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EP 0 060 134 B1 |
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EUROPEAN PATENT SPECIFICATION |
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Mention of the grant of the patent: |
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26.11.1986 Bulletin 1986/48 |
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Date of filing: 09.03.1982 |
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Lining of tubular structures
Verkleidung von rohrförmigen Konstruktionen
Revêtement d'objets tubulaires
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Designated Contracting States: |
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BE DE FR IT LU NL |
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Priority: |
14.03.1981 GB 8108058 28.08.1981 GB 8126401
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Date of publication of application: |
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15.09.1982 Bulletin 1982/37 |
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Applicant: DUNLOP LIMITED |
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London SW1Y 6PX (GB) |
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Inventors: |
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- Hinton, James Jones
Millom
Cumbria (GB)
- Allen, William Thomas
Burntwood
Staffs (GB)
- Smith, John Liberty
Water Orton
West Midlands (GB)
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| (74) |
Representative: Badger, John Raymond et al |
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Dunlop Limited
Group Patent Department
P.O. Box 504 Erdington
Birmingham B24 9QH Erdington
Birmingham B24 9QH (GB) |
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| |
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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).
|
[0001] This invention relates to a method of and means for forming a lining in a preformed
tubular structure, and in particular, though not exclusively, to the lining of tunnel-type
structures such as sewers.
[0002] Many underground tunnels in the UK and overseas, and especially those used as sewers,
were constructed some 80 to 150 years ago and it is now found that although the bricks
used in construction of the tunnels are still in sound condition in many instances
the mortar between the bricks in severely eroded.
[0003] In consequence of this erosion a tunnel's ability to withstand external ground pressure
is substantially reduced and frequently a localised length of tunnel will collapse
thus resulting in much inconvenience and the need for extensive and urgent repair
work.
[0004] To guard against inadvertent collapse the brickwork can be repointed but this is
a very time consuming and expensive operation, particularly for the smaller of the
man entry type tunnels in which working space is very restricted.
[0005] The alternative approach of forming a new lining within the tunnel has the potential
advantage of facilitating provision of a smooth surface having low fluid flow resistance,
and also of reducing the requirement for extensive manual work within the restricted
space of a tunnel. However, in the currently known lining techniques, the lining structure
is relatively expensive, or time consuming to install, or there is a requirement for
extensive ground excavation at intervals along the length of the tunnel in order to
facilitate maneouvering of the lining structure into the tunnel.
[0006] A number of techniques are known for forming a tunnel structure but none are of particular
suitability for forming a lining within an existing tunnel structure. Thus in French
patent publication FR-A-2071769 there is described a method of making a large diameter
tube or pipe by using a series of long length elements which are arranged to lie side-by-side
to form the pipe and be held together by means of adhesive. It is described that a
suitable material for the elements is ceramics, but because of the inflexible nature
of such material the elements are not readily suitable for relining existing tunnel
structures especially where there is only restricted access to the existing tunnel
structure.
[0007] In German patent publication DE-B-1191640 it is described that a tunnel may be formed
from a plurality of hollow blocks which are held together by cables extending in a
circumferential direction in the resultant tunnel. However, external access is necessary
to tension the cables and thus the structure is not suitable for construction from
within an existing tunnel structure.
[0008] The present invention seeks to provide a method of lining an existing tubular structure,
and lining elements therefor, in which the aforedescribed difficulties are mitigated
or overcome.
[0009] In accordance with one aspect of the present invention a method of lining a tubular
structure comprises feeding into the structure a plurality of longitudinally flexible
elongate elements (10), at least some of which are of a kind having at least one cavity
(16) and an opening (40) in a face member (11) of the element in communication with
said cavity (16); arranging the elements to extend substantially parallel with the
direction of the length of the structure with said openings (40) facing outwards towards
the tubular structure, and with said elements disposed in a side-by-side and interlocking
configuration to form a lining which conforms substantially to the internal surface
of the tubular structure; and then injecting into said cavities a settable compound
of a kind which becomes substantially rigid when set.
[0010] In addition to injecting settable compound into said cavities preferably a settable
compound is injected between the internal surface of the tubular structure and the
external surface of the lining of elongate elements.
[0011] The settable compound may be allowed to set before further compound is injected between
the tubular structure and elongate elements, or settable compound may be caused to
flow substantially simultaneously into the cavities and between the lining and tunnel
structure.
[0012] Preferably the elongate elements are brought into side-by-side relationship by feeding
successive lengths into the tubular structure in such a mannerthatthey slide along
and are guided by the edge of an elongate element which is already installed in the
tubular structure. Preferably an elongate element is guided during insertion by means
which also effects interlocking of successive elements.
