BACKGROUND OF THE INVENTION
[0001] THIS invention relates to tool inserts and more particularly tool inserts which can
be used as cutting elements in rotary drilling bits intended for subterranean rock
drilling.
[0002] The use of diamond compacts, also known as PCD, as cutters in drilling operations
is well known due to the high abrasion resistant properties of diamond cutters. It
is also well established that diamond cutters cannot be used satisfactorily for milling
or drilling through ferrous substrates such as steel. Therein lies a problem in the
use of diamond cutters in certain down the hole drilling operations, particularly
with regard to subterranean directional drilling, such as drilling horizontally into
a rockbed from an underground location in a vertical borehole or shaft.
[0003] In order to drill horizontally into a rockbed from an underground location, it is
necessary to change the direction of movement of the drill bit from a vertical direction
to a horizontal direction. To do so, a steel casing is typically positioned down the
vertical borehole or shaft, creating a lining therefor in the region requiring horizontal
drilling. Located within the steel casing is a deflector which is positioned adjacent
the position where horizontal drilling is to be carried out. The function of the deflector,
which is generally wedge-shaped, is to cause the drill to change direction and begin
milling through the steel casing to create a window to the bedrock.
[0004] As PCD is not suitable for drilling through the steel casing due to reactions with
the ferrous materials, an alternative drill bit insert is required. Accordingly, tungsten
carbide cutters are typically used in the drill bit to mill through the steel casing.
Once through the casing, the tungsten carbide inserts have to be replaced with abrasive
resistant cutters such as diamond cutters in order to drill into the bedrock. This
means that the drill bit has to be removed and replaced with an appropriate bit. As
the drill strings that have to be removed are very long, this is a time consuming
exercise that results in costly downtime.
[0005] US-A-5 979 571, which is considered the closest prior art, discloses a combination metal milling
and earth drilling tool, for use in performing a single trip kickoff from a casing
in a well bore. The combination milling and drilling tool has a first, relatively
more durable cutting structure, such as tungsten carbide, and a second, relatively
harder cutting structure, such as polycrystalline diamond. The more durable first
cutting structure is better suited for milling metal casing, while the harder second
cutting structure is better suited for drilling through a subterranean formation,
especially a rock formation. The first cutting structure is positioned outwardly relative
to the second cutting structure, so that the first cutting structure will mill through
the metal casing while shielding the second cutting structure from contact with the
casing. The first cutting structure can wear away while milling through the casing
and upon initial contact with the rock formation, thereby exposing the second cutting
structure to contact with the rock formation. The second cutting structure can then
be used to drill through the rock formation.
[0006] US-A-2001/0035302 discloses a dual function drag bit that is used in a method for both milling well
casing or liner and subsequently drilling rock formation without the sequential removal
of a milling assembly and replacement with a drilling assembly. The method employs
a cutting tool that is capable of both milling steel pipe casing in a well bore and
subsequently drilling rock formation outside the well bore after passing through the
casing. In one embodiment an insert embedded into the surface of the cutting tool
comprises at least an outer layer, such as cemented tungsten carbide, capable of milling
steel casing, and at least a second layer, such as polycrystalline diamond, capable
of drilling formation, the two layers being bonded together and to a carbide substrate.
In another embodiment, inserts with a polycrystalline diamond cutting face for drilling
rock formation are in parallel with cemented tungsten carbide cutters for milling
steel casing.
SUMMARY OF THE INVENTION
[0007] According to one aspect of the invention, a tool insert comprises:
a substrate;
a layer of ultra-hard abrasive material bonded to the substrate, the layer of ultra-hard
abrasive material having a side surface and a top surface, a portion of the periphery
of the top surface of the ultra-hard abrasive material providing a primary cutting
edge for the tool insert; and
a protective layer, a surface of the protective layer being bonded to the top surface
and/or the side surface of the ultra-hard abrasive material so as to protect the primary
cutting edge thereof, a periphery of the protective layer providing a secondary cutting
edge for the tool insert, the depth of the protective layer being selected so as to
be sufficient to protect the primary cutting edge whilst cutting, milling or drilling
a window through a first substance, such as a casing or lining of a borehole or shaft,
but to expose the primary cutting edge upon encountering a second substance, such
as a rockbed, wherein the protective layer forms a segment which is bonded to the
substrate adjacent the layer of ultra-hard abrasive material.
