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EP 3 375 938 B1 |
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EUROPEAN PATENT SPECIFICATION |
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Mention of the grant of the patent: |
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21.04.2021 Bulletin 2021/16 |
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Date of filing: 15.01.2016 |
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International Patent Classification (IPC):
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International application number: |
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PCT/RU2016/000008 |
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International publication number: |
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WO 2017/082762 (18.05.2017 Gazette 2017/20) |
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WELD-FREE THREE-DIMENSIONAL GEOCELL SYSTEM FOR SOIL STABILISATION AND PREFORM FOR
PRODUCING SAME
SCHWEISSLOSES DREI-DIMENSIONALES GEOZELLSYSTEM ZUR BODENSTABILISIERUNG UND ZUSCHNITT
ZUR HERSTELLUNG DAVON
SYSTEME GÉOGRILLE SANS SOUDURES POUR RENFORCER LE SOL ET ÉBAUCHE POUR SA FABRICATION
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Designated Contracting States: |
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AL AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HR HU IE IS IT LI LT LU LV MC MK MT NL
NO PL PT RO RS SE SI SK SM TR |
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Priority: |
09.11.2015 RU 2015148005
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Date of publication of application: |
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19.09.2018 Bulletin 2018/38 |
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Proprietor: Obshchestvo S Ogranichennoy
Otvetstvennostyu "Miki" |
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Khimki, Moskovskaya obl. 141421 (RU) |
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Inventors: |
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- AZARKH, Mikhail Mikhailovich
Moscow 125367 (RU)
- ODINOKOV, Aleksandr Vladimirovich
Moscow 109548 (RU)
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Representative: Glawe, Delfs, Moll |
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Partnerschaft mbB von
Patent- und Rechtsanwälten
Postfach 13 03 91 20103 Hamburg 20103 Hamburg (DE) |
| (56) |
References cited: :
EP-A1- 3 147 412 WO-A1-2008/105879 JP-A- S55 142 609 RU-C1- 2 090 702 RU-U1- 72 989 RU-U1- 122 393
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WO-A1-02/13991 EA-B1- 014 781 KR-A- 20130 095 980 RU-C1- 2 358 063 RU-U1- 84 393 US-A1- 2015 225 908
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| Note: Within nine months from the publication of the mention of the grant of the European
patent, any person may give notice to the European Patent Office of opposition to
the European patent
granted. Notice of opposition shall be filed in a written reasoned statement. It shall
not be deemed to
have been filed until the opposition fee has been paid. (Art. 99(1) European Patent
Convention).
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[0001] The invention relates to the construction industry, namely, to geocell systems, and
may be used for reinforcing water basin shorelines and beds, slopes, embankment cones,
retaining walls in oil-and gas, transport, hydraulic engineering and other fields
of construction, where geocells should have high and stable parameters of strength
and endurance.
[0002] The prior art discloses GEOWEB geocell for slope stabilization, which is made of
polymer strips interconnected in a staggered order with a preset pitch along their
transverse ribs and fixed on a slope in their stretched state so as to form rhomboid
cells (see,
RU Patent No. 2152479, E02D17/20, 2000).
[0003] Also, one knows a geocell system which is formed by strips of a polymeric material
arranged on a polymeric base so as to form cells for confinement of a bulk material,
which walls are partially bent in the direction opposite to that of a slope grade
(see:
CH Patent No. 652155, E02D17/20, 1985).
[0004] One knows a geocell system which is made of a polymeric material with rhomboid cells
formed by perforated polymeric strips when this geocell system is stretched, cell
positions on a slope being fixed with anchors, and the cells themselves are filled
with a bulk material (see:
JP Patent No. 56016730, E02D17/20, 1981).
[0005] The known geocell designs for stabilization of soil structures cannot fully achieve
the objective of fixing a material on a slope due to possible shift of such geocells
down the slope under the influence of its filling material both during infilling a
material into its cells and during the operation after infilling said material into
cells, wherein said filling material being a peat-sand mixture, coarse gravel, or
a combination of various bulk materials; in the result, a preset slope profile may
be lost due to filling material accumulation at its base.
