[0001] The present invention relates to a probe for subsurface drilling and a corresponding
subsurface drilling method.
[0002] US 2005/0167098 discloses a gap collar for an electromagnetic communication unit of a downhole tool
positioned in a wellbore. The downhole tool communicates with a surface unit via an
electromagnetic field generated by the electromagnetic communication unit. The gap
collar includes a first collar having a first end connector and a second collar having
a second end connector matingly connectable to the first end connector. The gap collar
further includes a non-conductive insulation coating disposed on the first and/or
second end connectors, and a non-conductive insulation molding positioned about an
inner and/or outer surface of the collars. The insulation molding moldingly conforms
to the shape collars. The connectors are provided with mated threads modified to receive
the insulation coating. Measurements taken by the downhole tool may be stored in memory,
and transmitted to the surface unit via the electromagnetic field.
Technical Field
[0003] This application relates lo subsurface drilling, specifically to apparatus for telemetry
of information from downhole locations. Embodiments are applicable to drilling wells
for recovering hydrocarbons.
Background
[0004] Recovering hydrocarbons from subterranean zones relies on the process of drilling
wellbores.
[0005] Wellbores are made using surface-located drilling equipment which drives a drill
string that eventually extends from the surface equipment to the formation or subterranean
zone of interest. The drill string can extend thousands of feet or meters below the
surface. The terminal end of the drill string includes a drill bit for drilling (or
extending) die wellbore. Drilling fluid usually in the form of a drilling "mud" is
typically pumped through die drill string. The drilling fluid cools and lubricates
the drill bit and also carries cuttings back to the surface. Drilling fluid may also
be used to help control bottom hole pressure to inhibit hydrocarbon influx from the
formation into the wellbore and potential blow out at surface.
[0006] Bottom hole assembly (BHA) is the name given to the equipment at the terminal and
of a drill string. In addition to a drill bit a BHA may comprise elements such as:
apparatus for steering the direction of the drilling (e. g. a steerable downhole mud
motor or rotary steerable system); sensors for measuring properties of the surrounding
geological formations (e.g. sensors for use in well logging); sensors for measuring
downhole conditions as drilling progresses; systems for telemetry of data to the surface;
stabilizers; heavy weight drill collars, pulsers and the like. The BHA is typically
advanced into the wellbore by a string of metallic tubulars (drill pipe).
[0007] Telemetry information can be invaluable for efficient drilling operations. For example,
telemetry information may be used by a drill rig crew to make decisions about controlling
and steering the drill bit to optimize the drilling speed and trajectory based on
numerous factors, including legal boundaries, locations of existing wells, formation
properties, hydrocarbon size and location, etc. A crew may make intentional deviations
from the planned path as necessary based on information gathered from downhole sensors
and transmitted to the surface by telemetry during the drilling process. The ability
to obtain real time data allows for relatively more economical and more efficient
drilling operations.
[0008] Various techniques have been used to transmit information from a location in a bore
hole to the surface. These include transmitting information by generating vibrations
in fluid in the bore hole (e.g. acoustic telemetry or mud pulse telemetry) and transmitting
information by way of electromagnetic signals that propagate at least in part through
the earth (EM telemetry). Other telemetry systems use hardwired drill pipe or fibre
optic cable to carry data to the surface.
[0009] A typical arrangement for electromagnetic telemetry uses parts of the drill string
as an antenna. The drill string may be divided into two conductive sections by including
an insulating joint or connector (a "gap sub") in the drill string. The gap sub is
typically placed within a bottom hole assembly such that metallic drill pipe in the
drill string above the BHA serves as one antenna element and metallic sections in
the BHA serve as another antenna element. Electromagnetic telemetry signals can then
be transmitted by applying electrical signals between the two antenna elements. The
signals typically comprise very low frequency AC signals applied in a manner that
codes information for transmission to the surface. The electromagnetic signals may
be detected at the surface, for example by measuring electrical potential differences
between the drill string and one or more ground rods. A challenge with EM telemetry
is that the generated signals are significantly attenuated as they propagate to the
surface. Further, the electrical power available to generate EM signals may be provided
by batteries or another power source that has limited capacity. Therefore, it is desirable
to provide a system in which EM signals are generated efficiently.
[0010] Design of the gap sub is an important factor in an EM telemetry system. The gap sub
must provide electrical isolation between two parts of the drill string as well as
withstand the extreme mechanical loading induced during drilling and the high differential
pressures that occur between the center and exterior of the drill pipe. Drill string
components are typically made from high strength, ductile metal alloys in order to
handle the loading without failure. Most electrically-insulating materials suitable
for electrically isolating different parts of a gap sub are weaker than metals (e.g.
rubber, plastic, epoxy) or quite brittle (ceramics). This makes it difficult to design
a gap sub that is both configured to provide efficient transmission of EM telemetry
signals and has the mechanical properties required of a link in the drill string.
[0012] Despite work that has been done to develop Systems for subsurface telemetry there
remains a need for practical subsurface telemetry Systems and there remains a need
to provide such systems that offer improved efficiency and/or greater range.
Summary
[0013] The invention has several aspects. One aspect provides EM telemetry apparatus for
downhole applications. Another aspect provides methods for subsurface drilling.
[0014] The present invention provides a probe for use in subsurface drilling as defined
in independent claim 1. The probe comprises an elongated metallic housing. The housing
encloses electronics, including a telemetry signal generator. The housing comprises
first and second electrical contacts spaced apart longitudinally on the outside of
the housing and an electrically-insulating gap comprising an electrically-insulating
material providing electrical isolation between first and second parts of the metallic
housing. The gap is located between the first and second electrical contacts. The
probe also comprises an electrically-insulating layer on an outside surface of the
metallic housing. The electrically insulating layer at least partially covers the
electrically-insulating gap and extends continuously to cover an outside surface of
the metallic housing on at least one side of the gap. In some embodiments the covering
extends for a distance of at least 1 meter. In same embodiments the probe is combined
with a gap sub. The gap sub (which may comprise one component or a plurality of separable
components comprises an electrically- conducting uphole part comprising an uphole
coupling for coupling into a drill string, an electrically-conducting downhole pan
comprising a downhole coupling for coupling into the drill string, a bore extending
through the gap sub from the uphole coupling to the downhole coupling and an electrically-insulating
gap portion electrically isolating the uphole part of the gap sub from the downhole
part of the gap sub. In the combination, the 10 probe is located within the bore of
the gap sub and die first electrical contact is in electrical contact with the uphole
part of the gap sub and the second electrical contact is in electrical contact with
the downhole part of the gap sub.
