boreholes, for which the arrangement of the boreholes to one another as well as the associated injection regions are constructed differently, igure 11 shows a diagrammatic representation of a front view of a drilling head with nozles aligned in different directions, igure 12shows a diagrammatic representation of the side view of the drilling head shown in Figure 12, igure 13 shows a diagrammatic representation of the progression of the boreholes and of the injection regions for sealing an excavation, igure 14shows a diagrammatic representation of a cross section of a pipeline with boreholes and injection regions introduced parallel thereto, igure 15shows a diagrammatic representation of a cross section of a pipeline with a leak, which is sealed by a borehole, igure 16shows a further diagrammatic representation for completely sealing a~
pipeline, igure 17 shows a diagrammatic representation of a cross section of a pipeline, which is surrounded with contarninated fragments of a destroyed pipe and is secured by a borehole advanced below and by injections, igure 18 shows a further diagrammatic representation of a cross section of Figure 17, which is enveloped completely according to the inventive method by boreholes and injections.

As shown in Figures 1 to 3, a waste dump site 1 is shaped irregularly in the subterranean part. A number of boreholes 2 are advanced outside of the wastedump site from the surface with known drilling methods, the progression of which is controlled with heed to the contour below the center of contamination and as far as the opposite side of the waste dump site I .

Starting out from each borehole 2, sealant is injected into the soil regions in each case surrounding a borehole 2, the adjacent regions of a borehole 2 touching or overlapping one another and thus fomming a closed barrier layer 3, which runs, with heed to the contour, up to the waste dump site 1.

It can be seen from Figure 2a that a second barrier 4 is formed underneath the first barrier layer 3 by a network of boreholes 5, which are spaced apart and parallel to one another. The network is tumed here through an angle of 90 Starting out from the boreholes 5, injected regions 4 of soil are formed.

The fully~ontrollable, remotely controlled drilling head 6 is shown in Figure 2 as it is moving below the waste dump site 1.

Different arrangements of the boreholes are possible for forming a contour-adapted barrier layer. One example is shown in Figure 3. The boreholes, parallel to one another and spaced apart, are offset slightly to one another in the vertical direction and the two-dimensional barrier layers 4, starting out in each case from a borehole 2, overlap and form an angle of about 120 with one another.

After the course of the contour of the waste dump site 1 has been investigated accurately by means of maps, previously-taken pictures, geophysicalphotographs, preliminary drilling, etc., a network of boreholes 2, which extend below the waste dump site I with heed to the contour, are advanced with the drilling method, the progression of which is fully controlled. At the sarne time, or while retracting, the liquid sealant, preferably lignite wax, is injected into the soil regions surrounding in each case a borehole. These soil regions 4, mixed with the liquid sealant, in each case overlap and thus forrn a closed barrier layer 3, which encloses the waste dump site 1 completely and tightly.

In the case of the inventive method, it is not absolutely necessary to take the boreholes 2 as far as a further opening opposite to the inlet opening. Barrier layers 3 can also be introduced only in partial regions of the soil layer.

Further examples for the arrangement of boreholes, advanced with the inventive method, are shown diagrammatically in Figures 4 to 10. In the case of the exarnples shown, the boreholes, in each case proceed horizontally or also vertically.
They can be introduced from the surface to any place desired, in order to seal the soil site.

As shown in Figure 4, a first row of boreholes 2a are superimposed on one another in the soil at equal distances from one another. Offset to this first row of boreholes 2a is a second row of boreholes 2b, which also lie above one another and proceed at the same distances from one another. Extending from each borehole 2a, 2b, there are two slightly expanded injection regions, the injection region starting out from one borehole enclosing an angle of about 130. Adjacent injection regions in each case overlap. The injection regions, starting out from the first row of boreholes 2a and from the second row of boreholes 2b, in each case intersect so that they form completely enclosed regions, in which, for example, further boreholes 10 are introduced, the progression of which is fully controlled and which serve as monitoring boreholes. This arrangement of boreholes 2a, 2b brings about a sort of double-wall seal.