[0013] Preferably the elongate element has a length substantially greater than the maximum
cross- sectional dimension of the tubular structure being lined thereby to facilitate
relatively speedy installation of a lining and minimise the need to effect numerous
joints between the ends of successive lengths of the elongate elements.
[0014] Typically the length of each elongate element employed should be at least ten times,
and preferably 50 or more times the maximum cross- sectional dimension of the element.
Lengths of 100 metres or more are envisaged. Where, however, the requirements of the
lining dictate otherwise, e.g. gaps in the lining for side entrant tunnels, use may
be made of some elongate elements of shorter length.
[0015] Particularly where the elongate element is of a very long length, lubricant means,
either a low friction material or lubricating fluid, may be employed to facilitate
sliding movement of one element into position alongside another element.
[0016] Relative movement of an assembled pair of interlocked elements may be restrained
by the use of an adhesive. Accordingly those elements which form a roof lining may
be supported by adjacent elements with a need for only minimal, if any, temporary
support. Preferably the adhesive is of a slow acting kind and incorporated in or serving
as the aforementioned lubricant.
[0017] The elongate elements may be fed singly into the tubular structure or two or more
elements may be preassembled together in side-by-side relationship before being fed
into the tubular structure.
[0018] Suitable settable compound for filling the cavities of the elongate elements to effect
reinforcement thereof include:
grouts including cement based mixtures, and
polymer and/or resin based materials.
[0019] Suitable settable compounds for injection between the lining of elongate elements
and the internal surface of the tubular structure include those mentioned in the preceding
paragraph.
[0020] In accordance with another aspect of the present invention an elongate element for
use in lining a tubular structure comprises a pair of face members (11, 12) maintained
spaced-apart to define therebetween at least one cavity (16) into which a settable
compound may be injected, and a pair of substantially longitudinally extending formations
(13, 14) at opposite edges of the face members thereby to facilitate interlocking
said elongate element (10) in parallel side-by-side relationship with another elongate
element (10, 20) characterised in that said element is longitudinally flexible and
has an opening (40) provided in one of the face members (11) in communication with
the cavity (16) for the flow of settable compound.
[0021] Preferably said formations are complementary shaped such that a pair of said elements
may be interlocked directly together. Alternatively however a pair of elements with
similar formations complementary to those at the edges of said pair of elements to
be joined. The third element may be of a kind as defined in the preceding paragraph
or it may be of a different construction.
[0022] The substantially longitudinally extending formations may serve also as guide means
to facilitate one elongate member being slid into interlocking side-by-side relationship
with another elongate element.
[0023] At least one of a pair of formations may be formed of a low friction material, or
provided with means for facilitating lubrication of movement between two complementary
shaped formations.
[0024] One of the formations may be hollow, or otherwise shaped such that a lubricant may
be supplied therethrough to facilitate relative sliding movement between the complementary
shaped formation.
[0025] Preferably said cavity within the element extends substantially continuously along
the length thereof. The face members of the elements may be maintained spaced apart
by dividers extending continuously along the length of the element, and said dividers
may serve to define in part two or more cavities.
[0026] The elements may be of different shapes; elements of one shape may have a longitudinally
extending rib-like formation and act as spacers which contact the wall of the tubular
structure and maintain other successive elements spaced therefrom.
[0027] Not all of the elements used to form the lining of a tunnel need be elements of a
kind in accordance with the present invention. Thus, some of the elongate elements,
such as those used as wall spacers, need not be of a kind having cavities.
[0028] Suitable materials for forming the elongate elements include polyethylene, polypropylene,
polycarbonates, and unplasticised PVC. Of these it is preferred for many applications
to employ materials such as unplasticised PVC which are relatively light weight whilst
also being of a relatively low coefficient of friction such that complementary shaped
formations constructed integral with the elongate element readily facilitate relatively
sliding movement of the two elements into side-by-side interlocking relationship.
[0029] Although the elongate element should be substantially rigid so as to be adequately
self- supporting to form the lining of a tubular structure, at least when cavities
thereof are filled with a settable compound which has been allowed to set, the element
may be sufficiently flexible along its length so as to be coiled on a large diameter
storage drum from which it may conveniently be unwound for feeding into the tubular
structure. For this purpose the formation of an elongate element from a pair of face
members which are maintained spaced apart by the aforementioned dividers, which preferably
are relatively thin as compared with the face members, is particularly advantageous
insofar as the resulting construction of the element is sufficiently rigid to be self-
supporting when assembled to form the lining of a tubular structure, has a good strength
to weight ratio, and is also capable of being wound on a large drum for storage prior
to use.
[0030] If the materials or other features of the element result in it being insufficiently
flexible for storage on a drum, the element(s) may be supplied in preselected discrete
lengths.