[0008] According to another aspect of the invention, a tool insert comprises:
a substrate;
a layer of ultra-hard abrasive material bonded to the substrate, the layer of ultra-hard
abrasive material having a side surface and a top surface, a portion of the periphery
of the top surface of the ultra-hard abrasive material providing a primary cutting
edge for the tool insert; and
a protective layer, a surface of the protective layer being bonded to the top surface
and/or the side surface of the ultra-hard abrasive material so as to protect the primary
cutting edge thereof, a periphery of the protective layer providing a secondary cutting
edge for the tool insert, the depth of the protective layer being selected so as to
be sufficient to protect the primary cutting edge whilst cutting, milling or drilling
a window through a first substance but to expose the primary cutting edge upon encountering
a second substance, wherein a plurality of alternating ultra-hard abrasive material
strips and protective layer strips are located on the substrate, the successive strips
of ultra-hard abrasive material providing a series of primary cutting edges and the
successive protective layer strips providing a series of secondary cutting edges.
[0009] According to a further aspect of the invention, a method of drilling a horizontal
or angled hole in a subterranean rock formation includes the steps of:
- 1) preparing the site for horizontal or angled drilling by a) using an existing borehole
or, if not available, drilling a borehole into a subterranean rock formation to an
appropriate depth and b) lining the borehole, at least in the region where horizontal
or angled drilling is to take place, with a casing or lining having a passage and
a deflector means mounted in the passage;
- 2) providing a drill bit with at least one cutting tool insert according to any preceding
aspect of the invention, the or each cutting tool insert comprising a substrate, a
layer of ultra-hard abrasive material bonded to the substrate, the ultra-hard abrasive
material providing a primary cutting edge for the tool insert, and a protective layer
for protecting the primary cutting edge and for providing a secondary cutting edge;
- 3) guiding the drill bit down the borehole until it contacts the deflector and is
deflected towards the casing or lining;
- 4) milling a window through the casing or lining to the subterranean rock formation;
and
- 5) drilling a hole in the subterranean rock formation,
wherein the depth of the protective layer is such as to protect the primary cutting
edge whilst milling through the casing or lining and to expose the primary cutting
edge upon encountering the subterranean rock formation.
[0010] The above method can also be used for the drilling of multiple directional holes
from a central vertical borehole.
BRIEF DESCRIPTION OF THE DRAWINGS
[0011] The invention will now be described in more detail, by way of example only, with
reference to the accompanying drawings in which:
- Figure 1
- is a schematic sectional side view of a rotary drill bit in a subterranean rock drilling
operation;
- Figure 2
- is a sectional side view of a tool insert for explaining the present invention;
- Figure 3
- is a plan view of the tool insert of figure 2;
- Figure 4
- is a sectional side view of a first embodiment of a tool insert of the invention;
- Figure 5
- is a plan view of the tool insert of Figure 4;
- Figure 6
- is a sectional side view of a second embodiment of a tool insert of the invention;
- Figure 7
- is a plan view of the tool insert of Figure 6;
DESCRIPTION OF EMBODIMENTS
[0012] Referring to figure 1 a drill assembly 10 consists of a rotary drill string 12 and
a rotary drill bit 14, of the drag bit kind in this case.
[0013] The drill bit 14 is directed down a passage 16 within a steel tubular casing 18.
The steel casing 18 is anchored in a borehole or shaft 20 drilled into a subterranean
bedrock or rock formation 22.