2161~79 In the case of the arrangement of boreholes 2a, 2b, 2c shown in Figure 5, there is introduced between the first row of boreholes 2a and the second row of boreholes 2b a further number of boreholes 2c between these boreholes 2a, 2b. Four individual boreholes of the boreholes 2c extend in each case in the cross section of injection regions, which fan out slightly. These regions in turn intersect in ea ch case the two injection regions emanating from the first row of boreholes 2a and from the second row of boreholes 2b. A very good cross linking of the individual injection regions and, with that, a very effective sealing of the soil site is ensured hereby.

A further diagrammatic representation of the arrangement of boreholes, similar to the arrangement of the boreholes of Figure 4, is shown, by way of example, in Figure 6. Compared to the embodiment of Figure 4, the individual injection regions extend even further into the ground and overlapping injection regions or injection planes, extending along the individual boreholes 2a, 2b, are formed.

- In the case of the example of the arrangement of boreholes 2a, 2b, 2cshown in Figure 7, a sort of 3-fold wall is formed. For this purpose, a first row of parallel boreholes 2a is forrned in the ground. Starting out in each case from aborehole, two injection regions enclose an angle of about 130. Two injection regions of two adjacent boreholes 2a, approaching one another, cross one another and thus form a first sealing wall. A row of boreholes 2c of similar construction is parallel to and offset from the first row of boreholes 2a. A third row of boreholes 2b with associated injection regions is disposed in mirror image fashion parallel to the second row, as a result of which the injection regions, extending from the individual boreholes 2b, 2c, cross over one another and, in cross section, form a chess board-like arrangement of injection planes. Once again, a reliable sealing of the soil site is ensured.

The construction of the injection regions, shown in Figures 4 to 7, arise owing to the fact that, as it is being retracted, the drilling head carries out a rotation and injection material is injected uniformly into the surrounding soil region through different arrangements of nozzles. The diagrammatically shown injection regions are thus, in actual fact, barrier layers or planes, in which the injected material is accumulated and which extend from the boreholes. It is self-evident that the boreholes can be horizontal, vertical or inclined at any angle, since these are introduced starting from the surface and are advanced in a manner, in which their progression is controlled completely, below the soil site that is to be sealed.

In the case of the further exarnples 8 to 10, further, diagrammatically shown arrangements of boreholes are shown by way of exarnple, for which, however, the drilling head swings back and forth within a specified angular range or rotates constantly about its longitudinal axis.

Figure 8 shows a cross section of a number of boreholes 2a, 2b, for which, as the drilling head is retracted or also already as the individual boreholes 2a are being advanced, injection material is injected constantly, with rotation of the drilling head, into the surrounding soil region. By these means, columnar injection regions are formed about, in each case, one borehole 2a. The boreholes 2a are at such a distance from one another, that the injection regions of an adjacent borehole in each case overlap. Parallel to this, there are further boreholes 2b, from which individual soil layers extend, in which the injected material is concentrated and which, in turn, intersect the columnar injection regions about the borehole 2a.

For the cross sections of the boreholes, shown diagrammatically in Figures 9 and 10, the drilling head 6, as it is being retracted, can swing back and forth through a specified angle. Pairs of noz~les, which cause the injected material to penetrate the region around the borehole to a different depth, are mounted on either side of the drilling head. By these means, two pairs of injected regions are formed in each case in the region of a borehole 2, one pair having a larger radius and the pair, disposed at right angles thereto, having a smaller radius. The boreholes 2 once again are parallel to one another and are at such a distance from one another, that the injected regions of larger radius intersect one another. By these means, once again, effective sealing is achieved, for which the region of soil next to the borehole is also injected absolutely tightly with injection material. For the example shown in Figure 9, the swiveling angle is about 45 and, for the example shown in Figure 10, the drilling head is swung back and forth through an angle of about 90 to 100.

Figures I I and 12 show a diagrammatic representation of the arrangements of the nozzles at the drilling head 6, which is used advantageously for the Examples given. Figure 11 is a front view and shows the nozzles, which are arranged in pairs on opposite sides and have injection angles 15 and 16. Figure 12 is a side view of the drilling head 6 of Figure 11, for which the front pair of nozzles is directed slightly forwards and the rear pair of nozzles, turned through 90 with respect to the front pair, is directed slightly towards the rear.