[0015] A method according to the invention provides a subsurface drilling method performed
using a drill string comprising a gap sub and an electronics package located in a
bore of the gap sub as defined in independent claim 16. The electronics package comprises
electrical contacts that are in electrical contact with electrically-conductive parts
of the gap sub. The method comprises passing a drilling fluid down a bore of the drill
string and, at the location of the electronics package, channeling the drilling fluid
into a channel that is electrically insulated from both the electrically conductive
parts of the gap sub and electrically conductive parts of the housing of the electronics
package.
[0016] Further aspects of the invention and features of example embodiments are illustrated
in the accompanying drawings and/or described in the following description.
Brief Description of the Drawings
[0017] The accompanying drawings illustrate non-limiting example embodiments of the invention.
Figure 1 is a schematic view of a drilling operation according to an example embodiment.
Figure 2 is a longitudinal cross sectional view of a gap sub according to an example
embodiment.
Figures 3A-3D are cutaway views of a portion of a gap sub according to an example
embodiment.
Figure 4 is a schematic view of an equivalent electrical circuit for a telemetry signal
generator and gap sub according to an example embodiment.
Figure 5 is a cutaway view of a gap sub with radially-inwardly extending parts according
to an example embodiment.
Figure 5A is an axial cross sectional view of a gap sub with radially-inwardly extending
parts according to an example embodiment.
Figure 6 shows schematically an example embodiment in which an electronics package
is located in a cavity in a wall of a gap sub.
Description
[0018] Throughout the following description specific details are set forth in order to provide
a more thorough understanding to persons skilled in the art. However, well known elements
may not have been shown or described in detail to avoid unnecessarily obscuring the
disclosure. The following description of examples of the technology is not intended
to be exhaustive or to limit the system to the precise forms of any example embodiment.
Accordingly, the description and drawings are to be regarded in an illustrative, rather
than a restrictive, sense.
[0019] While a number of exemplary aspects and embodiments have been discussed above, those
of skill in the art will recognize certain modifications, permutations, additions
and sub-combinations thereof. It is therefore intended that the following appended
claims and claims hereafter introduced are interpreted to include all such modifications,
permutations, additions and sub-combinations as are within their true spirit and scope.
[0020] Figure 1 shows schematically an example drilling operation. A drill rig 10 drives
a drill string 12 which includes sections of drill pipe that extend to a drill bit
14. The illustrated drill rig 10 includes a derrick 10A, a rig floor 10B and draw
works 10C for supporting the drill string. Drill bit 14 is larger in diameter than
the drill string above the drill bit. An annular region 15 surrounding the drill string
is typically filled with drilling fluid. The drilling fluid is pumped through a bore
in the drill string to the drill bit and returns to the surface through annular region
15 carrying cuttings from the drilling operation. As the well is drilled, a casing
16 may be made in the well bore. A blow out preventer 17 is supported at a top end
of the casing. The drill rig illustrated in Figure 1 is an example only. The methods
and apparatus described herein are not specific to any particular type of drill rig.
[0021] Drill string 12 includes a gap sub 20. An EM signal generator 18 located inside the
drill string (for example in an electronics probe contained within the bore of the
drill string) is electrically connected across the electrically-insulating gap of
the gap sub 20. The signals from the EM signal generator result in electrical currents
19A and electric fields 19B that are detectable at the surface. In the illustrated
embodiment a signal receiver 13 is connected by signal cables 13A to measure potential
differences between electrical grounding stakes 13B and the top end of drill string
12. A display 11 may be connected to display data received by the signal receiver
13.
[0022] Figure 2 shows an example arrangement of a gap sub 20. Gap sub 20 has an electrically-conducting
uphole portion 20A and an electrically conducting downhole portion 20B separated by
gap 20C filled with an electrically-insulating material. Couplings 21 for coupling
to adjacent elements of the drill string are provided at the uphole and downhole ends
of gap sub 20. An electronics package 22 comprising an EM telemetry signal generator
(not shown in Figure 2) is supported in a bore 20D of gap sub 20.
[0023] Electronics package 22 has a metal housing 23 comprising first and second parts 23A
and 23B that are electrically insulated from one another by an electrically-insulating
gap 23C. First and second electrodes 24A and 24B are connected to the telemetry signal
generator and are respectively in contact with the uphole portion 20A and the downhole
portion 20B of gap sub 20. Electrode 24A may be, but is not necessarily, in electrical
contact with first part 23A of the housing of electronics package 22. Electrode 24B
may be, but is not necessarily in electrical contact with second part 23B of the housing
of electronics package 22.
[0024] An electrically-insulating layer 25 at least partially covers electrically-insulating
gap 23C of electronics package 22. Electrically insulating layer 25 extends over the
outside surface of electronics package 22 and continuously covers the outside surface
of conductive housing 23 of electronics package 22 for a distance beyond electrically-insulating
gap 23C on one or both sides of electrically-insulating gap 23C. In some embodiments
the length of continuous coverage of electrically-insulating layer 25 is at least
1 meter and preferably at least 1 ½ meters or 2 meters. In some example embodiments
the length of continuous coverage of electrically-insulating layer 25 is 3 to 4 meters.
[0025] In some embodiments, electrically-insulating layer 25 continuously covers at least
60% or 70% or 80% of that portion of the outside surface of electronics package 22
that lies between electrodes 24A and 24B. In some embodiments electrically insulating
layer 25 continuously covers substantially all of that portion of the outside surface
of electronics package 22 that lies between electrodes 24A and 24B. Here, 'substantially
all' means at least 95%.
[0026] In some embodiments, electrically-insulating layer 25 comprises a coating applied
to electronics package 22, a sleeve or tube extending around electronics package 22,
or the like. The material of layer 25 may be any electrically insulating material
suitable for exposure to downhole conditions. Some non-limiting examples are suitable
thermoplastics, epoxies, ceramics, elastomeric polymers, and rubber. Layer 25 may
comprise a coating that is applied to, or bonded to electronics package 22 or a pre-formed
component (formed e.g. by extrusion, injection molding, or the like which is subsequently
attached to, affixed around, or supported around electronics package 22. The material
of layer 25 should be capable of withstanding downhole conditions without degradation.
The ideal material can withstand temperature of up to at least 150C (preferably 175C
or 200C or more), is chemically resistant or inert to any drilling fluid to which
it will be exposed, does not absorb fluid to any significant degree and resists erosion
by drilling fluid. An example of a suitable material is PET (polyethylene terephthalate)
or PEEK (polyether ether ketone).