[0014] In order for the rotary drill bit 14 to drill a horizontal or angled hole in the
bedrock 22 in the region indicated by an 'X', it is necessary for the drill bit 14
to be redirected from a vertical direction of movement to a horizontal or angled direction
of movement, along the arrow 24. A deflector 26, which is attached to the casing 18
and which has previously been positioned adjacent the region 'X', causes the bit 14
to change direction in this manner. The deflector 26 is supported by an anchor 28.
[0015] As mentioned previously, in order to drill through the casing 18, typically cemented
tungsten carbide cutters have traditionally been used. Once a window 30 has been milled
through the casing 18, the drill bit 14 is withdrawn and replaced with a drill bit
having abrasion resistant cutters such as PCD cutters. This time consuming operation
is obviated by using tool inserts or cutters of the invention.
[0016] The layer of ultra-hard abrasive material will generally be a layer of PCD, although
under appropriate conditions PCBN may also be used. The layer may also be a layer
of diamond produced by chemical vapour deposition, called CVD diamond.
[0017] The substrate of the tool insert will generally be a cemented carbide substrate.
Such substrates are well known in the art and are generally cemented tungsten carbide
substrates.
[0018] The protective layer, which may be an extension of the substrate or a separate layer,
will also generally be of cemented tungsten carbide, although it may be of a different
grade to that of the substrate. In certain instances, the protective layer may be
formed of tool steel or other appropriate material suited to milling through steel
or other material used for the casing or lining.
[0019] Referring to figures 2 and 3, a first embodiment of a tool insert outside the scope
of the invention is illustrated. A cemented carbide substrate 40 has a planar base
surface 42 and an upper surface 44. A centrally located recess 46 is formed in the
upper surface 44. The recess 46 is surrounded by an annular region 48 and has a surface
50. Although the recess 46 is centrally located in this embodiment, it could also
be positioned off centre.
[0020] The recess 46 is filled with diamond particles. Thereafter, the diamond-filled substrate
40 is placed in a reaction capsule and the reaction capsule placed in the reaction
zone of a conventional high pressure/high temperature apparatus. The capsule is exposed
to conditions of high pressure and temperature suitable to produce a diamond abrasive
compact (PCD) 52. Under these conditions the PCD 52 will form and bond to the cemented
carbide substrate over the entire surface which defines the recess 46. A cutting edge
54, the primary cutting edge of the tool insert, is defined by the periphery of the
PCD 52.
[0021] The cemented carbide / PCD body is then removed from the reaction capsule using known
techniques. As such the cemented carbide / PCD body forms a precursor of a tool insert.
[0022] The annular region 48 of the substrate 40 is ground or otherwise removed so as to
leave a predetermined depth, indicated by the numeral 56, of tungsten carbide material.
This depth of material 56 is selected so as to correspond to the amount of tungsten
carbide material required to mill through the wall of a steel casing or lining of
a borehole, as described above. To this end, the depth of tungsten carbide 56 provides
a protective layer for the primary cutting edge 54 of the PCD 52, and also a secondary
cutting edge 58 for milling through the steel casing. Once a window has been milled
through the steel casing, ideally the layer 56 should be almost expended so as to
expose the cutting edge 54 for drilling into the rockbed.
[0023] In some applications, the tungsten carbide substrate 40, whilst having the desired
properties for forming the PCD layer 52, may not have the desired properties for milling
through a steel casing or lining. In view thereof, the annular protective layer 48
may be replaced by tungsten carbide of a different grade or by another suitable material,
such as tool steel, for example. The annular region 48 in such a case could be formed
as a ring in situ or, alternatively, could be formed as a separate ring component
which is attached to the tool insert. The ring 48 may be attached to the tool insert,
which has been machined to accept the ring, by for example brazing, press fitting,
shrink fitting or any other convenient method.