[0006] A preform for a stretched geocell system is known in the art that is made of a sheet
material wherein slots of a segmental shape are made in rows, adjacent rows being
offset relative to each other (see:
RU Patent No. 2090702, 20.09.1997). Said slots may be provided with stretching said preform for forming
a three-dimensional cellular structure A drawback of this preform is that plastic
deformation of the sheet material occurs when it is stretched, which may result in
non-equivalent strength of the geocell system. Moreover, since slots in the stretched
state are used in the preform, thicknesses of walls (i.e., distances between the edges
of neighboring slots) in different parts of a geocell system thus produced will not
be equal. Stresses are concentrated in thinner parts of the walls, which reduces tensile
strength of this geocell.
[0007] The closest analog of the claimed invention is a sheet preform, a weld-free web geocell
system produced therefrom, as well as a method for producing said geocell system that
are all described in the Prior Art section of
RU Patent No. 2090702, 20.09.1997. This preform is made in the form of a polymeric sheet having slots that
are offset relative to each other. A weld-free geocell system can be produced by stretching
this preform. A drawback of this closest analog is also a low tensile strength of
a geocell, since stresses are concentrated at the ends of said slots during stretching.
[0008] Geocells made from welded polymeric strips are known from
US 2015/0225908 A1 and
WO 2008/105879 A1.
JP-S-55142609 discloses a preform according to the preamble of claim 1. None of said prior art
documents disclose a preform and method of its use according to the present invention
which is set out in the appended claims. The objective of the present invention is
to eliminate drawbacks of the prior art solutions.
[0009] The technical effect consists in improving tensile strength of a geocell system and
reducing labor-intensiveness of producing it.
[0010] The above technical effect is achieved in a preform intended for forming a weld-free
geocell due to that it is made of a flexible sheet material provided with incisions
having the central portion in the form of a straight line and two end portions in
the form of an arc, said central portions of the incisions being arranged in rows,
the incision lines in the neighboring rows being offset along the incision direction,
the end portions of the incisions being provided with thickened areas, and the preform
thickness in said thickened areas being up to 300% of the thickness of the main body
of a sheet material.
[0011] Furthermore, the above technical effect is achieved in particular embodiments of
the preform due to that:
- the end portions are capable to rotate the incisions by 90° relative to the central
portion,
- the preform is made of a polymeric material,
- the thickened areas at the end portions of the incisions are shaped as a circle or
an oval,
- the preform has additional thickened areas made in the area of the incision central
portions,
- the preform thickness in said additional thickened areas is up to 300% of the thickness
of the main body of a sheet material,
- the preform is made in the form of a strip,
- a sheet material is reinforced with a thread or mesh,
- an aramid or carbon thread is used for reinforcement,
- the incision central portions have the same length L,
- neighboring central portions of incisions in a row (R1, R2, ...RN) are arranged at a distance S between their ends, and the ratio S/L = K1, where K1
is from 0.1 to 0.5, preferably from 0.3 to 0.35,
- central portions of incisions in neighboring rows (R1, R2, ...RN) are arranged at a distance D from each other, and the ratio D/L = K2, where K2 is
from 0.1 to 0.7,
- the incision end portions project by a distance L1 relative to the central portion,
L1 being from 1/10L to 1/15L,
- the preform is provided with additional holes for tendons used for attaching a geocell
system in the stretched state to a slope,
- the additional holes for tendons are arranged between the neighboring incisions in
a row (R1, R2, ...RN),
- thickened areas are made around the additional holes, the preform thickness in these
areas being up to 300% of the thickness of the main body of a sheet material,
- the preform is provided with drainage holes,
- the sheet material is made textured,
- the incisions are made by a laser cutting or notching.