[0031] In the case of those elongate elements of a kind having a cavity, openings may be
provided in a wall of the cavity such that in use settable compound injected into
said cavity can flow therefrom into any space between the lining and the inner surface
of a tubular structure, e.g. a tunnel wall. Thus back grouting is effected substantially
simultaneously with filling of the cavities.
[0032] Effecting back grouting substantially simultaneous with filling of the cavities results
in the lining assembly being required to withstand external, or back, pressure before
the lining elements have been strengthened by setting of the compound therein. The
consequential need to temporarily support the lining elements may be reduced or avoided
in some applications by providing openings of a suitable size and at a sufficient
frequency to obviate the need to create localised grouting pressures as great as those
required when the back grouting of a long length is effected from a single grout entry
location.
[0033] To facilitate the flow of grout between the lining elements and internal surface
of the tubular structure in the case of spacer elements, of a kind having rib-like
spacer formations to space the lining from the tubular structure, the spacer formations
should be substantially discontinuous in the longitudinal direction.
[0034] The use of a substantially discontinuous spacer formation results in interconnection
of the settable compound, either side of the spacer formation, at a substantial number
of longitudinally spaced locations. When the grout has set there results a mechanical
interlock between the grout and elongate elements by virtue of the spacer formations,
thus providing a strong composite lining structure.
[0035] Embodiments of the invention will now be described, by way of example, with reference
to the accompanying diagrammatic drawings in which:-
Figure 1 shows in perspective an end portion of an elongate lining element;
Figure 2 shows in perspective an end portion of an elongate spacer element;
Figure 3 is a cross-section of part of a tunnel structure lined with the elements
of Figures 1 and 2;
Figure 4 is a perspective view of part of a tunnel lining assembly formed from the
elements of Figures 1 and 2;
Figure 5 is a perspective view of a connector for longitudinally connecting lining
elements;
Figure 6 is a perspective view of an end portion of a space element for use alongside
the connector of Figure 5;
Figure 7 shows in perspective part of a lining element for conforming to a side entry
junction;
Figure 8 shows in perspective an end portion of another elongate lining element in
accordance with the present invention;
Figure 9 shows in perspective an end portion of another elongate spacer element in
accordance with the present invention, and
Figure 10 is a view similar to that of Figure 9 of yet another elongate spacer element
in accordance with the invention.
[0036] An elongate lining element 10 (see Figure 1) for lining a tunnel comprises a pair
of face members 11, 12 maintained spaced apart by a pair of edge formations 13, 14
and a pair of wall dividers 15. The edge formations and wall dividers extend continuously
along the length of the lining element and define therebetween, between the face members
11, 12, three longitudinally continuous cavities 16 each of substantially rectangular
shape in cross-section.
[0037] One of the edge formations, 13, comprises a tubular formation 17 having a smooth
external surface of a diameter slightly less than the spacing of the outer surfaces
of the face members 11, 12. The edge formation 13 additionally comprises an edge strip
18 which is integral with the tubular formation 17 and extends between the neighbouring
longitudinal edges of the face members.
[0038] The other edge formation 14 is in the form of a longitudinally extending groove the
internal surface of which has a shape complementary to that of the tubular formation
17 such that the formation 13 of another element may slide in and be guided by edge
formation 14.
[0039] The lining element above described is manufactured from unplasticised polyvinyl chloride
(PVC) by extrusion, this material affording the edge formations 13, 14 a low coefficient
of friction. The described element has a width of 150 mm and thickness of 20 mm.
[0040] An elongate spacer element 20 for interconnecting a pair of lining elements and maintaining
them slightly spaced from a tunnel wall is shown in Figure 2.
[0041] The spacer element 20 comprises a side-by-side pair of longitudinally extending formations
21, 22 corresponding respectively to the tubular formation 17 and edge formation 14
of the aforedescribed lining element 10. The spacer element additionally comprises
a formation 23 which is T-shaped in cross-section and the head portion 24 of which
is maintained spaced from but parallel with a plane containing the formations 21,
22 by a tail portion 25.
[0042] The spacer element is also manufactured from PVC by extrusion.
[0043] To line a tunnel long lengths of the elongate lining and spacer elements may be stored
on a pair of drums, and said drums positioned at the head of a trench cut in the ground
to have a gradual slope extending down to an access point in the tunnel.
[0044] A length of the lining element is then drawn into the tunnel from the drum, the length
being cut either to that of the length of the tunnel under renovation or the maximum
length for which elements can satisfactorily be slid into engagement, whichever is
the greater. The spacer element is then drawn from its supply drum and fed into the
tunnel with an edge formation of the spacer element co-operating with an edge formation
of the lining element so as to effect guiding of the spacer element relative to the
lining element and interlocking therewith.