[0027] A second electrically-insulating layer 26 is provided between electronics package
22 and the inner surfaces of the electrically-conducting uphole and/or downhole parts
20A and 20B of gap sub 20. Electrically insulating layer 26 extends to at least partially
cover the inner side of electrically-insulating gap 20C and extends continuously to
cover electrically-conductive parts of the bore wall on at least one side of electrically-insulating
gap 20C. In some embodiments electrically insulating layer 26 continuously covers
a part of the bore wall that includes the inner side of electrically-insulating gap
20C and extends continuously to cover parts of both uphole and downhole parts 20A
and 20B of gap sub 20. In some embodiments electrically insulating layer 26 comprises
a coating applied to the inside of gap sub 20, a sleeve or tube extending around the
inside of gap sub 20, or the like.
[0028] As with layer 25, the material of layer 26 may be any electrically insulating material
suitable for exposure to downhole conditions. Some non-limiting examples are suitable
thermoplastics, epoxies, ceramics, elastomeric polymers, and rubber. Layer 26 may
comprise a coating that is applied to, formed on or bonded to the inner wall of gap
sub 20 or a pre-formed component (formed e.g. by extrusion, injection molding, or
the like) which is subsequently attached to, affixed around, supported around the
inside of the bore of gap sub 20. An example of a suitable material is PET (polyethylene
terephthalate) or PEEK (polyether ether ketone).
[0029] The inventors have determined that low impedance paths within the bore of a gap sub
can provide a significant source of inefficiency in the transmission of EM telemetry
signals. The provision of electrically insulating layer 25, especially in combination
with the provision of electrically insulating layer 26 has been found to dramatically
reduce losses arising from conduction currents within the bore of the gap sub. With
electrically-insulating layers 25 and 26 lining electrically-conductive surfaces within
bore 27, the shortest path through the fluid in bore 27 electrically connecting parts
20A and 20B of gap sub 20 is at least the length of the shorter one of electrically-insulating
layers 25 and 26.
[0030] Figures 3A to 3D illustrate possible electrical conduction paths through which current
originating from electrodes 24A and 24B could pass. It can be seen that all of these
possible electrical conduction paths are blocked by at least one of electrically-insulating
layer 25, electrically-insulating layer 26, electrically-insulating gap 23C, and electrically-insulating
gap 20C.
[0031] By providing electrically insulating barriers on conductive surfaces of electronics
package 22 and/or gap sub 20 that would otherwise be exposed to the drilling fluid
in the bore of gap sub 20, considerable improvements in the efficiency of EM transmission
may be achieved. The lengths of insulating layers 25 and 26 should be sufficient to
raise the impedance of the conductive paths through the bore fluid to a desired degree.
Providing electrically insulating layers 25 and 26 that are at least approximately
2 meters (6 feet) long has been shown to reduce power lost as a result of current
flowing inside the borehole by 90% or more in some cases.
[0032] In example embodiments, insulating layers 25 and 26 are at least 1 meter in length
(although they could be shorter in some embodiments). In some embodiments insulating
layer 26 extends for a length that is at least 75% of the length of electrically insulating
layer 25. In preferred embodiments, electrically insulating layer 26 is at least as
long as electrically insulating layer 25. In some embodiments, electrically insulating
layer 26 covers substantially the entire inside of that portion of the bore of gap
sub 20 lying between electrodes 24A and 24B.
[0033] Figure 4 illustrates schematically an equivalent electrical circuit for the telemetry
signal generator and gap sub 20 (neglecting capacitive and inductive effects). Resistor
R
IN represents the available current paths within the bore 20D of the gap sub 20 and
resistor R
OUT represents the available current paths external to the gap sub 20. Dual non-conductive
layers 25 and 26 provide an effectively large internal isolation path (a large value
for R
IN) thus increasing the electrical efficiency of the gap sub 20 EM telemetry by providing
an internal resistance (R
IN) between antenna elements of the gap sub 20 that is large compared to the resistance
of the external gap (R
OUT).
[0034] Another advantage of providing non-conductive layers on both the inner surface of
gap sub 20 and the outer surface of electronics package 22 is that layers 25 and 26
prevent conductive outer surfaces of electronics package 22 from making electrical
contact with inner surfaces of gap sub 20 as might possibly occur in cases where the
electronics package and gap sub are subjected to high shocks and/or vibration. Such
contact could damage a telemetry signal generator (e.g. by shorting its output) and/or
interfere with telemetry of downhole information.
[0035] A centralizer may optionally be provided to maintain electronics package 22 central
in bore 20D of gap sub 20. Various centralizer designs are used. Any suitable centralizer
may be used. In some embodiments one or both of layers 25 and 26 is integrated with
a centralizer. For example, centralizing members such as longitudinally-extending
ridges or bumps or other protrusions may be provided on one or both of layers 25 and
26 to maintain electronics package 22 centered in the bore of gap sub 20. The centralizing
members may comprise a resilient elastomeric or vibration dampening material such
as rubber or a suitable plastic, for example.
[0036] Providing electrically-insulating layers 25 and/or 26 also allows the minimum spacing
between the inner surfaces of electrically conducting parts 20A and 20B of gap sub
20 and the outer surface of the housing 23 of electronics package 22 to be reduced
significantly without causing losses due to conduction through the fluid within the
bore of gap sub 20 to increase significantly. This is particularly significant where
the drilling fluids being used are of a type that provides relatively low electrical
impedance. Water-based drilling fluids tend to have lower electrical impedance.
[0037] Providing electrically-insulating layers 25 and/or 26 also allows the width of gap
20C inside the bore of gap sub 20 and the width of gap 23C to be reduced. Reducing
the widths of gaps 20C and/or 23C can result in more robust apparatus since most available
electrically-insulating materials suitable for gaps 23C and 20C are less robust than
the materials (most typically metals) used for other parts of gap sub 20 and housing
23.
[0038] Electrically-insulating layers 25 and 26A also alleviate any need to align gap 20C
of gap sub 20 with gap 23C of electronics package 22. In some embodiments gap 20C
is longitudinally spaced apart from Gap 23C. Thus the provision of electrically-insulating
layers 25 and 26 allows the longitudinal position of electronics package 22 to be
adjusted without causing problems that might otherwise arise from the misalignment
of gaps 20C and 23C. Furthermore, the location of gap 23C on electronics package 22
may be selected for optimum mechanical properties and/or for optimum placement of
electronics systems and components within electronics package 22 when it is unnecessary
for gap 23C to be aligned longitudinally with gap 20C..
[0039] In some embodiments, electrically conducting parts 20A and 20B of gap sub 20 are
formed to provide parts that extend radially inwardly to provide support to electronics
package 22. The radially-inwardly extending parts may be integrally formed with parts
20A and 20B of the same metal.