[0012] The above technical effect can be achieved by a weld-free geocell system that comprises
at least one said preform stretched in the direction perpendicular to the incision
lines so as to form a three-dimensional cellular system.
[0013] Furthermore, the above technical effect can be achieved in particular embodiments
of the geocell system due to that:
- at least one tendon is drawn through the preform for the purpose of fixing the geocell
system on a slope,
- the geocell system can be composed of several said preforms forming the system sections
that are interconnected by said tendon,
- the geocell system can be composed of several said preforms forming the system sections
that are interconnected by ultrasonic welding or metal clips,
- the geocell system may be made with the possibility of filling its cells with fillers,
such as sand and/or coarse gravel, and/or peat-sand mixture, and/or concrete,
- the geocell system is also provided with a support made of a geotextile material.
[0014] The invention is explained by the accompanying drawings, wherein:
Fig. 1 shows a preform suitable for producing a weld-free geocell system;
Fig. 2 shows a general view of an incision made in a preform,
Figs. 3-5 show variants of incision areas in a preform,
Fig. 6 shows a weld-free geocell system (the preform is stretched).
[0015] The claimed preform for producing a weld-free geocell system (Fig. 1) is made of
a sheet of a flexible material (1), in particular a polymeric material, a fabric based
on chemical fibers (carbon fibers, glass fibers) or another type of material. The
sheet (1) is provided with incisions 2 (Fig. 1) for forming cells. These incisions
(2) consist of a central portion (3) in the form of a straight line and two end portions
(4) in the form of an arcuate lines that ensure rounding (turn) of the ends of the
incisions (2) (Figs. 2-5).
[0016] This configuration enables the most optimal redistribution of loads in a geocell
system in the area of incision end portions, and, in the result, improves the system
tensile strength.
[0017] In one embodiment of the system, the end portions (4) are made so as to enable turn
of the incisions by 90°, i.e., the end portion has at its end a section that is perpendicular
to the central portion (3). However, other variants are also possible for orienting
the ends of an incision (2). The central portions (3) of the incisions (2) are arranged
in rows (R
1, R
2, ...R
N), the incision lines in the neighboring rows being offset in the incision direction
(Fig. 1). Preferably, the incision end portions are oriented toward one side.
[0018] The end portions (4) of the incisions (2) are provided with thickened areas (5) (Fig.
3). These thickened areas (5) may have the circular or oval shape in the plane view
(in the longitudinal section).
[0019] Other variants of shapes are also possible.
[0020] In one preferable embodiment, the preform may be provided with additional thickened
areas (6) located in the area of the central portion (3) of the incision (2).
[0021] These thickened areas (6) may be shaped as a rim going along the direction of the
central portion (3) of the incision (Fig. 4) or as a solid rectangle in the plane
view (Fig. 5). The sheet thickness in the thickened areas may be up to 300% of the
thickness of the sheet material in the other areas.
[0022] These thickened areas (5, 6) ensure additional strengthening in the area of the incision
(2), thus improving tensile strength of a geocell system.
[0023] The central portions (3) of the incisions (except for those at the sheet edges) have
the same length L and are disposed at the same distance S between the ends of the
adjacent incisions in every row (R
1, R
2, ...R
N) (in the longitudinal direction) and at the same distance D between the incisions
of adjacent rows (R
1, R
2, ...R
N) (in the transverse direction). The relationship S/L = K1, the K1 value ranging from
0.1 to 0.5, most preferably from 0.3 to 0.35; and the relationship D/L = K2, the K2
value ranging from 0.1 to 0.7.
[0024] The coefficients K1 and K2 are selected from the above ranges, depending on particular
conditions of the geocell system application. For example, if the claimed geocell
system is used for reinforcing a slope with the gradient angle of 45°, the coefficient
K2 should be equal to 0.7; for slopes with the gradient angle of 30° the coefficient
K2 should be equal to 0.2. Preferably, the end portions (4) of the incisions (2) project
by the distance equal to the length L1 relative to the central portion (3) (Fig. 1),
L1 ranging from 1/10L to 1/15L.