[0045] Alternatively where the elements are provided in preselected discrete lengths they
may be fed into the tunnel in a similar manner to result in the required interlocking.
[0046] Particularly where elements of long length are being interconnected, liquid lubricant
may be supplied through the tubular formation 17 of the lining element (or corresponding
formation of the spacer element) in such manner as to apply lubricant to the surface
of the complementary groove formation just prior to sliding thereof over the outer
surface of the tubular formation.
[0047] Successive lengths of the two types of elements are then supplied so as to result,
for most installations, in an alternating series of spacer and lining elements. Where,
however, there is no requirement for a significant thickness of grout between the
tunnel and lining, such as for example at the floor regions, lining elements may be
directly interconnected.
[0048] Figure 3 shows the upper part of a tunnel 28 lined with an alternating series of
lining elements 10 and spacer elements 20 with the spaces between the lining elements
10 and tunnel wall and also the lining elements per se being filled with grout 29.
[0049] To facilitate lining of the roof portion of the tunnel use may be made of temporary
supports for the elements, these supports being removed after the required number
of linings have all been inserted.
[0050] Alternatively or additionally successive elements may be restrained from hinging
one relative to the other by means of adhesive acting between the complementary formations
of a pair of the elements. The adhesive may be applied instead of the lubricant, may
act as the lubricant, or be an additive to the lubricant fed through the tubular formations
in the above-described manner when necessary to facilitate relative sliding movement.
[0051] Figure 4 shows an assembly of lining and spacer elements for lining the roof and
side parts of a tunnel.
[0052] Where it is required to line a length of tunnel longer than the length of elements
which can readily be slid one relative to the other, use may be made of end connectors
30 (see Figure 6) for joining the ends of successive lining elements. Each connector
has edge formations 31, 32 corresponding to the formations 13, 14 of a lining element,
and tapered tubular location portions 33 for engagement in the cavities 16 of a lining
element. The connector 30 is of a hollow construction, typically formed by joining
two injection moulded sections (having a joint line shown as 34), and thus permits
grout to be fed directly from the cavity 16 or tubular formation of one element into
another element.
[0053] Where spacer elements 20 interconnect a pair of the connector elements it is preferable
that the T-shaped formation 23 is cut-away (see Figure 5) for a length corresponding
to the longitudinal length of the connector. Thus when grout is fed to the space between
the lining and tunnel wall there results a continuous reinforcing hoop of the grout
around the joint region.
[0054] Having assembled the required lining and spacer elements, one end of each cavity
bore of each tubular formation is blanked off (except for a small air vent orifice)
and grout is pressure injected into the bores and cavities. When this has set it results
in a substantial increase in strength of the lining, and further grout material can
then be injected between the lining and tunnel wall to fill the gap therebetween and
crevices in the tunnel brickwork without any risk of collapse of the lining. If it
is required to provide a lining at a tunnel junction preferably the elements are either
pre-cut (see Figure 7) or cut in situ in the tunnel before grout is injected either
into the elements or between the elements and tunnel wall.
[0055] An elongate lining element in accordance with a further aspect of the invention is
shown in the accompanying Figure 8, in which like reference numerals correspond to
those used for similar details as shown in Figure 1.
[0056] One of the face members 11 is provided with three series of openings 40. Each series
of openings 40 is aligned with a respective one of the three cavities 16, and the
positions of the openings in adjacent series are staggered with respect to the longitudinal
direction of the element.
[0057] In use the openings 40 provided in the wall of the cavities 16 enable settable compound
injected into said cavitity to flow therefrom into the space between the lining and
the inner surface of a tubular structure, e.g. a tunnel wall. Thus back grouting is
effected substantially simultaneously with filling of the cavities.
[0058] Two embodiments of elongate elements having spacer formations which are substantially
discontinuous are shown in part and in perspective in the accompanying Figures 9 and
10.
[0059] In Figure 9 there is shown an element 50 having a series of spacer formations 51
each comprising a head portion 52 for bearing against a tunnel wall and a tail portion
53 which interconnects between a head portion and main body portion 54 of the element.
[0060] In the embodiment of Figure 10 the tail portions 53 correspond to those of Figure
9 but the head portion 55 is longitudinally continuous. This type of construction
is particularly useful when lining tubular structures having irregular lining surfaces
because the continuous head portion acts as a smooth skid in the event of sliding
contact between the element and inner surface of the tubular structure.
[0061] In a further embodiment, not illustrated, the spacer formations 51 may be provided
on an elongate element of a kind having cavities, and preferably of a kind as shown
in Figure 8 in which openings are provided for the flow of grout from a cavity.
