[0001] The present invention relates to a method for introducing an elongated foundation
element at least partially into the ground according to the preamble of claim 1.
[0002] Traditionally, introducing foundation elements takes place by means of pile-driving,
however, this technique has several disadvantages. In particular, there is noise nuisance,
and there is the risk of damage to surrounding buildings and the like as a result
of the vibrations that accompany pile-driving. For this reason, techniques have been
developed which make use of drilling. It is known to introduce a foundation element
into the ground by rotating a hollow tube into the ground which tube at its bottom
end engages a drilling head ("drilling tip") which drilling head pushes away the ground.
Next, there are two different ways to continue. According to the first method, the
tube is filled up with concrete, and the (expensive, metal) tube remains in the ground.
According to the second technique, a prefabricated foundation element is introduced
into the tube after introducing the tube into the ground, whereupon the cavities between
the inner tube wall and the foundation element are filled up with concrete, while
the tube is lifted up again before the concrete sets. According to an alternative
method for introducing a prefab foundation element into the ground, a hole is drilled
after which the foundation element is placed into the drilled hole.
[0003] JP2002081059 discloses a method in which an elongated foundation element is introduced into the
soil using a drilling head provided with a spiral blade. Rotating the drilling head
drives the drilling head into the ground, and it also pushes soil sideways; allowing
the foundation element to be introduced. The drilling head remains in the ground after
drilling. The method allows for a reduced risk of damage to the elongated driving
pile due to torsional forces.
[0004] The object of the present invention is to provide a method for introducing an elongated
prefab foundation element at least partially into the ground, which causes little
nuisance, little damage to the surroundings, and is cost effective.
[0005] To this end, the invention provides a method for introducing an elongated prefab
foundation element at least partially into the ground, comprising the steps as mentioned
in claim 1.
[0006] The invention provides for introduction of a prefabricated foundation element into
the ground. An important advantage that is achieved this way is that the load bearing
capacity of such an element is better known beforehand, which is important for the
construction of a building that is to be build on the foundation. Contrary to pile
driving, the foundation element is not exposed to impact loading which limits the
risk of cracking of the foundation element. Optionally, the reinforcement can also
be closer to the surface of the foundation element than with foundation elements that
are introduced into the ground by pile driving. The reinforcement can be prestressed
reinforcement for those applications where the foundation element (also) has to be
able to withstand pulling forces. With the method of the invention, the foundation
element can be provided with a conduit for storing heat and/or cold in the ground
or withdrawing heat and/or cold from the ground. Alternatively, or additionally, such
a conduit may also be introduced into the channel after introducing the foundation
element into the ground. By using the cheaper method according to the invention, such
a usage of the ground is economically more feasible. In addition, the invention is
extremely suitable for introducing foundation elements that are not round, which contributes
to the economical aspect even more. When introducing the foundation element into the
ground, the total of the rotating surface area that is in contact with the ground
is significantly smaller or even zero (apart from, of course, the drilling head),
in comparison with the technique of rotating a hollow tube into the ground, since
the foundation element will not co-rotate simultaneously, or only slightly, thus reducing
the friction and thus reducing the energy required for the introduction. According
to the method of the invention the foundation element may have a circular cross section,
but according to an important advantage of the invention the cross section may instead
be unround, such as elliptical, a regular or irregular polygon (e.g. pentagonal, hexagonal,
heptagonal, octagonal, nonagonal, decagonal, and from the viewpoint of costs preferably
quadrangular or rectangular) etc., yet achieving a proper adhesive force of the outer
longitudinal sides and/or longitudinal ribs of the foundation element to the ground.
When in the present invention a channel is mentioned, a through-space in the longitudinal
direction of the foundation element is meant. The foundation element is a hollow foundation
element. Within the scope of the present invention the phrase "hollow foundation element"
means that in cross section the foundation element exhibits a hole, which hole is
the channel into which the driving shaft is introduced. According to an alternative
construction which is not claimed, the space opens up at one side of the foundation
element. In that case, the foundation element has for instance a U-shaped cross section.