[0025] In preferable embodiments of the invention, the sheet material 1 is provided with
additional holes (7) for tendons (Fig. 1, 6) that are intended for fixing a geocell
system in the stretched state on, for example, a slope. The holes (7) for tendons
are arranged on the rows (R
1, R
2, ...R
N) between the incisions (2). Thickened areas (8) shaped as circular rims may be made
around these holes.
[0026] Furthermore, the sheet 1 may be also provided with drainage holes (8) (Fig. 6) that
are intended for draining water from the soil reinforced with the geocell system.
[0027] In one particular embodiment, the sheet (1) of a flexible material may be additionally
reinforced in the areas (9) with high-strength threads, e.g., made of aramid (e.g.,
Kevlar, SVM) or carbon (Carbon) or other fibers that increase the preform strength
in the transverse and longitudinal directions, which makes the geocell system uniformly
strengthened due to the absence of unreinforced welds therein.
[0028] Furthermore, the surface of the preform sheet material (1) may be made textured in
order to improve the adhesion of the geocell system to soil.
[0029] The sheet (1) may be made of a color polymeric material, which enables to use the
stretched geocell system for advertising or information purposes.
[0030] Preferably, the incisions (2) in the sheet material (1) can be made by a laser cutting
technique, which can further strengthen the system due to melting of the cut edge
and, thereby, eliminate micro damages on the edge. Also, the incisions (2) may be
made by notching by means of a punch.
[0031] A preform sheet intended for transportation may be reeled together with a geotextile
material serving as the support (11) for the geocell system into a two-layer roll
(Fig. 6), the geotextile material having small folds enabling it to stretch, when
a strip is stretched, in such a way that it would be completely smoothed after the
geocell system is layered on a slope.
[0032] The geocell system may be produced from one or more said preforms by stretching (preferably,
without plastic deformation) in the direction perpendicular to the lines of the incisions
(2) for forming a three-dimensional cellular structure wherein the cells of the geocell
system, as formed during stretching of the preform, are connected by means of necks
(10) (Fig. 6). The ends of the system should be fixed on soil with the use of anchors.
If several preforms (i.e. sections of the geocell system) are used, the last holes
4 in the adjacent sections are aligned with each other, and tendons are drawn therethrough,
thus connecting adjacent sections and, at the same time, fixing the geocell system.
Sections may be also interconnected by ultrasonic welding, metal clips or other connectors.
[0033] Depending on the application of the system, its cells may be infilled with various
fillers, such as sand, coarse gravel, peat-sand mixture, concrete, etc.
[0034] The use of the proposed preform structure and a geocell system produced therefrom
enables to achieve the following advantages:
- a reduced degree of washing out of the system filler, what is especially important
when reinforcing slopes,
- expanded possibilities for using the geocell system for new applications requiring
higher performance, e.g., on slopes and in cones of bridges on rail and motor roads,
in protection facilities of pipelines and soil embankments, for bank stabilization,
etc.,
- improved strength of the system in comparison with three-dimensional geocell systems
produced by welding of polymeric strips,
- significantly higher draining capability of the system,
- lower mounting costs of the system,
- if cells are to be infilled with concrete, the geocell system may be used for ascending
a slope by using steps thus formed,
- furthermore, it is also possible to use the geocell system as an information or advertising
space.
1. A preform for producing a weld-free geocell system, said preform being made of a sheet
of a flexible material (1), comprising incisions (2) whereby
- said incisions (2) have a central portion (3) in the form of a straight line and
two end portions (4) in an arcuate form,
- the central portions (3) of said incisions (2) being arranged in rows (R1, R2, ...RN), wherein the incision lines in the neighboring rows being offset along the incision
direction, characterized in that
- thickened areas (5) are made at the end portions (4) of the incisions (2), the preform
thickness in said thickened areas (5) being up to 300% of the thickness of the main
body of the sheet material (1).