[0062] The head portion(s) 52, 55 of the spacer formations of the preceding two above-described
embodiments are particularly effective to provide a good mechanical interlock between
the elements and grouting, whilst the discontinuous nature of the spacer formations
permits a substantial degree of continuity of grouting material in a peripheral direction
perpendicular to the length of the lining.
1. Method of lining a tubular structure characterised in that it comprises:-
feeding into the structure a plurality of longitudinally flexible elongate elements
(10) at least some of which are of a kind having at least one cavity (16) and an opening
(40) in a face member (11) of the element in communication with said cavity (16);
arranging the elements to extend substantially parallel with the direction of the
length of the structure with said openings (40) facing outwards towards the tubular
structure, and with said elements disposed in a side-by-side and interlocking configuration
to form a lining which conforms substantially to the internal surface of the tubular
structure; and then injecting into said cavities a settable compound of a kind which
becomes substantially rigid when set.
2. Method according to claim 1 characterised in that settable compound is injected
into a cavity (16) to flow through the opening (40) to between the internal surface
of the tubular structure and the external surface of the lining formed by said elongate
elements (10).
3. Method according to claim 1 or claim 2 characterised in that settable compound
is injected between the internal surface of the tubular structure and the external
surface of the lining formed by said elongate elements (10).
4. Method according to claim 3 characterised in that settable compound injected into
the elements is allowed to set before settable compound is injected between the tubular
structure and elongate elements.
5. Method according to any one of the preceding claims characterised in that the elongate
elements (10) are brought into side-by-side relationship by feeding successive lengths
into the tubular structure in such manner that they slide along and are guided by
the edge of an element already installed in the tubular structure.
6. Method according to claim 5 characterised in that lubricant is employed to facilitate
sliding movement of one element into position alongside another element.
7. Method according to any one of the preceding claims characterised in that relative
movement of an assembled pair of interlocking elements is restrained by the use of
an adhesive.
8. Method according to claim 7 characterised in that said adhesive is of a slow acting
kind.
9. Method according to claim 7 or claim 8 characterised in that said adhesive is incorporated
in or serves as the lubricant.
10. Method according to any one of the preceding claims characterised in that the
lining of elongate elements comprises elements (20) of a kind each comprising a longitudinally
extending rib-like formation (23) arranged in the tubular structure in interlocked
relationship with other elongate elements (10) with the rib-like formations arranged
to lie outwards of the lining whereby said other elongate elements (10) are maintained
spaced from the internal surface of the tubular structure.
11. Elongate element for use in lining a tubular structure comprising a pair of face
members (11, 12) maintained spaced-apart to define therebetween at least one cavity
(16) into which a settable compound may be injected, and a pair of substantially longitudinally
extending formations (13, 14) at opposite edges of the face members thereby to facilitate
interlocking said elongate element (10) in parallel side-by-side relationship with
another elongate element (10, 20) characterised in that said element is longitudinally
flexible and has an opening (40) provided in one of the face members (11) in communication
with the cavity (16) for the flow of settable compound.
12. Elongate element according to claim 11 characterised in that said longitudinally
extending formations (13, 14) serve also as guide means for facilitating sliding of
one elongate member (10) into interlocking side-by-side relationship with another
elongate element (10, 20).
13. Elongate element according to claim 11 or claim 12 characterised in that at leastthe
surface of at least one of a pair of formations (13, 14) is formed of low friction
material.
14. Elongate element according to any one of claims 11 to 13 characterised in that
said element is provided with a hollow longitudinally extending formation (17) for
supply of lubricant therethrough.
15. Elongate element according to any one of claims 11 to 14 wherein the face members
(11, 12) of the elements (10) are maintained spaced-apart by dividers (15) which extend
along the length of the element such that said dividers (15) serve to define in part
two or more cavities (16) characterised in that a plurality of longitudinally extending
series of openings are provided in one of the face members (11), each series being
provided in communication with a respective cavity (16).
16. Elongate element according to any one of claims 11 to 15 characterised in that
it comprises a longitudinally extending rib-like formation (51).
17. Elongate element according to claim 16 characterised in that said rib-like formation
(51) comprises a longitudinally continuous head portion (52) and a longitudinally
discontinuous tail portion (53) between said head portion and the remainder (54) of
the element.
18. Tunnel lining characterised in that it comprises a plurality of elongate elements
(10) according to any one of claims 11 to 17.
19. Tunnel lining according to claim 18 characterised in that it comprises additionally
an elongate element (20, 50) provided with a longitudinally extending rib-like formation
(23, 51) arranged to maintain other elongate elements (10) spaced from the internal
surface of a tunnel structure.
20. Tunnel lining according to claim 19 characterised in that said rib-like formation
(51) is longitudinally discontinuous.