For effectively introducing into the ground and/or providing a foundation element
that can be properly loaded, the central axis of the foundation element will in practice
be within the space. The position of the central axis can be determined by wrapping
an (imaginary) wire around the foundation element in a plane perpendicular to the
longitudinal direction of the foundation element. In that case, the central axis is
the line that runs in the longitudinal direction of the foundation element through
the place-average centre of the circumference that is determined by the wire. The
largest diameter of the foundation element is defined as twice the distance between
the central axis and a point situated on the wire that is located furthest away of
the central axis. The smallest diameter of the foundation element is defined as twice
the distance between the central axis and a point situated on the imaginary wire that
is located nearest to the central axis. Preferably, the method is carried out such
that the ground is cut through by the drilling head less than 1 cm beyond the largest
diameter of the foundation element, more preferably, the ground is not cut through
beyond the largest diameter. For foundation elements having polygonal cross-sections,
the diameter of the drilling head may also be somewhat smaller in which case the foundation
elements may allow for an adhesive (friction) load, while intermediate areas have
no adhesion until the ground around the foundation element has settled. Because of
the selected shape and the rotating movement, the drilling head pushes away the earth
sidewards, facilitated by the downward force exerted by the drilling head via the
driving shaft. A (generally significantly smaller) downward force will be exerted
on the foundation element also in order to ensure that the drilling head and the foundation
element are not separated from one another to such an extent that the foundation element
is no longer moved downward together with the drilling head. The downward pull and/or
push force exerted on the drilling engine by a device (such as a winch, a hydraulic
device and the like) which is exerted on the drilling head via the driving shaft,
is at least 1 ton (i.e. 1 ton more than the tare weight of the totality of the drilling
engine, foundation element and driving shaft), preferably at least 2 tons. This force
is selected depending on the chosen circumstances (ground conditions, pile diameter,
shape of the drilling head etc.), but can be readily determined by the ordinary expert:
When the foundation element does not enter the ground or does not enter the ground
quickly enough, the downward force has to be increased.
[0007] In general, the foundation element that has to be introduced into the ground will
have over its length essentially the same dimensions (cross section). The ground that
is pushed away by the drilling head will be displaced at least partially and in practice
virtually entirely sidewards. When in the present application "which driving shaft
is driven near the top end of the foundation element" is mentioned, this is intended
to mean: At a greater distance from the lower end of the foundation element than from
the top end. In practice, the driving shaft will be driven by the drilling engine
at the upper end of the foundation element. By exerting the downward force it is also
possible to introduce a prefab foundation element by drilling at an angle. This angle
is for instance at least 5°, but can also be more than 10°. To avoid unnecessary friction
between the bottom of the foundation element and the drilling head it is preferred
that the downwardly directed force exerted on the drilling head is greater than the
force that may be exerted on the foundation element. With the method according to
the invention the drilling head remains in the ground.
[0008] DE19746731A1 discloses a system in which a sheet pile element is introduced into the ground wherein
soil is loosened up by a drilling head and placed into a container which is regularly
moved to the earth's surface to be emptied there. In order to achieve some load bearing
capacity, grout has to be introduced at the bottom of the sheet pile element.
[0009] JP2003147770 discloses a method for introducing a foundation element into the ground wherein a
drilling head is screwed into the ground. The load bearing strength of the foundation
element is determined by the strength of the attachment of the spiral-shaped flange
of the drilling head to the body of the drilling head, generally a weld. Alternatively,
the flange may be an integrally cast portion, in which case the drilling head is very
expensive, especially since the drilling head remains in the ground. Using this method,
essentially only circular foundation elements can be (accurately) placed. With the
method according to the present invention, the drilling head will substantially be
a closed head (as a result of which at the most a negligible amount of soil will end
up in the channel). Thus, the drilling head can be loaded very effectively. With the
method according to the present application, the ground below the head is compressed,
resulting in less settlement.
[0010] DE 20 2004 020804 discloses a method for introducing a foundation element into the ground, said foundation
element having a central channel for an auger which is used to transport soil to the
surface. It discloses the use of a chisel head to interrupt the introduction of the
foundation element to break up stones and the like.
[0011] GB1125853 discloses a method for introducing an elongated prefab foundation element into the
ground. The elongated prefab foundation comprises a channel extending along its length
where a driving shaft is connected to a drilling head provided at the bottom of the
prefab foundation element, said driving shaft with an auger being driven by a drilling
engine. The engine is moved up and down by a platform to control the height of the
drilling head and to clamp a bucket where the soil is to be stored.