Figure 13 shows a further area of use of the inventive method, for which an excavation is sealed as protection against intrusion of water or infiltration of pollutants. The boreholes 2 are introduced here from a location outside of the intended excavation 25 up to the desired depth. Depending on circumstances, a sealing tub is created by one of the arrangement of boreholes, described, by way of example, above and by injecting the injection material. Since different boreholes 2 can be advanced from the one location with the inventive drilling method, only one change in location of the drilling equipment is required for sealing a diagrammatically shown excavation 25. Starting out from a first location, boreholes 2 are advanced underneath the intended excavation 25 and injection material is injected in each case, so that a sealing tub results. Starting out from a further location, horizontal boreholes 2 are advanced with intersecting injection regions in such a manner with respect to the alreadyproduced boreholes, that the soil tub, formed first, is intersected and the soil site or the intended excavation 25 is enveloped tightly. The pit 25 can now be excavated andground water or pollutant-containing percolated water cannot penetrate into it.

Figures 14 to 18 show a further area of use of the inventive drilling method.

Figure 14 shows a cross section through a pipeline 20 in the soil, which serves, for example, for carrying away pollutant-containing, percolated water. Since these pipelines 20 in many cases are porous and old, subsequent sealing of the soil layers beneath them frequently is necessary. As shown in Figure 14, a number of boreholes 2, parallel to the pipeline 20, are advanced from the surface for this purpose.
While the drilling head is being retracted, injection material is injected uniformly and
2-dimensionally into the surrounding regions of soil. At the same time, the individual boreholes 2 are parallel to one another on a shell surface about the center of the pipeline 20. The injection regions of adjacent boreholes 2 intersect once again.Accordingly, a collection channel is formed beneath the pipeline 20 and collects and carries away the pollutants trickling out in the event of a leak.

Figure 15 shows a defect 20a in a pipeline 20, through which pollutants trickle into the layers of soil below. This defect can be repaired with the inventive method. For this purpose, a borehole 2 is taken, starting out from the surface, to the loc~li7ed defect 20a and injection materials are injected from the borehole 2 into the soil region in such a manner that these materials extend up to the pipeline 20 and tightly enclose the defect 20a.

Figure 16 shows a cross section of a pipeline 20, which is surrounded in a lower partial region by two parallel boreholes 2 with injection regions emanating perpendicularly from each borehole 2.

Figures 17 and 18 show yet another area of use of the inventive method.
In many cases, the dimensions of the pipeline 20 for carrying away percolated water are too small and there is therefore a need for pipelines of larger cross section. In a well-known method, the older pipelines are destroyed for this purpose in a "pipe-bursting" or "pipe-eating" method and replaced by larger pipelines. In the case of this known method, however, the problem continues to exist that the fragments 21 of the older pipelines furthermore contain pollutants, which can reach the layers of soil below. To secure these layers below, a borehole 2 is advanced from the surface and injection material is injected into the surrounding regions of soil, so that either, as shown in Figure 17, a half-shell is formed, which forms a channel for carrying away this percolated water, or, as shown in Figure 18, several boreholes 2 are advanced, the injection regions of which completely envelope and tightly encapsulate the new pipeline 20 and the fragments 21 of the older pipeline.

Claims (25)