1. Procédé de garnissage d'une structure tubulaire, caractérisé en ce qu'il consiste
à introduire dans la structure une pluralité d'éléments allongés (10) longitudinalement
flexibles et dont au moins certains d'entre eux sont d'un type comportant au moins
une cavité (16) et une ouverture (40) mélangée dans une partie frontale (11) de l'élément
en communication avec ladite cavité; à disposer les éléments de manière qu'ils s'étendent
sensiblement parallèlement à la direction de la longueur de la structure de façon
que lesdites ouvertures (40) soient dirigées vers l'extérieur en direction de la structure
tubulaire, et avec lesdits éléments placés côte à côte et dans une configuration de
liaison mutuelle pour former un garnissage qui épouse sensiblement le profil de la
surface interne de la structure tubulaire; et ensuite à injecter dans lesdites cavités
un composé durcissable d'un type devenant sensiblement rigide lors de la prise.
2. Procédé selon la revendication 1, caractérisé en ce qu'un composé durcissable est
injecté dans une cavité (16) de manière à s'écouler par l'intermédiaire de l'ouverture
(40) jusqu'entre la surface interne de la structure tubulaire et la surface externe
du garnissage formé par lesdits éléments allongés (10).
3. Procédé selon la revendication 1 ou la revendication 2, caractérisé en ce qu'un
composé durcissable est injecté entre la surface interne de la structure tubulaire
et la surface externe du garnissage formé par lesdits éléments allongés (10).
4. Procédé selon la revendication 3, caractérisé en ce que du composé durcissable
injecté dans les éléments peut prendre avant que du composé durcissable soit injecté
entre la structure tubulaire et des éléments allongés.
5. Procédé selon une quelconque des revendications précédentes, caractérisé en ce
que les éléments allongés (10) sont placés côte à côte en introduisant des tronçons
successifs dans la structure tubulaire d'une manière telle qu'ils coulissent le long
et soient guidés par le bord d'un élément déjà installé dans la structure tubulaire.
6. Procédé selon la revendication 5, caractérisé en ce qu'un lubrifiant est utilisé
pour faciliter le mouvement de glissement d'un élément jusque dans une position située
à côté d'un autre élément.
7. Procédé selon une quelconque des revendications précédentes, caractérisé en ce
qu'un mouvement relatif de deux éléments qui ont été assemblés l'un avec l'autre est
empêché par utilisation d'un adhésif.
8. Procédé selon la revendication 7, caractérisé en ce que ledit adhésif est d'un
type à action lente.
9. Procédé selon la revendication 7 ou la revendication 8, caractérisé en ce que ledit
adhésif est incorporé dans le lubrifiant ou bien sert de lubrifiant.
10. Procédé selon une quelconque des revendications précédentes, caractérisé en ce
que le garnissage en éléments allongés comprend des éléments (20) d'un type comprenant
chacun une partie profilée (23) en forme de nervure s'étendant longitudinalement et
disposée dans la structure tubulaire de manière à entrer en relation d'assemblage
avec d'autres éléments allongés (10) dont les parties profilées (23) en forme de nervures
sont disposées de façon à être placées à l'extérieur du garnissage, de telle sorte
que lesdits autres éléments allongés (10) soient maintenus espacés de la surface interne
de la structure tubulaire.
11. Elément allongé utilisable dans le garnissage d'une structure tubulaire, caractérisé
en ce qu'il comprend une paire de parties frontales (11, 12) maintenues espacées l'une
de l'autre pour définir entre elles au moins une cavité (16) dans laquelle un composé
durcissable peut être injecté, et une paire de parties profilées (13, 14) s'étendant
sensiblement longitudinalement sur des bords opposés des parties frontales de façon
à faciliter ainsi un assemblage mutuel dudit élément allongé (10), dans une relation
parallèle et côte à côte, avec un autre élément allongé (10, 20), caractérisé en ce
que ledit élément est longitudinalement flexible et comporte une ouverture (40) ménagée
dans une des parties frontales (11) en communication avec la cavité (16) pour l'écoulement
du composé durcissable.
12. Elément allongé selon la revendication 11, caractérisé en ce que lesdites parties
profilées (13, 14) s'étendant longitudinalement servent également de moyens de guidage
pour faciliter le glissement d'un élément allongé (10) dans une relation d'assemblage
côte à côte avec un autre élément allongé (10, 20).
13. Elément allongé selon la revendication 11 ou la revendication 12, caractérisé
en ce qu'au moins la surface d'au moins une des deux parties profilées (13,14) est
formée d'un matériau à faible coefficient de frottement.
14. Elément allongé selon une quelconque des revendications 11 à 13, caractérisé en
ce que ledit élément est pourvu d'une partie profilée creuse (17) s'étendant longitudinalement
pour recevoir du lubrifiant.