[0012] According to a preferred embodiment, the driving shaft and the drilling head engage
detachably and the driving shaft is removed from the channel of the foundation element
after the foundation element has at least been partially introduced into the ground.
[0013] Because of this, the driving shaft can be used for the introduction into a channel
of a subsequent foundation element. According to a practical embodiment of the method
according to the invention, the driving shaft is retained by the drilling engine.
In such a case, with this favorable embodiment, this retention can be used to pull
the driving shaft up from the channel.
[0014] Preferably, the drilling head has a largest diameter between the smallest diameter
and the largest diameter of the foundation element.
[0015] Thus, a foundation element that is not round can be introduced into the ground quickly,
while the ground is further minimally disturbed and can accommodate itself to the
foundation element around the foundation element. The diameter of an elongated foundation
element is, as customary in the art, calculated transverse to the longitudinal direction
of the elongated foundation element, and is defined hereabove exactly.
[0016] According to a very favorable embodiment of the method according to the invention,
the base of the foundation element is provided with an organ against which the drilling
head can rotate with reduced friction, and wherein the organ is provided with an opening
for letting through the driving shaft.
[0017] The organ can be a coating that is applied either prior to, during or after the manufacture
of the foundation element, or a separate organ that is placed, clenched to the lower
end of the foundation element or fastened therewith for instance by gluing. The opening
allows the driving shaft to reach the drilling head in order to be able to drive it.
[0018] According to a preferred embodiment, the foundation element is a foundation element
that has a space in the longitudinal direction thereof such that it allows for the
driving shaft to be introduced into the channel via a longitudinal side of the foundation
element.
[0019] This embodiment facilitates the introduction of the driving shaft into the channel,
which saves time and costs. Consequently, the device for introducing the elongated
foundation element into the ground can be significantly less high, which is a major
advantage. The phrase "introducing the driving shaft into the channel via a longitudinal
side of the foundation element" also includes fitting the driving shaft around the
foundation element. For that matter, after introducing the driving shaft into the
channel, the longitudinal side may be closed completely or partially thus forming
a hollow foundation element as described above. In
DE19746731A1 the space is used for passing through a protruding portion of the drilling head,
and not for introducing the driving shaft via the longitudinal side.
[0020] The application also discusses a device for the introduction of a foundation element
into the ground, which device is not part of the claimed invention, and which device
includes a drilling engine for driving a driving shaft that is substantially directed
vertically, the driving shaft being adjustable in height with respect to the drilling
engine, and wherein the device is provided with an organ for exerting a downwardly
directed force on the drilling engine.
[0021] Such a device is very flexible and, if so desired, can be used with hollow foundation
elements or with foundation elements wherein the driving shaft is introduced into
the channel via a longitudinal side of the foundation element. The term "substantially
vertically" means at an angle between 45° and 90° with the horizontal. The organ for
exerting a downwardly directed force is for instance a winch. Alternatively, or additionally,
the downwardly directed force can also be exerted hydraulically and/or using rack-and-pinion
driving and/or a chain- and gear driving. Such a device can introduce a foundation
element into the ground more quickly, and thus more economically. Such a device also
allows the introduction of foundation elements into types of soil other than soft
soil.
[0022] According to a preferred construction of the device, the drilling engine is arranged
to engage the driving shaft, and further the drilling engine is provided with a centering
organ to centre the foundation element in order to prevent the driving shaft from
touching the wall of the channel.
[0023] Especially at the beginning of the drilling, the centering organ plays an important
role in sparing the wall of the channel since it limits swerves of the upper end to
a large extent. Advantageously, the centering organ, which for instance has the shape
of a coupling sleeve, also provides a downward pressure, or part thereof, on the foundation
element when this stays behind relative to the drilling head because of sticking/adhesion
when introducing it into the ground. Additionally, the centering organ is advantageously
suspended rotatably around an axis - that coincides with the rotating axis of the
drilling engine - but in such a way that translation of the centering organ in a plane
transverse to that axis is avoided to a large extent. This makes it possible to readily
include the upper end of a foundation element that is not round in the centering organ.
[0024] It will be understood that when a drilling engine is mentioned this also includes
a drilling engine that is contained in a housing (case), where the housing includes
the centering organ, the downward force is exerted on the housing and thus on the
drilling engine etc. and that the term drilling engine hence also includes a housing
therefore, as long as the housing includes a drilling engine, as a result of which
such variants fall within the scope of the accompanying claims. If the driving shaft
can be passed through the drilling engine, it can also be passed through the housing.