[0040] Figure 5 illustrates an example apparatus 50 comprising a gap sub 20 that is formed
to provide radially-inwardly extending parts in the form of rounded lobes 52 that
extend longitudinally within bore 20D of gap sub 20. Lobes 52 may extend for substantially
the full length of electronics package 22. Lobes 52 may be formed, for example, by
hobbing.
[0041] Figure 5A shows an example embodiment wherein an electrically insulating layer 25
is provided on the outside of electronics package 22. Another electrically insulating
layer 26A is preferably but optionally provided on the inside of the bore of gap sub
20 covering lobes 52.
[0042] As shown in Figure 5A, lobes 52 are dimensioned such that electronics package 22
is firmly held within their inwardly-facing tips. Electrically-insulating layers 25
and/or 26A may be of materials that provide mechanical damping as well as electrical
insulation. Mechanically coupling electronics package 22 to gap sub 20 continuously
along its length can substantially reduce flexing and vibration of electronics package
22 caused by lateral accelerations of the drill string, flow of drilling fluid, or
the like.
[0043] Apparatus as described herein may be applied in a wide range of subsurface drilling
applications. For example, the apparatus may be applied to provide telemetry in logging
while drilling ('LWD') and/or measuring while drilling ('MWD') applications. Providing
apparatus as described herein in which electrical current flow between different antenna
elements within the bore of a drill string is significantly diminished reduces the
load on a telemetry signal generator. This in turn may permit the same telemetry signal
generator to operate with a reduced power output and/or to provide a higher-voltage
signal to the antenna elements, thereby facilitating one or more of extended battery
life, reduced power consumption, improved telemetry signal strength at the surface
and reduced telemetry error rate. Extended battery life in downhole applications is
very significant since battery replacement or recharging may require withdrawal of
the electronics package from the hole. This can be time consuming and labor intensive.
Thus, increased battery life can result in a longer run length during drilling operations
with fewer service intervals needed.
[0044] Another aspect of the invention provides a subsurface drilling method. The method
is performed using a drill string comprising a gap sub and an electronics package
located in a bore of the gap sub. The electronics package has electrical contacts
that are in electrical contact with electrically-conductive parts of the gap sub.
The method involves passing a drilling fluid down a bore of the drill string and,
at the location of the electronics package, channeling the drilling fluid into a channel
that is electrically insulated from both the electrically conductive parts of the
gap sub and electrically conductive parts of the housing of the electronics package.
In some embodiments, examples of which are described above, the channel is an annular
channel that surrounds that portion of the electronics package between the electrodes.
This is not mandatory, however.
[0045] A wide range of alternatives are possible. For example, it is not mandatory that
the gap sub be a single component. In some embodiments a gap sub comprises a plurality
of components that can be assembled together into the drill string to provide electrical
insulation between two parts of the drill string. A probe may extend fully or partially
through one, two, three, or more coupled-together sections of the drill string.
[0046] In some embodiments, electronic systems which may include a telemetry signal generator
are provided in a package located in a cavity formed in a wall of a drill collar or
gap sub. Such embodiments may not have a separate probe mounted in a bore of the drill
collar or gap sub. Electrical connections between an EM telemetry signal generator
housed in a wall of a drill string section and uphole and downhole portions 20A and
20B of the gap sub may be made by way of conductors embedded in the wall of the gap
sub. Figure 6 shows schematically an example embodiment in which an electronics package
60 is located in a cavity 61 in a wall of a gap sub 20. In such embodiments efficiency
of EM telemetry may be improved by providing an electrically-insulating layer 26 that
at least partially covers the inside of electrically-insulating gap 20C and extends
to continuously cover parts of one or both of the inner surfaces of the electrically-conducting
uphole and downhole parts 20A and 20B of gap sub 20 that are adjacent to electrically-insulating
gap 20C. The electrically-insulating layer 26 covers at least one of the interfaces
62 between electrically-insulating gap 20C and uphole and downhole parts 20A and 20B.
With electrically-insulating layer 26 lining bore 27, the shortest path through the
fluid in bore 27 electrically connecting parts 20A and 20B of gap sub 20 is at least
the length of electrically-insulating layer 26.
Interpretation of Terms
[0047] Unless the context clearly requires otherwise, throughout the description and the
claims:
- "comprise", "comprising", and the like are to be construed in an inclusive sense,
as opposed to an exclusive or exhaustive sense; that is to say, in the sense of "including,
but not limited to".
- "connected", "coupled", or any variant thereof, means any connection or coupling,
either direct or indirect, between two or more elements; the coupling or connection
between the elements can be physical, logical, or a combination thereof.
- "herein", "above", "below", and words of similar import, when used to describe this
specification shall refer to this specification as a whole and not to any particular
portions of this specification.
- "or", in reference to a list of two or more items, covers all of the following interpretations
of the word: any of the items in the list, all of the items in the list, and any combination
of the items in the list.
- the singular forms "a", "an" and "the" also include the meaning of any appropriate
plural forms.
[0048] Words that indicate directions such as "vertical", "transverse", "horizontal", "upward",
"downward", "forward", "backward", "inward", "outward", "vertical", "transverse",
"left", "right", "front", "back", "top", "bottom", "below", "above", "under", and
the like, used in this description and any accompanying claims (where present) depend
on the specific orientation of the apparatus described and illustrated. The subject
matter described herein may assume various alternative orientations. Accordingly,
these directional terms are not strictly defined and should not be interpreted narrowly.
[0049] Where a component (e.g. a circuit, module, assembly, device, drill string component,
drill rig system etc.) is referred to above, unless otherwise indicated, reference
to that component (including a reference to a "means") should be interpreted as including
as equivalents of that component any component which performs the function of the
described component (i.e., that is functionally equivalent), including components
which are not structurally equivalent to the disclosed structure which performs the
function in the illustrated exemplary embodiments of the invention.
[0050] Specific examples of systems, methods and apparatus have been described herein for
purposes of illustration. These are only examples. The technology provided herein
can be applied to systems other than the example systems described above. Many alterations,
modifications, additions, omissions and permutations are possible within the practice
of this invention. This invention includes variations on described embodiments that
would be apparent to the skilled addressee, including variations obtained by: replacing
features, elements and/or acts with equivalent features, elements and/or acts; mixing
and matching of features, elements and/or acts from different embodiments; combining
features, elements and/or acts from embodiments as described herein with features,
elements and/or acts of other technology; and/or omitting combining features, elements
and/or acts from described embodiments.