[0024] A first embodiment of a tool insert of the invention is illustrated in figures 4
and 5 of the accompanying drawings. The tool insert consists of a cemented carbide
substrate 80, a PCD layer 82, having a cutting edge 84, and a tungsten carbide protective
segment 86, having a cutting edge 88, bonded to the substrate 80. The tungsten carbide
segment 86 could be an extension of the substrate 80. Alternatively, if the grade
of the tungsten carbide substrate 80 is not appropriate for the cutting of a particular
grade of steel, the tungsten carbide segment 86 could be formed of a tungsten carbide
material of a different grade that is adapted to the particular substrate to be milled.
The depth of the tungsten carbide segment 86 is once again selected so as to protect
the cutting edge 84 whilst drilling through a steel casing, but to expose the cutting
edge 84 soon after encountering the subterranean bedrock.
[0025] Referring to figures 6 and 7, which illustrate a second embodiment of a tool insert
of the invention, a tungsten carbide substrate 90 includes a number of parallel recesses
92 in which parallel PCD segments or strips 94 are formed. The PCD segments 94 are
protected by respective tungsten carbide segments or strips 96. In this arrangement,
the cutting edges 98 of respective PCD segments 94 are protected by the tungsten carbide
segments 96, which in turn have cutting edges 100. This arrangement allows the tool
insert to be used for cutting through successive layers of steel and subterranean
bedrock and can therefore be used multiple times.
[0026] As should be evident from the above, a number of different configurations of the
tool insert of the invention are possible in order to achieve the desired purpose
of protecting the primary cutting edge of a PCD or PCBN layer whilst milling a window
through the steel casing or lining of a borehole in a subterranean bedrock, and exposing
the PCD or PCBN cutting edge once through the steel casing.
1. A tool insert comprising:
a substrate (80);
a layer of ultra-hard abrasive material (82) bonded to the substrate, the layer of
ultra-hard abrasive material having a side surface and a top surface, a portion of
the periphery of the top surface of the ultra-hard abrasive material providing a primary
cutting edge (84) for the tool insert; and
a protective layer (86), a surface of the protective layer being bonded to the top
surface and/or the side surface of the ultra-hard abrasive material so as to protect
the primary cutting edge thereof, a periphery of the protective layer providing a
secondary cutting edge (88) for the tool insert, the depth of the protective layer
being selected so as to be sufficient to protect the primary cutting edge whilst cutting,
milling or drilling a window through a first substance (18) but to expose the primary
cutting edge upon encountering a second substance (22), characterised in that the protective layer forms a segment which is bonded to the substrate adjacent the
layer of ultra-hard abrasive material.
2. A tool insert according to claim 1, wherein the substrate (80) is a tungsten carbide
substrate.
3. A tool insert according to claim 1 or claim 2, wherein the protective layer (86) is
integrally formed with the substrate and is formed of the same material as the substrate.
4. A tool insert according to claim 1 or claim 2, wherein the protective layer (86)is
formed as a separate component in situ.
5. A tool insert according to claim 1 or claim 2, wherein the protective layer (86) is
formed as a separate component which is bonded to the top surface and/or the side
surface of the ultra-hard abrasive material (82).
6. A tool insert according to any one of claims 1 to 5, wherein a plurality of alternating
ultra-hard abrasive material strips (94) and protective layer strips (96) are located
on the substrate, wherein one of the protective layer strips (96) forms a segment
adjacent one of the ultra-hard abrasive strips (94) and wherein successive strips
of ultra-hard abrasive material provides a series of primary cutting edges and successive
protective layer strips provides a series of secondary cutting edges.
7. A tool insert according to any one of the preceding claims, wherein the protective
layer (86, 96) is formed of the same type of material as the substrate (80, 90) but
of a different grade to that of the substrate, or of tool steel or of another suitable
material dependent on the first substance.
8. A tool insert according to any one of the preceding claims, wherein the first substance
is a casing (18) or lining of a borehole or shaft in a bedrock and the second substance
is the bedrock (22).