[0025] The present invention will now be elucidated referring to the drawings, where
fig. 1 shows a device 1 for introducing a foundation element into the ground;
fig. 2a and b show in top view respectively side view an organ which can be provided
at the lower end of a foundation element to be introduced into the ground;
fig. 3 shows a detail of the device of fig. 1 together with a foundation element that
has been introduced into the ground partially; and
fig. 4 shows sectional views of four foundation elements which can be introduced into
the ground using the method according to the invention.
[0026] Fig. 1 shows a device 1 suitable for use in the method according to the invention,
which in the embodiment shown here is designed as a vehicle having caterpillar tracks
2. The vehicle includes a leader 3. A leader 3 is that part of the device that carries
and guides the heavy vertically movable parts of the device. In particular, the leader
3 is provided with a drilling engine 4. This drilling engine 4 can be moved along
the leader 3 in a manner known per se. The drilling engine 4 can drive a shaft 5.
Preferably, the drilling engine 4 is arranged such that the driving shaft 5 can be
passed through the drilling engine 4 and can be held at a desired position on the
driving shaft 5.
[0027] Although the device 1 is a device that is substantially known, now first some known
features of the device 1 as shown in figure 1 will be discussed. The leader 3 is connected
with the vehicle such that it can be tilted via connecting element 25 capable of acting
as a cardan joint. A hydraulic cylinder 26 is present for positioning the leader 3
at the desired height. The hydraulic cylinder 27 is present for positioning the leader
3 at the desired angle. At the ends of the leader 3, there are pulleys 20, 21 which
serve to move the drilling engine 4 along the leader 3 using cables 22, 23. For moving
upwards the drilling engine 4 along the leader 3, cable 23 is connected to winch 29
in a manner known per se via pulleys 21 and 42. For exerting a downward force on the
drilling engine 4 the device 1 is provided with a winch 28, which force is transferred
to the drilling engine 4 via cable 22 and a pulley 42. For the sake of the figure's
clarity, the cable path within the leader 3 is not shown.
[0028] From the viewpoint of saving weight and in order to be able to handle large torque
forces, the driving shaft 5 is preferably hollow. The diameter of the driving shaft
5 can vary depending on the diameter of a foundation element 100 to be introduced
into the ground, and is for instance 10 - 20 cm. Its length will similarly also depend
on the length of the foundation element as well as on the way in which the drilling
engine 4 engages the driving shaft 5.
[0029] An elongated foundation element 100 to be introduced into the ground using the method
according to the invention, has a channel 6 extending in the longitudinal direction
of the foundation element, in general from one end of the foundation element 100 to
the other. The driving shaft 5 is introduced into the channel 6. The way in which
this can be done depends on the type of foundation element 100 that is used. When
using a hollow foundation element 100 wherein the lumen of the channel 6 is in contact
with the surroundings only at both ends of the foundation element, the driving shaft
5 will be introduced into the channel 6 at one end of the foundation element 100.
In practice, this will take place when the foundation element 100 is preferably at
least partially erected, and preferably when it is in a substantially vertical position.
Another option will be discussed later.
[0030] Under the driving shaft 5 a drilling head 7, also called drilling tip, is connected
which is designed for mainly sideward displacement. Such a drilling head 7 is known
per se, and is for instance available from Rademakers Gieterij BV, Klazienaveen, The
Netherlands. The driving shaft 5 engages a cavity in the drilling head 7. The drilling
head 7 is for instance manufactured out of cast iron. The diameter of the drilling
head 7 will be selected depending on the type of soil, diameter and cross section
(shape) of the foundation element 100 and the like. In case there is a risk of negative
adhesion, this may be prevented by selecting a drilling head 7 having a large diameter
that can be larger than the largest diameter of the foundation element 100. When using
a downward force exerted upon the foundation element 100 the diameter of the drilling
head 7 may be smaller than when no such force is exerted.
[0031] Between the lower end of the foundation element 100 and the drilling head 7 an organ
8 may be provided, having at least 1 of the following functions: lowering the friction
between the lower end of the foundation element 100 and the drilling head 7, avoiding
that the driving shaft 5 touches the wall 9 of the channel and to make sure that the
driving shaft 5 stays well centred in the channel 6.