1. A probe for subsurface drilling comprising:
an elongated metallic housing (23) enclosing electronics including a signal generator,
preferably an electromagnetic telemetric signal generator, the elongated housing (23)
comprising first and second electrical contacts (24A, 24B) spaced apart longitudinally
on an outside of the housing (23) and an electrically-insulating gap (23C) comprising
an electrically-insulating material providing electrical isolation between first and
second parts (23A, 23B) of the metallic housing (23), the gap (23C) located between
the first and second electrical contacts (24A, 24B) wherein the signal generator is
in electrical contact with the first and second electrical contacts (24A, 25B) and
wherein the first and second electrical contacts (24A, 24B) are located at opposed
ends of the elongated metallic housing (23); and,
a first electrically-insulating layer (25) on an outside surface of the metallic housing
(23), the first electrically-insulating layer (25) continuously covers substantially
all of that portion of the outside surface of the metallic housing (23) between the
first and second electrical contacts (24A, 24B).
2. The probe according to claim 1 wherein the first electrically-insulating layer (25)
continuously covers the outside surface of the metallic housing (23) for a distance
of at least 1 meter, preferably for a distance of at least 2 meters.
3. The probe according to either one of claims 1 or 2 wherein the first electrical contact
(24A) is in electrical contact with the first part (23A) of the metallic housing (23),
and/or the second electrical contact (24B) is in electrical contact with the second
part (23B) of the metallic housing (23).
4. The probe according to any one of claims 1 to 3 wherein the first electrically-insulating
layer (25) comprises a material selected from the group consisting of: thermoplastics,
epoxies, ceramics, elastic polymers, and rubber.
5. The probe according to any one of claims 1 to 4 wherein the first electrically-insulating
layer (25) comprises a coating applied to an outside surface of the probe or a pre-formed
component engaged around the outside surface of the probe, wherein the pre-formed
component is preferably a pre-formed tubular sleeve.
6. The probe according to any one of claims 1 to 5 wherein the first electrically-insulating
layer (25) is integrated with a centralizer.
7. The probe according to any one of claims 1 to 6 wherein longitudinally-extending ridges
or bumps are provided on an outside surface of the first electrically-insulating layer
(25).
8. A probe combination comprising the probe according to any one of claims 1 to 7 in
combination with a gap sub (20), the gap sub (20) comprising an electrically-conducting
uphole part (20A) comprising an uphole coupling (21) for coupling into a drill string,
an electrically-conducting downhole part (20B) comprising a downhole coupling (21)
for coupling into the drill string, a bore (20D) extending through the gap sub (20)
from the uphole coupling (21) to the downhole coupling (21) and an electrically-insulating
gap portion (20C) electrically isolating the uphole part (20A) of the gap sub (20)
from the downhole part (20B) of the gap sub (20) wherein the probe is located within
the bore (20D) of the gap sub (20) and the first electrical contact (24A) is in electrical
contact with the uphole part (20A) of the gap sub (20)and the second electrical contact
(24B) is in electrical contact with the downhole part (20B) of the gap sub (20), wherein
the electrically-insulating gap (23C) of the probe is longitudinally spaced apart
from the electrically-insulating gap portion (20C) of the gap sub (20).
9. The probe combination according to claim 8 comprising a second electrically-insulating
layer (26) extending around the probe within the bore (20D) of the gap sub (20), wherein
the first and second electrically-insulating layers (25, 26) are both at least 2 meters
long, and wherein the second electrically-insulating layer (26) is at least 75% as
long as the first electrically-insulating layer (25).
10. The probe combination according to claim 9 wherein the second electrically-insulating
layer (26) covers substantially the entire portion of a wall of the bore (20D) of
the gap sub (20) lying between the first and second electrical contacts (24A, 24B)
and/or wherein the second electrically-insulating layer (26) lines an inner wall of
the bore (20D) of the gap sub (20).
11. The probe combination of either one of claims 9 or 10 wherein the second electrically-insulating
layer (26) comprises a coating applied to the inner wall of the bore (20D) of the
gap sub (20) or a tubular sleeve engaged around the inner wall of the bore (20D) of
the gap sub (20).
12. The probe combination of either one of claims 9 or 10 further comprising a drill collar
coupled to a downhole end of the gap sub wherein the second electrically-insulating
layer (26) lines an inner wall of a bore of the drill collar, wherein the second electrically-insulating
layer (26) comprises a coating applied to the inner wall of the bore of the drill
collar or a pre-formed component engaged around the inner wall of the bore of the
drill collar.
13. The probe combination of either one of claims 9 or 10 wherein the second electrically-insulating
layer (26) comprises a tubular sleeve formed with longitudinally-extending lobes that
contact the first electrically-insulating layer (25) on the outside surface of the
metallic housing (23) and wherein preferably at least one of the first electrically-insulating
layer (25) and the second electrically-insulating layer (26) comprises a material
that provides mechanical damping.
14. The probe combination of any one of claims 8 to 13wherein the gap sub (20) comprises
inwardly-extending parts projecting inwardly on an inside of the bore (20D), the inwardly-extending
parts comprising longitudinally-extending ridges and/or, the ridges comprising rounded
lobes and/or metal ridges integrally-formed with one or both of the uphole and downhole
parts (20A, 20B) of the gap sub (20), and wherein the inwardly extending parts preferably
extend to support the probe from a plurality of different circumferential directions.
15. The probe combination of any one of claims 8 to 11 comprising a drill collar coupled
to a downhole end of the gap sub wherein the drill collar comprises a bore and inwardly-extending
parts projecting inwardly on an inside of the bore of the drill collar wherein the
probe extends into the drill collar.
16. A subsurface drilling method performed using a drill string including the probe according
to one of claims 1 to 7 comprising a gap sub (20) and the probe located in a bore
(20D) of the gap sub (20) wherein the first and second electrical contacts (24A, 24B)
of the probe are in electrical contact with electrically-conductive parts (20A, 20B)
of the gap sub (20), the method comprising:
passing a drilling fluid down a bore of the drill string; and,
at the location of the electronics package, channeling the drilling fluid into a channel
extending between the first and second electrical contacts (24A, 24B) that is electrically
insulated from both the electrically conductive parts (20A, 20B) of the gap sub (20)
and parts (23A, 23B) of the metallic housing (23) of the probe, the channel extending
substantially from the first electrical contact (24A) to the second electrical contact
(24B), wherein the channel is preferably annular in cross section and/or surrounds
at least that portion of the probe between the electrical contacts (24A, 24B).
17. The method according to claim 16 comprising carrying the drilling fluid in the channel
for a distance of at least 1 meter, preferably for a distance of at least 1½ meters
and/or for a distance of at least 65% of a distance between the first and second electrical
contacts (24A, 24B).