9. A method of drilling a horizontal or angled hole in a subterranean rock formation
includes the steps of:
1) preparing the site for horizontal or angled drilling by a) using an existing borehole
or, if not available, drilling a borehole into a subterranean rock formation to an
appropriate depth and b) lining the borehole, at least in the region where horizontal
or angled drilling is to take place, with a casing or lining having a passage and
a deflector means mounted in the passage;
2) providing a drill bit with at least one cutting tool insert according to any preceding
claim, the or each cutting tool insert comprising a substrate, a layer of ultra-hard
abrasive material bonded to the substrate, the ultra-hard abrasive material providing
a primary cutting edge for the tool insert, and a protective layer for protecting
the primary cutting edge and for providing a secondary cutting edge;
3) guiding the drill bit down the borehole until it contacts the deflector and is
deflected towards the casing or lining;
4) milling a window through the casing or lining to the subterranean rock formation;
and
5) drilling a hole in the subterranean rock formation,
wherein the depth of the protective layer is such as to protect the primary cutting
edge whilst milling through the casing or lining and to expose the primary cutting
edge upon encountering the subterranean rock formation.
10. A method according to claim 9, which is used for the drilling of multiple directional
holes from a central vertical borehole.
1. Werkzeug-Einsatz Umfassend:
ein Substrat (80);
eins Schicht aus ultrahartem abrasiven Material (82), das mit dem Substrat verbunden
ist, wobei die Schicht aus ultrahartem abrasiven Material eine Seitenfläche und eine
obere Oberfläche aufweist, wobei ein Abschnitt des Randgablets der oberen Oberfläche
des ultraharten abrasiven Materials einen primären Schneidrand (84) für den Warkzeug-Einsatz
schafft; und
eine Schutzschicht (86), wobei eine Oberfläche der Schutzschicht mit der oberen Oberfläche
und/oder der Seitenfläche des ultraharten abrasiven Materials verbunden ist, um den
primären Schneidrand desselben zu schürtzen, wobei ein Randgebiet der Schutzschicht
einen sekundären Schneldrand (88) für den Werkzeug-Einsatz schaft, wobei die Stärke
der Schutzschicht so ausgewählt wird, dass sie ausreicht, um den primären Schneidrand
beim Schneiden, Fräsen oder Bohren eines Fensters durch eine erste Substanz (18) zu
schützen, den primären Schneidrand beim Auftreifen auf eine zweite Substanz (22) jedoch
freizulegen dadurch gekennzeichnet, dass die Schutzschicht eine Segment bildet, welches benachbart zu der Schicht aus ultrahartem
abrasiven Material mit dem Substrat verbunden ist.
2. Werkzeug-Einsatz nach Anspruch 1, wobei das Substrat (80) ein Wolframkarbid-Substrat
ist.
3. Werkzeug-Einsatz nach Anspruch 1 oder Anspruch 2, wobei die Schutzschicht (86) einteilig
mit dem Substrat ausgebildet ist und aus demselben Material wie das Substrat besteht.
4. Werkzeug-Einsatz nach Anspruch 1 oder Anspruch 2, wobei die Schutzschicht (86) in
situ als eine separate Komponente ausgebildet ist.
5. Werkzug-Einsatz nach Anspruch 1 oder Anspruch 2, wobei die Schutzschicht (86) als
eine separate Komponente ausgebildet ist, welche mit dar oberen Oberfläche und/oder
der Seitanfläche des ultraharten abrasiven Materials (82) verbunden ist.
6. Werkzeug-Einsatz nach einem der Ansprüche 1 bis 5, wobei eine Vietzahl Von Streifen
aus ultrahartem abrasiven Material (94) und Schutzschicht-Streifen (96) abwechseind
auf dem Substrat angeordnet ist, wobei einer der Schutzschicht-Streifen (96) ein Segment
bildet, welches benachbart einem der Streifen aus ultrahartem abrasiven Material (94)
ist und wobei aufeinander folgende Streifen aus ultrahartem abrasiven Material eine
Reihe von primären Schneklrädern schaffen und aufeinander folgende Schutzchicht-Streifen
eine Reihe von sekundären Schneidrändem schaffen.