New Claims
1. A method for sealing soil sites, particularly a waste dump, an abandoned dumping ground or the like, using sealants for which at least one borehole is advanced from the surface outside the soil site underneath the soil site by means of a drilling method, the progression of which is fully controlled, and the sealant is injected into the region of soil surrounding the borehole, characterized in that - a fully-controllable, remotely controlled drilling head is used and - the sealant is injected continuously into the soil region of the borehole during a longitudinal motion of the drilling head in the borehole.
2. The method of claim 1, characterized in that the borehole is adapted to the contour of the soil site.
3. The method of claim 2, characterized in that the borehole proceeds at a safe distance from the contour of the soil site, underneath which it is to pass.
4. The method of claim 3, characterized in that the safety distance is at least a few decimeters.
5. The method of claim 1, characterized in that the sealant is injected into the regions of soil adjacent to the borehole while the drilling head is being advanced and/or retracted.
6. The method of one of the preceding claims, characterized in that the sealant is injected into the soil through nozzles disposed on the drilling head.
7. The method of one of the preceding claims, characterized in that the sealant is injected into the soil in at least a two-dimensional jet.
8. The method of one of the preceding claims, characterized in that the sealant is injected into the soil in two or more two-dimensional jets.
9. The method of claim 8, characterized in that the planes, formed by the two-dimensional jets, enclose an angle of 90° to 180°.
10. The method of one of the preceding claims, characterized in that the sealant is injected into the soil also in the longitudinal direction of the borehole.
11. The method of claim 1, characterized in that a number of boreholes pass under the soil site at distances from one another and parallel to one another, the parallelity also being achieved from a location operating in fan-shaped fashion.
12. The method of claim 11, characterized in that adjacent soil regions, injected with sealant, in each case contact or overlap a borehole.
13. The method of claim 11, characterized in that adjacent regions of a borehole, injected with sealant, intersect.
14. The method of one or several of the preceding claims, characterized in that the adjacent regions of soil, injected with sealant, are disposed with respect to one another in such a manner, that they form a closed barrier layer, which form gutters that are spaced apart.
15. The method of claim 11, characterized in that a further number of boreholes pass under the soil site at a distance from one another and parallel to one another and at a vertical distance from the first number of boreholes
16. The method of one of the preceding claims, characterized in that the sealant is injected continuously into the soil region only in a partial region along a borehole.
17. The method of one or several of the preceding claims, characterized in that at least one borehole, starting out from the surface outside of the soil site, passes under the soil site and emerges at the surface at a further site outside of the center of contamination.
18. The method of one or several of the preceding claims, characterized in that a further number of boreholes pass underneath the soil site at a distance from one another, parallel to one another and turned through an angle of 20° to 180° and ideally of 90° to a first number of boreholes, which are at a distance from one another and parallel to one another.
19. The method of claim 1, characterized in that the sealant can be a lignite wax emulsion, a polymeric silicate, water glass, resin, a cement emulsion in admixture with one of said sealants or a different wax.
20. The method of one or several of the preceding claims, characterized in that the sealing layers, formed from the injected sealant and the waxed soil, together enclose the soil site completely.
21. A method for controlling a sealing formed according to one or several of the claims I to 20, comprising barrier layers formed by injecting sealant and consisting of the following steps:

- advancing boreholes, the progression of which is fully controlled, into or below the barrier layers formed, - introducing control elements into these boreholes and - transmitting the values, reported by the control elements, to above-ground evaluating equipment.
22. The method of claim 1, characterized in that the drilling diameter amounts up to one meter.
23. The use of a completely controllable, remotely controlled drilling head, on which there are disposed nozzles through which a sealant can be injected into the soil, for carrying out the method of claim 1.
24. A use as defined in claim 23, characterized in that the injection is monophasic to multiphasic and that the nozzles on the drilling head are surrounded by an air jet, which directs the sealant jet in a desired form and/or supports the penetration.
25. A use as defined in claim 24, characterized in that, with respect to the longitudinal axis of the drilling head, a first pair of nozzles is offset by 5° to 180°
relative to a second pair of nozzles and each of the pairs of nozzles comprises two opposite nozzles, each of the nozzles enclosing an angle of 30° to 90° with the longitudinal axis of the drilling head.
CA002161779A 1993-04-28 1994-04-28 A method for sealing off grounds sites Abandoned CA2161779A1 (en)

Applications Claiming Priority (5)

Application Number Priority Date Filing Date Title
DE4313994 1993-04-28
DEP4313994.9 1993-04-28
DE4335290A DE4335290C2 (en) 1993-04-28 1993-10-15 Process for sealing floor bodies and device for carrying out this process
DEP4335290.1 1993-10-15
PCT/EP1994/001352 WO1994025688A1 (en) 1993-04-28 1994-04-28 Process for sealing off ground sites and device for carrying out this process

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CA2161779A1 true CA2161779A1 (en) 1994-11-10

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CA (1) CA2161779A1 (en)
DE (2) DE4335290C2 (en)
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RU (1) RU2129191C1 (en)