1. Sonde für subterrestrisches Bohren, umfassend:
ein längliches metallisches Gehäuse (23), das Elektronik umschließt, die einen Signalgenerator,
bevorzugt einen elektromagnetischen telemetrischen Signalgenerator, umfasst, wobei
das längliche Gehäuse (23) erste und zweite elektrische Kontakte (24A, 24B) umfasst,
die in Längsrichtung auf einer Außenseite des Gehäuses (23) voneinander beabstandet
sind, und einen elektrisch isolierenden Spalt (23C) umfasst, der ein elektrisch isolierendes
Material enthält, das eine elektrische Isolierung zwischen ersten und zweiten Teilen
(23A, 23B) des metallischen Gehäuses (23) herstellt, wobei der Spalt (23C) sich zwischen
den ersten und zweiten elektrischen Kontakten (24A, 24B) befindet, wobei der Signalgenerator
in elektrischem Kontakt mit den ersten und zweiten elektrischen Kontakten (24A, 24B) steht, und
wobei die ersten und zweiten elektrischen Kontakte (24A, 24B) an gegenüberliegenden
Enden des länglichen metallischen Gehäuses (23) angeordnet sind; und,
eine erste elektrisch isolierende Schicht (25) auf einer Außenfläche des metallischen
Gehäuses (23), wobei die erste elektrisch isolierende Schicht (25) durchgehend im
Wesentlichen den gesamten Abschnitt der Außenfläche des metallischen Gehäuses (23)
zwischen den ersten und zweiten elektrischen Kontakten (24A, 24B) bedeckt.
2. Sonde nach Anspruch 1, wobei die erste elektrisch isolierende Schicht (25) die Außenfläche
des metallischen Gehäuses (23) durchgehend über eine Distanz von mindestens 1 Meter,
bevorzugt über eine Distanz von mindestens 2 Metern bedeckt.
3. Sonde nach einem der Ansprüche 1 oder 2, wobei der erste elektrische Kontakt (24A)
mit dem ersten Teil (23A) des metallischen Gehäuses (23) in elektrischem Kontakt steht
und/oder der zweite elektrische Kontakt (24B) mit dem zweiten Teil (23B) des metallischen
Gehäuses (23) in elektrischem Kontakt.
4. Sonde nach einem der Ansprüche 1 bis 3, wobei die erste elektrisch isolierende Schicht
(25) ein Material enthält, das aus folgender Gruppe ausgewählt ist: Thermoplastkunststoff,
Epoxide, Keramikwerkstoffe, elastische Polymere und Kautschuk.
5. Sonde nach einem der Ansprüche 1 bis 4, wobei die erste elektrisch isolierende Schicht
(25) eine Beschichtung umfasst, die auf eine Außenfläche der Sonde oder einer vorgeformten
Komponente, die um die Außenfläche der Sonde herum in Eingriff genommen ist, aufgebracht
ist, wobei die vorgeformte Komponente bevorzugt eine vorgeformte röhrenförmige Hülse
ist.
6. Sonde nach einem der Ansprüche 1 bis 5, wobei die erste elektrisch isolierende Schicht
(25) in einen Zentralisierer integriert ist.
7. Sonde nach einem der Ansprüche 1 bis 6, wobei in Längsrichtung sich erstreckende Wülste
oder Kontakthöcker auf einer Außenfläche der ersten elektrisch isolierenden Schicht
(25) angeordnet sind.
8. Sondenkombination, welche die Sonde nach einem der Ansprüche 1 bis 7 in Kombination
mit einer Spaltüberbrückung (20) umfasst, wobei die Spaltüberbrückung (20) Folgendes
umfasst: einen elektrisch leitenden lochaufwärtigen Teil (20A), der eine lochaufwärtige
Kopplung (21) zum Koppeln in einen Bohrstrang umfasst, einen elektrisch leitenden
lochabwärtigen Teil (20B), der eine lochabwärtige Kopplung (21) zum Koppeln in den
Bohrstrang umfasst, eine Bohrung (20D), die sich durch die Spaltüberbrückung (20)
von der lochaufwärtigen Kopplung (21) zu der lochabwärtigen Kopplung (21) erstreckt,
und einen elektrisch isolierenden Spaltabschnitt (20C), der den lochaufwärtigen Teil
(20A) der Spaltüberbrückung (20) von dem lochabwärtigen Teil (20B) der Spaltüberbrückung
(20) elektrisch isoliert, wobei die Sonde innerhalb der Bohrung (20D) der Spaltüberbrückung
(20) angeordnet ist und der erste elektrische Kontakt (24A) in elektrischem Kontakt
mit dem lochaufwärtigen Teil (24A) der Spaltüberbrückung (20) steht und der zweite
elektrische Kontakt (24B) in elektrischem Kontakt mit dem lochabwärtigen Teil (20B)
der Spaltüberbrückung (20) steht, wobei der elektrisch isolierende Spalt (23C) der
Sonde in Längsrichtung von dem elektrisch isolierenden Spaltabschnitt (20C) der Spaltüberbrückung
(20) beabstandet ist.
9. Sondenkombination nach Anspruch 8, die eine zweite elektrisch isolierende Schicht
(26) umfasst, die sich innerhalb der Bohrung (20D) der Spaltüberbrückung (20) um die
Sonde herum erstreckt, wobei die ersten und zweiten elektrisch isolierenden Schichten
(25, 26) beide mindestens 2 Meter lang sind, und wobei die zweite elektrisch isolierende
Schicht (26) mindestens 75 % so lang ist wie die erste elektrisch isolierende Schicht
(25).
10. Sondenkombination nach Anspruch 9, wobei die zweite elektrisch isolierende Schicht
(26) im Wesentlichen den gesamten Abschnitt einer Wand der Bohrung (20D) der Spaltüberbrückung
(20) bedeckt, der zwischen den ersten und zweiten elektrischen Kontakten (24A, 24B)
liegt, und/oder wobei die zweite elektrisch isolierende Schicht (26) eine innere Wand
der Bohrung (20D) der Spaltüberbrückung (20) auskleidet.
11. Sondenkombination nach einem der Ansprüche 9 oder 10, wobei die zweite elektrisch
isolierende Schicht (26) eine Beschichtung umfasst, die auf die innere Wand der Bohrung
(20D) der Spaltüberbrückung (20) oder eine röhrenförmige Hülse, die um die innere
Wand der Bohrung (24D) der Spaltüberbrückung (20) in Eingriff genommen ist, aufgebracht
wird.