[0032] The organ 8 has for instance the shape of a plate 10 (fig. 2) which at opposite ends
is provided with upright edges 11 which are clamped around the lower end of the foundation
element 100. The plate 10 further has a space or aperture 12 for letting through the
driving shaft 5. The organ 8 is for instance manufactured out of cast iron.
[0033] For introducing the foundation element 100 into the ground the drilling engine 4
will drive the driving shaft 5, causing the drilling head 7 to rotate. The drilling
head 7 pushes away ground, mainly sidewards, as a result of which a hole is formed
in the ground and at the same time foundation element 100 is introduced into the ground.
In general, the foundation element 100 does not rotate. Especially, when using a drilling
head 7 having a relatively small diameter it can be necessary to exert a large downward
force on the foundation element 100. In practice, exerting a large downward force
will be necessary in order to be able to introduce a foundation element 100 into the
ground when that ground is firm. However, also in the case of soft ground exerting
a large downward force will be (economically) advantageous, as this saves time. The
downward force is provided by exerting a downward force on the drilling engine 4,
for instance by means of cable 22, pulley 42 and winch 28. By selecting an appropriate
length of the driving shaft 5, or height at which this is held by the drilling engine
4, a downward force can be exerted on the foundation element 100 also.
[0034] The drilling engine 4 is at its bottom provided with a centering organ 30, here in
the shape of a square coupling sleeve which is placed over the upper end of the foundation
element 100, and incorporated therein. Alternatively, in the case of a hollow foundation
element 100 the centering organ can also use the channel to centre the foundation
element 100.
[0035] At the bottom of the leader 3 a guiding organ 41 is provided for guiding the foundation
element 100. Here, the guiding organ 41 is in the shape of two arms, which either
clasp with low friction or loosely surround the foundation element 100.
[0036] Fig. 3 shows the foundation element 100 partially introduced into the ground. The
pulleys 20 and 42' (situated behind pulley 42) and cable 22 that are preferably used
here also are, for that matter, not shown.
[0037] If it is desired to introduce the foundation element 100 further into the ground
than the drilling engine 4 can reach with respect to the leader 3, a so-called spacer
(= intermediate element) may be used between the drilling engine 4 and the upper end
of the foundation element 100.
[0038] It will be understood that using the method according to the invention, a foundation
element 100 can also be introduced into the ground at another angle than vertical.
In general, the leader 3 will be positioned at the same angle.
[0039] When the device 1 is used for introducing a foundation element 100 into the ground,
wherein the lumen of the channel 6 is in contact with the surroundings only at both
ends of the foundation element, the leader 3 will be provided with an extension arm
16 that can be moved parallel to the leader 3, for instance in the form of a telescopic
tube, which may be hydraulic or pneumatic, but preferably has a winch (not shown).
In that case, the driving shaft 5 will be connected near the upper end thereof, in
such a way that the driving shaft 5 is still able to rotate around its axis, or be
arranged to release the driving shaft 5 when the drilling engine 4 has to drive the
driving shaft 5 (fig. 3).
[0040] According to a preferred embodiment, the use of such an extension arm 16 that can
be moved parallel to the leader 3, is avoided by using a foundation element 100 that
is arranged to introduce the driving shaft 5 into the channel 6 via a longitudinal
side of the foundation element. Fig. 4 shows four sectional views of foundation elements
100-103, wherein the foundation elements 102 and 103 at a longitudinal side have a
side opening 104. In practice, this will extend along the entire length of the foundation
elements 102, 103. However, it is, for instance, conceivable that an end of the foundation
element 102, 103 has a cross section for foundation elements 100 or 101 as shown in
fig. 4, as long as the driving shaft (drilling rod) can be introduced into the channel
6 via the longitudinal side. The foundation elements 102, 103 can be said to have
a U-shaped cross section.
[0041] Although, in fig. 4 four square foundation elements 100-103 are shown, a wide variety
of cross-sections is possible, such as polygons that may or may not be regular, elliptical
or circular cross-sections etc. All these variants are possible, and may or may not
be combined with a side opening 104 allowing the driving shaft 5 to be introduced
into the channel 6 via the side opening.