2. The preform according to Claim 1, wherein the end portions (4) are made so as to be
capable of turning the incisions (2) by 90° relative to the central portion.
3. The preform according to Claim 1, being made of a sheet of a polymeric material or
a fabric based on chemical fibers.
4. The preform according to Claim 1, wherein the thickened areas (5) at the end portions
(4) of the incisions (2) are shaped as a circle or an oval in the plane view.
5. The preform according to Claim 4, comprising additional thickened areas (6) made in
the area where the central portions (3) of the incisions (2) are located.
6. The preform according to Claim 5, wherein the thickness of the preform in said additional
thickened areas (6) is up to 300% of the thickness of the main body of the sheet material
(1).
7. The preform according to Claim 1, being made as a strip.
8. The preform according to Claim 1, wherein the sheet material (1) is reinforced with
a thread or a mesh.
9. The preform according to Claim 8, wherein an aramid or carbon thread is used for reinforcement.
10. The preform according to any one of Claims 1-9, wherein the central portions (3) of
the incisions (2) have a same length L.
11. The preform according to Claim 10, wherein the neighboring central portions (3) of
the incisions (2) in a row (R1, R2, ...RN) are made at a distance S between their ends, the ratio S/L being equal to K1, and
a K1 value ranging from 0.1 to 0.5, preferably from 0.3 to 0.35.
12. The preform according to Claim 10, wherein the central portions (3) of the incisions
(2) in the neighboring rows (R1, R2, ...RN) are made at a distance D from each other, the ratio D/L being equal to K2, and a
K2 value ranging from 0.1 to 0.7.
13. The preform according to Claim 10, wherein the end portions (4) of the incisions (2)
project to a length L1 relative to the central portion (3), L1 ranging from 1/10L
to 1/15L.
14. The preform according to Claim 1, wherein said preform comprises additional holes
(7) for tendons for the purpose of fixing a geocell system in its stretched state
on a slope.
15. The preform according to Claim 14, wherein said additional holes (7) for tendons are
located between the neighboring incisions (2) in a row (R1, R2, ...RN).
16. The preform according to Claim 14, further comprising thickened areas around the additional
holes (7), the thickness in said thickened areas being up to 300% of the thickness
of the main body of the sheet material (1).
17. The preform according to any one of Claims 1-9, wherein said preform comprises additional
drainage holes.
18. The preform according to any one of Claims 1-9, wherein the sheet material is textured
material.
19. The preform according to any one of Claims 1-9, wherein said incisions are laser cutted
incisions or notches.
20. A method comprising
i) providing a weld-free geocell system, comprising at least one preform according
to any one of Claims 1-19; and
ii) stretching it in a direction perpendicular to the lines of the central portions
(3) of the incisions (2) thereby forming a three-dimensional cellular structure.
21. The method according to Claim 20, further comprising the step of drawing at least
one tendon through the preform for the purpose of fixing the system on a slope.
22. The method according to Claim 21, further comprising the step of interconnecting several
said preforms forming sections of the system by means of said tendon.
23. The method according to Claim 20, further comprising the step of interconnecting several
said preforms forming sections of the system by means of ultrasonic welding or metal
clips.
24. The method according to any one of Claims 20-23, further comprising the step of filling
the cells with fillers, wherein said fillers are preferably sand and/or coarse gravel,
and/or peat-sand mixture, and/or concrete.
25. The method according to any one of Claims 20-23, said method comprising the addition
of a support (11) to said weld-free geocell system, wherein said support (11) is of
a geotextile material.