7. Werkzeug-Einsatz nach einem dar vorhergehenden Ansprüche, wobei die Schutzschicht
(86, 96) aus demseiben Materialtyp wie das Substrat (80, 90), jedoch mit einer vorn
Substrat untereschiedlichen Qualität, oder aus Werkzeugstahl oder aus einem anderen
geeigneten Material, abhängig von der ersten Substanz, ausgeblidet ist.
8. Werkzeug-Einsatz nach einem der vorhergehenden Ansprüche, wobei die erste Substanz
eine Ausfülterung (18) oder eine Auskleidung eines Bohrlochs oder Schachts in einem
Grundgestein ist, und die zweite Substanz das Grundgestein (22) ist.
9. Verfahren zum Bohren eines horizontalen oder abgewinkelten Lochs in einer unterirdischen
Gesteinsformation, wobei das Verfahren die Schritte umfasst, dass:
1) die Stelle für die horizontale oder abgewinkelte Bohrung vorbereitet wird, indem
a) ein bestehendes Bohrloch verwendet wird, oder, falls keines verfügbar ist, ein
Bohrloch bis auf eine geeignete Tiefe in eine unterirdische Gesteinsformation gebehrt
wird, und b) das Bohrloch zumindest in dem Bereich, in dem die horizontale oder abgewinkelte
Bohrung vorgenommen werden soll, mit einer Ausfütterung oder einer Auskleidung die
einen Durchgang und ein in dem Durchgang befestigtes Umlenkmittel aufweist, ausgekleidet
wird;
2) ein Bohreinsatz mit zumindest einem Schneidwerkzeug-Einsatz nach einem der vorbergahenden
Ansprüche wird, wobei der bzw. jeder Schneidwerkzeug-Einsatz ein Substrat, eine Schicht
aus ultrahartern abrasiven Material, das mit dem Substrat verbunden ist, wobei das
ultraharte abrasive Material einem primären Schneidrand für den Werkzeug-Einsatz schallt,
sowie eine Schutzschicht zum Schutz des primären Schneidrandes und zur Schalfung eines
sekundären Schneidrandes umfasst;
3) der Bohreinsatz durch des Bohrloch nach unten geführt wird, bis er mit dem Umlenkelement
in Kontakt gelangt, und zu der Ausfütterung oder der Auskleidung hin umgelenkt wird.
4) ein Fenster durch die Ausfülterung oder die Auskleidung zu der unterirdischen Gesteinsformation
gefräst wird; und
5) ein Loch in die unterirdische Gesteinzsformation gebohrt wird,
wobei die Stärke der Schutzschicht derart ausgestaltet ist, dass der primäre Schneidrand
beim Fräsen durch die Ausfütterung oder die Auskleldung geschützt wird und der primäre
Schneidrand beim Auftreffen auf die unterindische Gesteinformation freigelegt wird.
10. Verfahren nach Anspruch 9, welches zum Bohren von Löchern in mehrere Richtungen von
einem zentralen vertikalen Bohrloch aus verwendet wird.
1. Pièce rapportée d'outil comprenant:
un substrat (82);
une couche de matériau abrasif ultra-dur (82) collée au substrat, la couche de matériau
abrasif ultra-dur ayant une surface latérale et une surface supérieure, une partie
de la périphérie de la surface supérieure du matériau abrasif ultra-dur assurant un
premier bord d'attaque (84) pour la pièce rapportée d'outil; et
une couche protectrice (86), une surface de la couche protectrice étant collée à la
surface latérale et/ou à la surface supérieure du matériau abrasif ultra-dur protégeant
ainsi le premier bord d'attaque, une périphérie de la couche protectrice assurant
un second bord d'attaque (88) pour la pièce rapportée d'outil, la profondeur de la
couche protectrice étant choisit de sortie à être suffisante pour protéger le premier
bord d'attaque lors du découpage, fraisage ou forage d'une fenêtre à travers une première
substance (18) mais exposant le premier bord d'attaque à une second substance (22),
caractérisé en ce que la couche protectrice forme un segment collé au substance adjacent à la couche de
matériau abrasif ultra-dur
2. Pièce rapportée d'outil selon la revendication 1, dans laquelle le substrat (80) est
un substrat en carbure de tungstène.