15. Elément allongé selon une quelconque des revendications 11 à 14, dans lequel les
parties profilées (11, 12) des éléments (10) sont maintenues espacées l'une de l'autre
par des parties séparatrices (15) qui s'étendent sur la longueur de l'élément de telle
sorte que lesdites parties séparatrices (15) servent à définir au moins deux cavités
ou plus (16), caractérisé en ce que plusieurs séries, s'étendant longitudinalement,
d'ouvertures sont ménagées dans une des parties frontales (11), chaque série étant
disposée en communication avec une cavité respective (16).
16. Elément allongé selon une quelconque des revendications 11 à 15, caractérisé en
ce qu'il comprend une partie profilée en forme de nervure (51) s'étendant longitudinalement.
17. Elément allongé selon la revendication 16, caractérisé en ce que ladite partie
profilée en forme de nervure (51) comprend une portion de tête (52) longitudinalement
continue et une portion de queue (53) longitudinalement discontinue et placée entre
ladite portion et le reste (54) de l'élément.
18. Garnissage de tunnel caractérisé en ce qu'il comprend une pluralité d'éléments
allongés (10) conformes à une quelconque des revendications 11 à 17.
19. Garnissage de tunnel selon la revendication 18, caractérisé en ce qu'il comprend
additionn- ellement un élément allongé (20, 50) pourvu d'une partie profilée en forme
de nervure (23, 51) s'étendant longitudinalement et agencée pour maintenir d'autres
éléments allongés (10) espacés de la surface interne d'une structure de tunnel.
20. Garnissage de tunnel selon la revendication 19, caractérisé en ce que ladite partie
profilée en forme de nervure (51) est longitudinalement discontinue.
1. Verfahren zum Auskleiden eines rohrförmigen Bauwerkes, dadurch gekennzeichnet,
daß in das Bauwerk eine Vielzahl von in Längsrichtung flexiblen langgestreckten Elementen
(10) eingeführt wird, von denen wenigstens einige wenigstens einen Hohlraum (16) und
eine Öffnung (40) in einem Stirnelement (11) der Elemente in Verbindung mit dem Hohlraum
(16) aufweisen, die Elemente so angeordnet werden, daß sie im wesentlichen parallel
zur Richtung der Längserstreckung des Bauwerkes verlaufen, die Öffnungen (40) nach
außen zum rohrförmigen Bauwerk gerichtet sind und die Elemente Seite an Seite und
in einer gegenseitig verriegelten Form angeordnet sind, so daß eine Auskleidung gebildet
ist, die im wesentlichen mit der Innenfläche des rohrförmigen Bauwerkes konform geht,
und daß anschließend in die Hohlräume eine aushärtbare Masse eingespritzt wird, die
dann, wenn sie aushärtet, im wesentlichen starr wird.
2. Verfahren nach Anspruch 1, dadurch gekennzeichnet, daß die aushärtbare Masse in
einen Hohlraum (16) eingespritzt wird, so daß sie durch die Öffnung (40) in den Raum
zwischen der Innenfläche des rohrförmigen Bauwerkes und der Außenfläche der Auskleidung
fließt, die durch die langgestreckten Elemente (10) gebildet wird.
3. Verfahren nach Anspruch 1 oder 2, dadurch gekennzeichnet, daß die aushärtbare Masse
in den Raum zwischen der Innenfläche des rohrförmigen Bauwerkes und der Außenfläche
der Auskleidung eingespritzt wird, die von den langgestreckten Elementen (10) gebildet
wird.
4. Verfahren nach Anspruch 3, dadurch gekennzeichnet, daß die aushärtbare Masse, die
in die Elemente eingespritzt wird, aushärten gelassen wird, bevor die aushärtbare
Masse in den Raum zwischen dem rohrförmigen Bauwerk und den langgestreckten Elementen
eingespritzt wird.
5. Verfahren nach einen der vorhergehenden Ansprüche, dadurch gekennzeichnet, daß
die langgestreckten Elemente (10) in eine Anordnung Seite an Seite dadurch gebracht
werden, daß aufeinanderfolgende Stücke in das rohrförmige Bauwerk derart eingeführt
werden, daß sie an der Kante eines bereits im rohrförmigen Bauwerk angeordneten Elementes
entlang gleiten und durch diese Kante geführt werden.
6. Verfahren nach Anspruch 5, dadurch gekennzeichnet, daß ein Gleitmittel verwandt
wird, um die Gleitbewegung eines Elementes in seine Lage längsseits eines anderen
Elementes zu erleichtern.
7. Verfahren nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, daß
die Relativbewegung eines montierten Paares von Verriegelungselementen durch die Verwendung
eines Klebemittels beschränkt wird.