1. Vorformling zur Herstellung eines schweißfreien Geozellensystems, wobei der Vorformling
aus einem Blatt eines flexiblen Materials (1) hergestellt ist und Einschnitte (2)
aufweist, wobei
- die Einschnitte (2) einen zentralen Abschnitt (3) in Form einer geraden Linie und
zwei Endabschnitte (4) in einer bogenförmigen Form aufweisen,
- die zentralen Abschnitte (3) der Einschnitte (2) in Reihen (R1, R2, ...RN) angeordnet sind, wobei die Einschnittlinien in den benachbarten Reihen entlang der
Einschnittrichtung versetzt sind,
dadurch gekennzeichnet, dass verdickte Bereiche (5) an den Endabschnitten (4) der Einschnitte (2) hergestellt
sind,
wobei die Vorformlingsdicke in den verdickten Bereichen (5) bis zu 300% der Dicke
des Hauptkörpers des Blattmaterials (1) beträgt.
2. Vorformling nach Anspruch 1, wobei die Endabschnitte (4) so ausgebildet sind, dass
die Einschnitte (2) um 90° relativ zum Zentralabschnitt gedreht werden können.
3. Vorformling nach Anspruch 1, der aus einem Blatt eines Polymermaterials oder einem
Gewebe auf der Basis von Chemiefasern hergestellt ist.
4. Vorformling nach Anspruch 1, wobei die verdickten Bereiche (5) an den Endabschnitten
(4) der Einschnitte (2) in der Draufsicht kreisförmig oder oval geformt sind.
5. Vorformling nach Anspruch 4, umfassend zusätzliche Verdickungen (6), die im Bereich
der Zentralabschnitte (3) der Einschnitte (2) hergestellt sind.
6. Vorformling nach Anspruch 5, wobei die Dicke des Vorformlings in den zusätzlichen
verdickten Bereichen (6) bis zu 300 % der Dicke des Hauptkörpers des Blattmaterials
(1) beträgt.
7. Vorformling nach Anspruch 1, der als Streifen hergestellt ist.
8. Vorformling nach Anspruch 1, wobei das Blattmaterial (1) mit einem Faden oder einem
Netz verstärkt ist.
9. Vorformling nach Anspruch 8, wobei ein Aramid- oder Carbonfaden zur Verstärkung verwendet
wird.
10. Vorformling nach einem der Ansprüche 1-9, wobei die zentralen Abschnitte (3) der Einschnitte
(2) eine gleiche Länge L aufweisen.
11. Vorformling nach Anspruch 10, wobei die benachbarten zentralen Abschnitte (3) der
Einschnitte (2) in einer Reihe (R1, R2, ...RN) in einem Abstand S zwischen ihren Enden ausgeführt sind, wobei das Verhältnis S/L
gleich K1 ist und ein K1-Wert im Bereich von 0,1 bis 0,5, vorzugsweise von 0,3 bis
0,35, liegt.
12. Vorformling nach Anspruch 10, wobei die zentralen Abschnitte (3) der Einschnitte (2)
in den benachbarten Reihen (R1, R2, ...RN) in einem Abstand D zueinander hergestellt sind, wobei das Verhältnis D/L gleich
K2 ist und ein K2-Wert im Bereich von 0,1 bis 0,7 liegt.
13. Vorformling nach Anspruch 10, wobei die Endabschnitte (4) der Einschnitte (2) auf
eine Länge L1 relativ zu dem Zentralabschnitt (3) vorstehen, wobei L1 im Bereich von
1/10L bis 1/15L liegt.
14. Vorformling nach Anspruch 1, wobei der Vorformling zusätzliche Löcher (7) für Spannglieder
zum Zweck der Fixierung eines Geozellensystems im gestreckten Zustand an einem Hang
aufweist.
15. Vorformling nach Anspruch 14, wobei die zusätzlichen Löcher (7) für Spannglieder zwischen
den benachbarten Einschnitten (2) in einer Reihe (R1, R2, ...RN) angeordnet sind.
16. Vorformling nach Anspruch 14, des Weiteren umfassend verdickte Bereiche um die zusätzlichen
Löcher (7), wobei die Dicke in den verdickten Bereichen bis zu 300% der Dicke des
Hauptkörpers des Blattmaterials (1) beträgt.