[0042] Although minor deviations are permissible, the central axis of the driving shaft
5 will generally coincide with the central axis of the channel 6, and the channel
6 will be dimensioned such that the outer periphery of the driving shaft 5 fits within
the channel 6. From the viewpoint of strength, the channel 6 will generally have an
at least partially circular cross section, but this is not necessary. A hollow foundation
element could for instance have a channel with a square cross section (not shown).
[0043] It will be apparent to the ordinary person skilled in the art that the present invention
can be varied in various ways within the scope of the accompanying claims. The channel
may, for example, be used for introducing a conduit for the thermal usage of the ground,
reinforcement can be provided into the channel and embedded in grout, the driving
shaft can be hollow and the cavity can be used to introduce a setting mass (such as
grout) into the cavity during the pulling upwards of the driving shaft etc. It is
also possible to introduce a foundation element in more than 1 part, wherein these
parts, if so desired, are for example connected via a mortise and tenon joint. For
pile-driving this technique is very expensive as the joints have to be able to withstand
the pile-driving process, but because of the low load (which is not impact-based),
more simple (and thus cheaper) joints are possible. Before the drilling engine is
pulled up, the driving shaft is disengaged (i.e. no longer clasped by the drilling
engine). The drilling engine is pulled up over such a distance that a next section
with an opening along the longitudinal side can be placed around the driving shaft,
after which this section is at least partially introduced into the ground.
1. A method for introducing an elongated prefab foundation element (100) at least partially
into the ground, the elongated prefab foundation element (100) having a channel (6)
extending along the length of the foundation element (100), wherein a drilling head
(7) provided at the bottom of the hollow foundation element (100) is driven by a driving
shaft in the channel (6) of the foundation element (100), the driving shaft being
driven by a drilling engine (4) near the top end of the foundation element (100),
wherein the drilling head is a substantially closed drilling head, with ground being
pushed sideways virtually entirely and the foundation element (100) being introduced
at least partially into the ground by the driving of the drilling head (7), following
which the drilling head (7) is left in the ground,
characterized in that a downwardly directed pull and/or push force is exerted on the drilling engine (4),
and via driving shaft (5) to the drilling head (7) by a device wherein the downwardly
directed pull and/or push force results in the foundation element (100) being introduced
into the ground.
2. A method according to claim 1, wherein the method comprises the step of exerting a
downwardly directed force on the drilling engine (4) of at least 2 ton.
3. The method according to any of the preceding claims, wherein the foundation element
(100) is a foundation element (100) having a side opening in the longitudinal direction
thereof such that it allows the driving shaft to be introduced into the channel (6)
via a longitudinal side of the foundation element (100).
4. The method according to any of the preceding claims, wherein the driving shaft and
the drilling head (7) engage detachably, and the driving shaft is removed from the
channel (6) of the foundation element (100) after the foundation element (100) has
at least been partially introduced into the ground.
5. The method according to any of the preceding claims, wherein the drilling head (7)
has a largest diameter between the smallest diameter and the largest diameter of the
foundation element (100).
6. The method according to any of the preceding claims, wherein the base of the foundation
element (100) is provided with an organ against which the drilling head (7) can rotate
with reduced friction, wherein the organ is provided with an opening for letting the
driving shaft through.
1. Verfahren zum zumindest teilweisen Einführen eines länglichen vorgefertigten Fundamentelementes
(100) in den Boden, wobei das längliche vorgefertigte Fundamentelement (100) einen
Kanal (6) hat, der sich entlang der Länge des Fundamentelementes (100) erstreckt,
wobei ein Bohrkopf (7), der am Boden des hohlen Fundamentelementes (100) vorgesehen
ist, durch eine Antriebswelle im Kanal (6) des Fundamentelementes (100) angetrieben
wird, wobei die Antriebswelle durch eine Bohrmaschine (4) in der Nähe des oberen Endes
des Fundamentelementes (100) angetrieben wird,
wobei der Bohrkopf ein im wesentlichen geschlossener Bohrkopf ist, wobei der Boden
praktisch vollständig beiseitegeschoben wird und das Fundamentelement (100) zumindest
teilweise in den Boden durch das Antreiben des Bohrkopfes (7) eingeführt wird, wonach
der Bohrkopf (7) im Boden gelassen wird,
dadurch gekennzeichnet, dass eine nach unten gerichtete Zug- und/oder Schubkraft auf die Bohrmaschine (4) und
über die Antriebswelle (5) auf den Bohrkopf (7) über eine Vorrichtung ausgeübt wird,
wobei die nach unten gerichtete Zug- und/oder Schubkraft dazu führt, dass das Fundamentelement
(100) in den Boden eingeführt wird.