8. Verfahren nach Anspruch 7, dadurch gekennzeichnet, daß das Klebemittel ein langsam
wirkendes Klebemittel ist.
9. Verfahren nach Anspruch 7 oder 8, dadurch gekennzeichnet, daß das Klebemittel im
Gleitmittel enthalten ist oder als Gleitmittel dient.
10. Verfahren nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, daß
die Auskleidung aus den langgestreckten Elementen Elemente (20) umfaßt, die jeweils
ein längsverlaufendes rippenartiges Gebilde (23) umfassen, und in dem rohrförmigen
Bauwerk mit anderen langgestreckten Elementen (10) verriegelt angeordnet sind, wobei
die rippenartigen Gebilde so angeordnet sind, daß sie von der Verkleidung nach außen
verlaufen, wodurch die anderen langgestreckten Elemente (10) im Abstand von der Innenfläche
des rohrförmigen Bauwerks gehalten werden.
11. Langgestrecktes Element zur Verwendung beim Auskleiden eines rohrförmigen Bauwerkes,
dadurch gekennzeichnet, daß es zwei Stirnelemente (11, 12), die im Abstand voneinander
gehalten sind, um dazwischen wenigstens einen Hohlraum (16) zu begrenzen, in den eine
aushärtbare Masse eingespritzt werden kann, und zwei im wesentlichen längsverlaufende
Gebilde (13, 14) an den gegenüberliegenden Rändern der Stirnelemente umfaßt, um dadurch
die Verriegelung des langgestreckten Elementes (10) parallel Seite an Seite mit einem
anderen langgestreckten Element (10, 20) zu erleichtern, und daß das Element in Längsrichtung
flexibel ist und eine Öffnung (40) aufweist, die in einem der Stirnelemente (11) in
Verbindung mit dem Hohlraum (16) für den Fluß der aushärtbaren Masse vorgesehen ist.
12. Langgestrecktes Element nach Anspruch 11, dadurch gekennzeichnet, daß die längsverlaufenden
Gebilde (13, 14) auch als Führungseinrichtung zum Erleichtern des Gleitens eines langgestreckten
Elementes (10) in eine verriegelte Seite-an-Seite-Lage mit einem anderen langgestreckten
Element (10, 20) dient.
13. Langgestrecktes Element nach Anspruch 11 oder 12, dadurch gekennzeichnet, daß
wenigstens die Außenfläche von wenigstens einem von zwei Gebilden (13, 14) aus einem
Material mit niedriger Reibung gebildet ist.
14. Langgestrecktes Element nach einem der Ansprüche 11 bis 13, dadurch gekennzeichnet,
daß das Element mit einem hohlen längsverlaufenden Gebilde (17) versehen ist, um dahindurch
ein Gleitmittel zuzuführen.
15. Langgestrecktes Element nach einem der Ansprüche 11 bis 14, wobei die Stirnelemente
(11, 12) der Elemente (10) im Abstand durch Teilstücke (15) gehalten sind, die längs
des Elementes verlaufen, so daß die Teilstücke (15) dazu dienen, zum Teil zwei oder
mehr Hohlräume (16) zu begrenzen, dadurch gekennzeichnet, daß eine Vielzahl von längsverlaufenden
Reihen von Öffnungen in einem der Stirnelemente (11) vorgesehen ist, wobei jede Reihe
in Verbindung mit einem jeweiligen Hohlraum (16) vorgesehen ist.
16. Langgestrecktes Element nach einem der Ansprüche 11 bis 15, dadurch gekennzeichnet,
daß es ein längsverlaufendes rippenartiges Gebilde (51) umfaßt.
17. Langgestrecktes Element nach Anspruch 16, dadurch gekennzeichnet, daß das rippenartige
Gebilde (51) einen in Längsrichtung durchgehenden Kopfteil (52) und einen in Längsrichtung
unterbrochenen Schwanzteil (53) zwischen dem Kopfteil und dem Rest (54) des Elementes
umfaßt.
18. Tunnelauskleidung dadurch gekennzeichnet, daß sie eine Vielzahl von langgestreckten
Elementen (10) nach einem der Ansprüche 11 bis 17 umfaßt.
19. Tunnelauskleidung nach Anspruch 18, dadurch gekennzeichnet, daß sie zusätzlich
ein langgestrecktes Element (20, 50) umfaßt, das mit einem längsverlaufenden rippenartigen
Gebilde (23, 51) versehen ist, das so angeordnet ist, daß es die anderen langgestreckten
Elemente (10) im Abstand von der Innenfläche eines Tunnelbauwerkes hält.
20. Tunnelauskleidung nach Anspruch 19, dadurch gekennzeichnet, daß das rippenartige
Gebilde (51) in Längsrichtung unterbrochen ist.