3. Pièce rapprotée d'outil selon la revendication 1 ou la revendication 2, dans laquelle
la couche protectrice (86) fait partie intégrants du substance et est composée du
même matériau que le substrat.
4. Pièce rapportée d'outil selon la revendication 1 ou la revendication 2, dans laquelle
la couche protectrice (86) est formée comme un composant distinct in situ.
5. Pièce rapportée d'outil selon la revendication 1 ou la revendication 2, dans laquelle
la couche protectrice (86) est formée comme un composant distinct collé à la surface
supérieure et/ou à la surface latérale du matériau abrasif ultra-dur (82).
6. Pièce rapportée d'outil selon l'une quelconque des revendication 1 à 5, dans laquelle
une alternance de plusieurs bandes de matériau abrasif ultra-dur (94) et de bandes
de couche protectrice (96) est localisée dans la substrat, dans laquelle l'une des
bandes de couche protectrice (96) forme un segment adjacent à l'une des bandes abrasive
ultra dur (94) et dans laquelle les bandes sucessives de matériau abrasif ultra-dur
forment une série de premiers bords d'attaque et les bandes successives de couche
protectrice forment une série de seconds bords d'attaque.
7. Pièce rapportée d'outil selon l'une quelconque des revendications précédentes, dans
laquelle la couche protectrice (86, 96) est constituée du même type de matériau que
le substrat (80, 90) mais l'une qualité différente de celui composant le substrat,
ou d'un acier à outils ou d'un autre matériau approprié à la première substance.
8. Pièce rapportée d'outil selon l'une quelconque des revendications précédentes, dans
laquelle la première substance est un coffrage (18) ou un gainage d'un trou de forage
ou d'un puits dans un substratum rocheux et la seconde substance est le substratum
rocheux (22).
9. Méthode de forage de trou horizontal ou selon un angle dans une formation rocheuse
souterraine incluant les étapes de:
1) préparation du site de forage horizontal ou selon un angle en a) utilisant un trou
de forage existant ou, s'il n'existe pas, es forant un trou de forage dans une formation
rocheuse souterraines selon une profondeur appropriée et b) en gainant le trou de
forage, au moins dans la partie où le forage horizontal ou selon un angle doit avoir
Lieu, avec un coffrage ou un gainage comportant un conduit et des moyens de déflection
montée dans le conduit;
2) fourniture d'un trépan avec un moins une pièce rapportée d'outil coupante selon
l'une quelconque des revendications précédentes, la ou chaque pièce rapportée d'outil
coupante comprenant un substrat, une couche de matériau abrasif ultra-dur collée au
substrat, le matériau abrasif ultra-dur formant un premier bord d'attaque à la pièce
rapportée d'outil, et une couche protectrice protégeant le premier bord d'attaque
et formant un second bord d'attaque;
3) guidage du trépan dans le trou de forage jusqu'à ce qu'il entre en contact avec
le déflecteur et soit dévié vers le coffrage ou le gainage;
4) fraisage d'une fenêtre à travers le coffrage ou le gainage en direction de la formation
rocheuse souterraine; et
5) forage d'un trou dans la formation rocheuse souterraine
dans laquelle la profondeur de la couche protectrice est telle qu'elle protège le
premier bord d'attaque lors du fraisage à travers le coffrage ou le gainage et qu'elle
expose le premier bord d'attaque lors de la rencontre avec la formation rocheuse souterraine.
10. Méthode, selon la revendication 9, utilisée pour le forage de trous dans de directions
multiples à partie d'un trou forage vertical central.