2. Verfahren nach Anspruch 1, wobei das Verfahren den Schritt des Ausübens einer nach
unten gerichteten Kraft auf die Bohrmaschine (4) von mindestens 2 t umfasst.
3. Verfahren nach einem der vorherigen Ansprüche, wobei das Fundamentelement (100) ein
Fundamentelement (100) ist, das eine Seitenöffnung in der Längsrichtung desselben
derart hat, dass sie der Antriebswelle ermöglicht, in den Kanal (6) über eine Längsseite
des Fundamentelementes (100) eingeführt zu werden.
4. Verfahren nach einem der vorherigen Ansprüche, wobei die Antriebswelle und der Bohrkopf
(7) lösbar ineinandergreifen, und die Antriebswelle aus dem Kanal (6) des Fundamentelementes
(100) entfernt wird, nachdem das Fundamentelement (100) zumindest teilweise in den
Boden eingeführt worden ist.
5. Verfahren nach einem der vorherigen Ansprüche, wobei der Bohrkopf (7) einen größten
Durchmesser zwischen dem kleinsten Durchmesser und dem größten Durchmesser des Fundamentelementes
(100) hat.
6. Verfahren nach einem der vorherigen Ansprüche, wobei die Basis des Fundamentelementes
(100) mit einem Hilfsmittel versehen ist, gegen das der Bohrkopf (7) mit reduzierter
Reibung rotieren kann, wobei das Hilfsmittel mit einer Öffnung zum Durchlassen der
Antriebswelle versehen ist.
1. Procédé d'introduction au moins partielle dans le sol d'un élément de fondation (100)
préfabriqué allongé, l'élément de fondation (100) préfabriqué allongé comportant un
canal (6) s'étendant suivant la longueur de l'élément de fondation (100),
dans lequel une tête de forage (7) disposée au fond de l'élément de fondation (100)
creux est entraînée par un arbre de commande dans le canal (6) de l'élément de fondation
(100), l'arbre de commande étant entraîné par un moteur de forage (4) près de l'extrémité
supérieure de l'élément de fondation (100),
dans lequel la tête de forage est une tête de forage sensiblement fermée, le sol étant
poussé sur le côté pratiquement entièrement et l'élément de fondation (100) étant
introduit au moins partiellement dans le sol par l'entraînement de la tête de forage
(7), à la suite de quoi la tête de forage (7) est laissée dans le sol,
caractérisé en ce qu'une force de traction et/ou de poussée dirigée vers le bas est exercée sur le moteur
de forage (4) et par l'intermédiaire de l'arbre de commande (5) à la tête de forage
(7) par un dispositif, dans lequel la force de traction et/ou de poussée dirigée vers
le bas a pour résultat d'introduire l'élément de fondation (100) dans le sol.
2. Procédé selon la revendication 1, dans lequel le procédé comprend l'étape consistant
à exercer sur le moteur de forage (4) une force dirigée vers le bas d'au moins 2 tonnes.
3. Procédé selon l'une quelconque des revendications précédentes, dans lequel l'élément
de fondation (100) est un élément de fondation (100) comportant une ouverture latérale
dans sa direction longitudinale de telle sorte qu'il permet d'introduire l'arbre de
commande dans le canal (6) par un côté longitudinal de l'élément de fondation (100).
4. Procédé selon l'une quelconque des revendications précédentes, dans lequel l'arbre
de commande et la tête de forage (7) sont en prise amovible, et l'arbre de commande
est retiré du canal (6) de l'élément de fondation (100) après que l'élément de fondation
(100) ait été au moins partiellement introduit dans le sol.
5. Procédé selon l'une quelconque des revendications précédentes, dans lequel le plus
grand diamètre de la tête de forage (7) est compris entre le plus petit diamètre et
le plus grand diamètre de l'élément de fondation (100).
6. Procédé selon l'une quelconque des revendications précédentes, dans lequel la base
de l'élément de fondation (100) est pourvue d'un organe contre lequel la tête de forage
(7) peut tourner avec un frottement réduit, dans lequel l'organe est pourvu d'une
ouverture pour laisser l'arbre de commande passer à travers.