17. Vorformling nach einem der Ansprüche 1-9, wobei der Vorformling zusätzliche Drainagelöcher
aufweist.
18. Vorformling nach einem der Ansprüche 1-9, wobei das Blattmaterial ein strukturiertes
Material ist.
19. Vorformling nach einem der Ansprüche 1-9, wobei die Einschnitte lasergeschnittene
Einschnitte oder Kerben sind.
20. Verfahren, umfassend
i) Bereitstellen eines schweißfreien Geozellensystems, umfassend mindestens einen
Vorformling nach einem der Ansprüche 1-19; und
ii) Strecken desselben in einer Richtung senkrecht zu den Linien der zentralen Abschnitte
(3) der Einschnitte (2), wodurch eine dreidimensionale zelluläre Struktur gebildet
wird.
21. Verfahren nach Anspruch 20, des Weiteren umfassend Schritt des Durchziehens mindestens
eines Spannglieds durch die Vorform zum Zwecke der Befestigung des Systems an einem
Hang.
22. Verfahren nach Anspruch 21, des Weiteren umfassend den Schritt des Verbindens mehrerer
der Vorformlinge, die Abschnitte des Systems bilden, mittels des Spannglieds.
23. Verfahren nach Anspruch 20, des Weiteren umfassend den Schritt des Verbindens mehrerer
der Vorformen, die Abschnitte des Systems bilden, mittels Ultraschallschweißen oder
Metallklammern.
24. Verfahren nach einem der Ansprüche 20-23, des Weiteren umfassend den Schritt des Füllens
der Zellen mit Füllstoffen, wobei die Füllstoffe vorzugsweise Sand und/oder grober
Kies und/oder Torf-Sand-Gemisch und/oder Beton sind.
25. Verfahren nach einem der Ansprüche 20-23, wobei das Verfahren die Zugabe einer Stütze
(11) zu dem schweißfreien Geozellensystem umfasst, wobei die Stütze (11) aus einem
geotextilen Material ist.
1. Préforme destinée à la production d'un système de géocellules sans soudure, ladite
préforme étant constituée d'une feuille d'un matériau souple (1), comprenant des incisions
(2), dans laquelle
- lesdites incisions (2) ont une partie centrale (3) sous la forme d'une ligne droite
et deux parties d'extrémité (4) sous une forme arquée,
- les parties centrales (3) desdites incisions (2) étant disposées en rangées (R1, R2, ..., RN), les lignes d'incision dans les rangées voisines étant décalées le long de la direction
d'incision, caractérisée en ce que
- des zones épaissies (5) sont fabriquées au niveau des parties d'extrémité (4) des
incisions (2), l'épaisseur de préforme dans lesdites zones épaissies (5) représentant
jusqu'à 300 % de l'épaisseur du corps principal du matériau en feuille (1).
2. Préforme selon la revendication 1, dans laquelle les parties d'extrémité (4) sont
fabriquées de manière à pouvoir tourner les incisions (2) de 90° par rapport à la
partie centrale.
3. Préforme selon la revendication 1, constituée d'une feuille d'un matériau polymère
ou d'un tissu à base de fibres chimiques.
4. Préforme selon la revendication 1, dans laquelle les zones épaissies (5) au niveau
des parties d'extrémité (4) des incisions (2) sont façonnées comme un cercle ou un
ovale en vue en plan.
5. Préforme selon la revendication 4, comprenant des zones épaissies supplémentaires
(6) fabriquées dans la zone où sont situées les parties centrales (3) des incisions
(2).
6. Préforme selon la revendication 5, l'épaisseur de la préforme dans lesdites zones
épaissies supplémentaires (6) représentant jusqu'à 300 % de l'épaisseur du corps principal
du matériau en feuille (1).
7. Préforme selon la revendication 1, fabriquée sous la forme d'une bande.
8. Préforme selon la revendication 1, dans laquelle le matériau en feuille (1) est renforcé
avec un fil ou un treillis.