12. Sondenkombination nach einem der Ansprüche 9 oder 10, die des Weiteren eine Schwerstange
umfasst, die mit einem lochabwärtigen Ende der Spaltüberbrückung gekoppelt ist, wobei
die zweite elektrisch isolierende Schicht (26) eine innere Wand einer Bohrung der
Schwerstange auskleidet, wobei die zweite elektrisch isolierende Schicht (26) eine
Beschichtung umfasst, die auf die innere Wand der Bohrung der Schwerstange oder eine
vorgeformte Komponente, die um die innere Wand der Bohrung der Schwerstange in Eingriff
genommen ist, aufgebracht ist.
13. Sondenkombination nach einem der Ansprüche 9 oder 10, wobei die zweite elektrisch
isolierende Schicht (26) eine röhrenförmige Hülse umfasst, die mit in Längsrichtung
sich erstreckenden Lappen ausgebildet ist, welche die erste elektrisch isolierende
Schicht (25) auf der Außenfläche des metallischen Gehäuses (23) berühren, und wobei
bevorzugt mindestens eine der ersten elektrisch isolierenden Schicht (25) und der
zweiten elektrisch isolierenden Schicht (26) ein Material enthält, das eine mechanische
Dämpfung bewirkt.
14. Sondenkombination nach einem der Ansprüche 8 bis 13, wobei die Spaltüberbrückung (20)
sich einwärts erstreckende Teile umfasst, die auf einer Innenseite der Bohrung (20D)
einwärts vorstehen, wobei die sich einwärts erstreckenden Teile in Längsrichtung sich
erstreckende Wülste umfassen, und/oder wobei die Wülste gerundete Lappen und/oder
Metallwülste umfassen, die integral mit einem oder beiden der lochaufwärtigen und
lochabwärtigen Teile (20A, 20B) der Spaltüberbrückung (20) ausgebildet sind, und wobei
die sich einwärts erstreckenden Teile sich bevorzugt so erstrecken, dass sie die Sonde
aus mehreren verschiedenen Umfangsrichtungen stützen.
15. Sondenkombination nach einem der Ansprüche 8 bis 11, die eine Schwerstange umfasst,
die mit einem lochabwärtigen Ende der Spaltüberbrückung gekoppelt ist, wobei die Schwerstange
eine Bohrung und sich einwärts erstreckende Teile umfasst, die auf einer Innenseite
der Bohrung der Schwerstange einwärts vorstehen, wobei sich die Sonde in die Schwerstange
hinein erstreckt.
16. Subterrestrisches Bohrverfahren, das unter Verwendung eines Bohrstrangs ausgeführt
wird, der die Sonde nach einem der Ansprüche 1 bis 7 umfasst, die eine Spaltüberbrückung
(20) umfasst, und wobei sich die Sonde in einer Bohrung (20D) der Spaltüberbrückung
(20) befindet, wobei die ersten und zweiten elektrischen Kontakte (24A, 24B) der Sonde
in elektrischem Kontakt mit elektrisch leitenden Teilen (20A, 20B) der Spaltüberbrückung
(20) stehen, wobei das Verfahren Folgendes umfasst:
Leiten einer Bohrflüssigkeit abwärts entlang einer Bohrung des Bohrstrangs; und
an der Stelle des Elektronik-Package, Kanalisieren der Bohrflüssigkeit in einen Kanal,
der sich zwischen den ersten und zweiten elektrischen Kontakten (24A, 24B) erstreckt
und elektrisch sowohl von den elektrisch leitenden Teilen (20A, 20B) der Spaltüberbrückung
(20) als auch von Teilen (23A, 23B) des metallischen Gehäuses (23) der Sonde isoliert
ist, wobei sich der Kanal im Wesentlichen von dem ersten elektrischen Kontakt (24A)
zu dem zweiten elektrischen Kontakt (24B) erstreckt, wobei der Kanal bevorzugt einen
ringförmigen Querschnitt aufweist und/oder mindestens jenen Abschnitt der Sonde zwischen
den elektrischen Kontakten (24A, 24B) umgibt.
17. Verfahren nach Anspruch 16, das umfasst, die Bohrflüssigkeit in dem Kanal über eine
Distanz von mindestens 1 Meter, bevorzugt über eine Distanz von mindestens 1,5 Metern,
und/oder über eine Distanz von mindestens 65 % einer Distanz zwischen den ersten und
zweiten elektrischen Kontakten (24A, 24B), zu transportieren.
1. Sonde de forage souterrain comprenant :
un boîtier métallique allongé (23) renfermant des circuits électroniques incluant
un générateur de signaux, de préférence un générateur de signaux de télémétrie électromagnétique,
le boîtier allongé (23) comprenant des premier et second contacts électriques (24A,
24B) longitudinalement espacés l'un de l'autre sur l'extérieur du boîtier (23) et
un espace électriquement isolant (23C) comprenant un matériau électriquement isolant
assurant une isolation électrique entre des premier et second éléments (23A, 23B)
du boîtier métallique (23),
l'espace (23C) se situant entre les premier et second contacts électriques (24A, 24B),
dans laquelle le générateur de signaux est au contact électrique des premier et second
contacts électriques (24A, 24B) et
dans laquelle les premier et second contacts électriques (24A, 24B) se situent à des
extrémités opposées du boîtier métallique allongé (23) ; et
une première couche électriquement isolante (25) sur une surface extérieure du boîtier
métallique (23), la première couche électriquement isolante (25) recouvrant en continu
sensiblement toute la partie de la surface extérieure du boîtier métallique (23) se
trouvant entre les premier et second contacts électriques (24A, 24B).
2. Sonde selon la revendication 1, dans laquelle la première couche électriquement isolante
(25) recouvre en continu la surface extérieure du boîtier métallique (23) sur une
distance d'au moins 1 mètre, de préférence sur une distance d'au moins 2 mètres.
3. Sonde selon l'une ou l'autre des revendications 1 et 2, dans laquelle le premier contact
électrique (24A) est au contact électrique du premier élément (23A) du boîtier métallique
(23), et/ou le second contact électrique (24B) est au contact électrique de second
élément (23B) du boîtier métallique (23).
4. Sonde selon l'une quelconque des revendications 1 à 3, dans laquelle la première couche
électriquement isolante (25) comprend un matériau choisi dans le groupe constitué
de : matières thermoplastiques, époxydes, céramiques, polymères élastiques et caoutchouc.
5. Sonde selon l'une quelconque des revendications 1 à 4, dans laquelle la première couche
électriquement isolante (25) comprend un revêtement appliqué sur une surface extérieure
de la sonde ou un composant préformé entrant en prise autour de la surface extérieure
de la sonde, dans laquelle le composant préformé est de préférence un manchon tubulaire
préformé.
6. Sonde selon l'une quelconque des revendications 1 à 5, dans laquelle la première couche
électriquement isolante (25) est intégrée à un centreur.