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WO2007107015A1 (en) * 2006-03-30 2007-09-27 Canadian Energy Services L.P. Drilling fluid and method for reducing lost circulation
WO2008144905A1 (en) * 2007-05-28 2008-12-04 Engineered Drilling Solutions Inc. Use of wax in oil-based drilling fluid
US8235119B2 (en) 2006-03-30 2012-08-07 Canadian Energy Services, Lp Drilling fluid and method for reducing lost circulation
CN114439049A (en) * 2022-02-11 2022-05-06 中钢集团马鞍山矿山研究总院股份有限公司 Combined seepage-proofing body for pollution prevention and ecological restoration of solid waste dump

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US5725059A (en) * 1995-12-29 1998-03-10 Vector Magnetics, Inc. Method and apparatus for producing parallel boreholes
DE19729809C1 (en) * 1997-07-11 1998-12-17 Flowtex Technologie Import Von Device and method for producing borehole branches
DE19747588B4 (en) * 1997-10-28 2004-05-13 Flowtex Technologie Gmbh & Co. Kg I.K. Temperature-controlled airfield traffic route and method for retrofitting an existing airfield traffic route
DE10308203B4 (en) * 2003-02-25 2005-06-30 Holl Gmbh Method and device for producing a liquid-impermeable layer in the ground
DE102004040189B4 (en) * 2004-08-19 2012-09-20 Franki Grundbau Gmbh & Co.Kg Process for producing a sealing soil in the soil
CN109516468A (en) * 2017-08-06 2019-03-26 汪思芳 A kind of preparation method of modified kaolin
CN115726817B (en) * 2023-01-09 2023-06-02 北京城建设计发展集团股份有限公司 Targeted water stopping method for mountain tunnel construction
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DE3407382C2 (en) * 1984-02-29 1994-08-04 Zueblin Ag Process for producing an approximately horizontal sealing layer and device for carrying out the process
DE3439858A1 (en) * 1984-10-31 1986-04-30 Gkn Keller Gmbh, 6050 Offenbach Method and arrangement for sealing off subterranean soil masses, in particular for subsequent treatment of disposal sites or the like
DE3722270A1 (en) * 1986-07-04 1988-02-11 Bilfinger Berger Bau Method and apparatus for producing an underground sealing bed, in particular for subsequent sealing of landfill sites
DE4033884C1 (en) * 1990-10-25 1991-10-02 Wolfgang Dipl.-Chem. Dr. 1000 Berlin De Ortlepp Strengthening of mineral by raising its electrical conductivity - by adding water glass and/or silane(s) mixed with alkaline earth salt soln., to seal minerals and protect ground water
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WO2007107015A1 (en) * 2006-03-30 2007-09-27 Canadian Energy Services L.P. Drilling fluid and method for reducing lost circulation
US7705099B2 (en) 2006-03-30 2010-04-27 Canadian Energy Services, Lp Drilling fluid and method for reducing lost circulation
US8235119B2 (en) 2006-03-30 2012-08-07 Canadian Energy Services, Lp Drilling fluid and method for reducing lost circulation
WO2008144905A1 (en) * 2007-05-28 2008-12-04 Engineered Drilling Solutions Inc. Use of wax in oil-based drilling fluid
GB2461679A (en) * 2007-05-28 2010-01-13 Engineered Drilling Solutions Use of wax in oil based drilling fluid
GB2461679B (en) * 2007-05-28 2012-04-04 Engineered Drilling Solutions Inc Use of wax in oil based drilling fluid
CN114439049A (en) * 2022-02-11 2022-05-06 中钢集团马鞍山矿山研究总院股份有限公司 Combined seepage-proofing body for pollution prevention and ecological restoration of solid waste dump
CN114439049B (en) * 2022-02-11 2023-09-15 中钢集团马鞍山矿山研究总院股份有限公司 Combined seepage-proofing body for preventing and controlling solid waste pile pollution and restoring ecology

Also Published As

Publication number Publication date
DK0690942T4 (en) 2000-01-03
EP0690942B1 (en) 1997-01-08
EP0690942A1 (en) 1996-01-10
DK0690942T3 (en) 1997-05-12
DE59401546D1 (en) 1997-02-20
EP0690942B2 (en) 1999-10-06
DE4335290C2 (en) 1999-03-11
DE4335290A1 (en) 1995-04-06
RU2129191C1 (en) 1999-04-20

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