9. Préforme selon la revendication 8, dans laquelle un fil d'aramide ou de carbone est
utilisé pour le renforcement.
10. Préforme selon l'une quelconque des revendications 1 à 9, dans laquelle les parties
centrales (3) des incisions (2) ont une même longueur L.
11. Préforme selon la revendication 10, dans laquelle les parties centrales voisines (3)
des incisions (2) dans une rangée (R1, R2, ..., RN) sont faites à une distance S entre leurs extrémités, le rapport S/L étant égal à
K1, et une valeur de K1 allant de 0,1 à 0,5, de préférence de 0,3 à 0,35.
12. Préforme selon la revendication 10, dans laquelle les parties centrales (3) des incisions
(2) dans les rangées voisines (R1, R2, ..., RN) sont faites à une distance D l'une de l'autre, le rapport D/L étant égal à K2, et
une valeur de K2 allant de 0,1 à 0,7.
13. Préforme selon la revendication 10, dans laquelle les parties d'extrémité (4) des
incisions (2) se projettent jusqu'à une longueur L1 par rapport à la partie centrale
(3), L1 allant de 1/10L à 1/15L.
14. Préforme selon la revendication 1, ladite préforme comprenant des trous supplémentaires
(7) pour câbles dans le but de fixer un système de géocellules dans son état étiré
sur une pente.
15. Préforme selon la revendication 14, dans laquelle lesdits trous supplémentaires (7)
pour câbles sont situés entre les incisions voisines (2) dans une rangée (R1, R2, ..., RN) .
16. Préforme selon la revendication 14, comprenant en outre des zones épaissies autour
des trous supplémentaires (7), l'épaisseur dans lesdites zones épaissies représentant
jusqu'à 300 % de l'épaisseur du corps principal du matériau en feuille (1) .
17. Préforme selon l'une quelconque des revendications 1 à 9, ladite préforme comprenant
des trous de drainage supplémentaires.
18. Préforme selon l'une quelconque des revendications 1 à 9, dans laquelle le matériau
en feuille est un matériau texturé.
19. Préforme selon l'une quelconque des revendications 1 à 9, dans laquelle lesdites incisions
sont des incisions ou entailles découpées au laser.
20. Procédé comprenant
i) l'obtention d'un système de géocellules sans soudure, comprenant au moins une préforme
selon l'une quelconque des revendications 1 à 9 ; et
ii) l'étirage de celle-ci dans une direction perpendiculaire aux lignes des parties
centrales (3) des incisions (2) pour former ainsi une structure cellulaire tridimensionnelle.
21. Procédé selon la revendication 20, comprenant en outre l'étape d'étirage d'au moins
un câble à travers la préforme dans le but de fixer le système sur une pente.
22. Procédé selon la revendication 21, comprenant en outre l'étape d'interconnexion de
plusieurs dites préformes formant des sections du système au moyen dudit câble.
23. Procédé selon la revendication 20, comprenant en outre l'étape d'interconnexion de
plusieurs dites préformes formant des sections du système au moyen d'un soudage par
ultrasons ou d'attaches métalliques.
24. Procédé selon l'une quelconque des revendications 20 à 23, comprenant en outre l'étape
de remplissage des cellules avec des charges, lesdites charges étant de préférence
du sable et/ou du gravier grossier, et/ou un mélange tourbe-sable, et/ou du béton.
25. Procédé selon l'une quelconque des revendications 20 à 23, ledit procédé comprenant
l'ajout d'un support (11) audit système de géocellules sans soudure, ledit support
(11) étant constitué d'un matériau géotextile.
REFERENCES CITED IN THE DESCRIPTION
This list of references cited by the applicant is for the reader's convenience only.
It does not form part of the European patent document. Even though great care has
been taken in compiling the references, errors or omissions cannot be excluded and
the EPO disclaims all liability in this regard.
Patent documents cited in the description