7. Sonde selon l'une quelconque des revendications 1 à 6, dans laquelle des arêtes ou
des bosses s'étendant longitudinalement se trouvent sur une surface extérieure de
la première couche électriquement isolante (25).
8. Combinaison de sonde comprenant la sonde selon l'une quelconque des revendications
1 à 7, en combinaison avec un raccord d'espace (20), le raccord d'espace (20) comprenant
un élément de haut de trou conducteur de l'électricité (20A) comprenant un accouplement
de haut de trou (21) pour s'accoupler à un train de tiges de forage, un élément de
fond de trou conducteur de
l'électricité (20B) comprenant un accouplement de fond de trou (21) pour s'accoupler
au train de tiges de forage, un alésage (20D) s'étendant à travers le raccord d'espace
(20), de l'accouplement de haut de trou (21) à l'accouplement de fond de trou (21)
et une partie espace électriquement isolant (20C) isolant électriquement l'élément
de haut de trou (20A) du raccord d'espace (20) de l'élément de fond de trou (20B)
du raccord d'espace (20), dans laquelle la sonde se trouve dans l'alésage (20D) du
raccord d'espace (20) et le premier contact électrique (24A) est au contact électrique
de l'élément de haut de trou (20A) du raccord d'espace (20) et le second contact électrique
(24B) est au contact électrique de l'élément de fond de trou (20B) du raccord d'espace
(20), dans laquelle l'espace électriquement isolant (23C) de la sonde est longitudinalement
espacé de la partie espace électriquement isolant (20C) du raccord d'espace (20).
9. Combinaison de sonde selon la revendication 8, comprenant une seconde couche électriquement
isolante (26) s'étendant autour de la sonde à l'intérieur de l'alésage (20D) du raccord
d'espace (20), dans laquelle les première et seconde couches électriquement isolantes
(25, 26) ont toutes deux au moins 2 mètres de long, et dans laquelle la seconde couche
électriquement isolante (26) est d'une longueur représentant au moins 75 % de la longueur
de la première couche électriquement isolante (25).
10. Combinaison de sonde selon la revendication 9, dans laquelle la seconde couche électriquement
isolante (26) recouvre sensiblement toute la partie d'une paroi de l'alésage (20D)
du raccord d'espace (20) se trouvant entre les premier et second contacts électriques
(24A, 24B) et/ou dans laquelle la seconde couche électriquement isolante (26) garnit
une paroi intérieure de l'alésage (20D) du raccord d'espace (20).
11. Combinaison de sonde selon l'une ou l'autre des revendications 9 et 10, dans laquelle
la seconde couche électriquement isolante (26) comprend un revêtement appliqué sur
la paroi intérieure de l'alésage (20D) du raccord d'espace (20) ou un manchon tubulaire
entrant en prise autour de la paroi intérieure de l'alésage (20D) du raccord d'espace
(20).
12. Combinaison de sonde selon l'une ou l'autre des revendications 9 et 10, comprenant
en outre une masse-tige accouplée à une extrémité de fond de trou du raccord d'espace,
dans laquelle la seconde couche électriquement isolante (26) garnit une paroi intérieure
d'un alésage de la masse-tige, dans laquelle la seconde couche électriquement isolante
(26) comprend un revêtement appliqué sur la paroi intérieure de l'alésage de la masse-tige
ou un composant préformé entrant en prise autour de la paroi intérieure de l'alésage
de la masse-tige.
13. Combinaison de sonde selon l'une ou l'autre des revendications 9 et 10, dans laquelle
la seconde couche électriquement isolante (26) comprend un manchon tubulaire formé
avec des lobes s'étendant longitudinalement qui entrent en contact avec la première
couche électriquement isolante (25) sur la surface extérieure du boîtier métallique
(23) et dans laquelle de préférence au moins l'une de la première couche électriquement
isolante (25) et de la seconde couche électriquement isolante (26) comprend un matériau
qui permet un amortissement mécanique.
14. Combinaison de sonde selon l'une quelconque des revendications 8 à 13, dans laquelle
le raccord d'espace (20) comprend des éléments s'étendant vers l'intérieur, faisant
saillie vers l'intérieur sur l'intérieur de l'alésage (20D), les éléments s'étendant
vers l'intérieur comprenant des arêtes s'étendant longitudinalement et/ou les arêtes
comprenant des lobes arrondis et/ou des arêtes métalliques formées d'une seule pièce
avec l'un des éléments de haut de trou et de fond de trou (20A, 20B) ou les deux du
raccord de trou (20), et dans laquelle les éléments s'étendant vers l'intérieur s'étendent
de préférence pour supporter la sonde à partir d'une pluralité de directions circonférentielles
différentes.
15. Combinaison de sonde selon l'une quelconque des revendications 8 à 11, comprenant
une masse-tige accouplée à une extrémité de fond de trou du raccord d'espace, dans
laquelle la masse-tige comprend un alésage et des éléments s'étendant vers l'intérieur,
faisant saillie vers l'intérieur sur l'intérieur de l'alésage de la masse-tige, dans
laquelle la sonde s'étend dans la masse-tige.
16. Procédé de forage souterrain mis en oeuvre à l'aide d'un train de tiges de forage
comportant la sonde selon l'une des revendications 1 à 7 comprenant un raccord d'espace
(20) et la sonde se trouvant dans un alésage (20D) du raccord d'espace (20), dans
lequel les premier et second contacts électriques (24A, 24B) de la sonde sont au contact
électrique des éléments conducteurs de l'électricité (20A, 20B) du raccord d'espace
(20), le procédé comprenant les étapes suivantes :
faire circuler un fluide de forage vers le bas d'un alésage du train de tiges de forage
; et
à l'emplacement du module électronique, canaliser le fluide de forage dans un canal
s'étendant entre les premier et second contacts électriques (24A, 24B) qui est électriquement
isolé des deux éléments conducteurs de l'électricité (20A, 20B) du raccord d'espace
(20) et des éléments (23A, 23B) du boîtier métallique (23) de la sonde, le canal s'étendant
sensiblement du premier contact électrique (24A) au second contact électrique (24B),
dans lequel le canal est de préférence de section transversale annulaire et/ou entoure
au moins la partie de la sonde se trouvant entre les contacts électriques (24A, 24B)
.
17. Procédé selon la revendication 16, comprenant l'acheminement du fluide de forage dans
le canal sur une distance d'au moins 1 mètre, de préférence sur une distance d'au
moins 1 ½ mètre et/ou sur une distance représentant au moins 65 % d'une distance entre
les premier et second contacts électriques (24A, 24B).