Field of the invention
[0001] The present invention relates to a downhole tool system for being submerged into
a casing, comprising at least three tools. Furthermore, the invention relates to a
communication method for communicating wirelessly between a first and a third tool
separated by a second tool.
Background art
[0002] Communication between surface and a tool in a well via acoustic signals in the well
fluid is known. However, well fluid is most often very inhomogeneous as it comprises
mud, scales, both oil and water, and gas bubbles. Therefore, the communication sometimes
fails.
[0003] Sometimes, two operators work together to perform a well operation in the sense that
a tool of one operator is arranged between the tools of another operator. However,
when this is the case, communication between the tools of the other operator is hindered
as these tools are separated by the tool of the one operator, through which communication
is not possible. This is due to the fact that the one operator uses a different communication
system than the other operator and that it is not possible to pull wires through the
intermediate tool.
[0004] Since prior art acoustic communication through well fluid does not always function
successfully, there is a need for an alternative communication form.
Summary of the invention
[0005] It is an object of the present invention to wholly or partly overcome the above disadvantages
and drawbacks of the prior art. More specifically, it is an object to provide an improved
tool string enabling successful communication between two tools separated by an intermediate
tool.
[0006] The above objects, together with numerous other objects, advantages, and features,
which will become evident from the below description, are accomplished by a solution
in accordance with the present invention by a downhole tool system for being submerged
into a casing, comprising at least three tools:
- a first tool having a first and a second end and comprising a first communication
device arranged at the second end,
- a second tool having a first end, which is connected with the second end of the first
tool, and a second end, the second tool comprising a housing, and
- a third tool comprising a second communication device arranged at a first end, the
first end of the third tool being connected with the second end of the second tool,
the first and second communication devices being a first and a second acoustic device,
respectively,
wherein the second tool is arranged between the first and the third tool, and the
first acoustic device arranged at the first end of the second tool sends and receives
acoustic signals to and from the second acoustic device which is arranged at the first
end of the third tool.
[0007] During a well operation, two operators may be forced to work together in the sense
that one operator provides one tool and the other operator provides two tools, and
the three tools are to be connected into one tool string where the tool of the one
operator is arranged between the two tools of the second operator. In such a situation,
the second operator must be able to communicate from one tool to the other through
the intermediate tool. However, operators often use different communication systems,
and sometimes, the second operator is not able to get communication cables into and
through the intermediate tool. Therefore, there is a need for a tool system facilitating
communication from one tool to another through an intermediate tool.
[0008] The acoustic devices arranged at each end of the intermediate tool are able to send
acoustic signals propagating along the housing of the intermediate and second tool.
The housing is often made of a solid material, increasing its transmitting ability
compared to the transmitting ability in the surrounding well fluid which may be inhomogeneous
and thereby be a poor transmitting media compared to a metal housing.
[0009] The three tools are most often connected by means of threaded connections providing
a sufficiently firm connection for transmitting acoustic signals from the first or
third tool to the second tool.
[0010] In an embodiment of the invention, the first and second acoustic devices may comprise
means for converting data parameters into electric signals and transducers for receiving
the electrical signal and generating acoustic signals propagating along the housing
of the second tool.
[0011] Furthermore, the transducers may abut the ends of the second tool.
[0012] Moreover, the transducers of the first and second acoustic devices may face the second
tool, causing the acoustic signals to propagate axially along the housing of the second
tool.
[0013] In another embodiment, the first and second communication devices may be antennas
instead of acoustic devices, sending and receiving radio waves.
[0014] Moreover, the antennas may transmit signals having a wavelength of 1-2 cm.
[0015] The third tool may be a logging tool.
[0016] Furthermore, the first tool may comprise an electronic motor.
[0017] In addition, the first and/or second communication device(s) may comprise a memory.
[0018] Also, the first and/or second communication device(s) may comprise a processing unit
for processing data before converting the data into acoustic signals.
[0019] Moreover, the transducer may be a magnetostrictive transducer.
[0020] Additionally, the acoustic devices may comprise piezoelectric microphones.
[0021] Furthermore, the first tool may be connected with a wireline.
[0022] Moreover, the first or third tool may comprise a driving unit, such as a downhole
tractor.
[0023] In addition, the communication device may comprise a battery.
[0024] Also, the acoustic devices may comprise mechanical or electronic filters.
[0025] The present invention furthermore relates to a communication method for communicating
wirelessly between a first and a third tool separated by a second tool, comprising
the steps of:
- connecting the first tool with the second tool, the first tool comprising a first
acoustic device and the second tool comprising a tool housing,
- connecting the third tool with the second tool, the third tool comprising a second
acoustic device,
- sending acoustic signals from the first acoustic device to the second acoustic device,
the signals propagating along the housing of the tool.
[0026] The communication method may further comprise the step of converting data parameters
into electric signals.
Brief description of the drawings
[0027] The invention and its many advantages will be described in more detail below with
reference to the accompanying schematic drawings, which for the purpose of illustration
show some non-limiting embodiments and in which
Fig. 1 shows a partial cross-sectional view of a downhole tool system, and
Fig. 2 shows another embodiment of the downhole tool system.
[0028] All the figures are highly schematic and not necessarily to scale, and they show
only those parts which are necessary in order to elucidate the invention, other parts
being omitted or merely suggested.
Detailed description of the invention
[0029] Fig. 1 shows a downhole tool system 1 comprising three tools; a first 1, a second
2 and a third 3 tool, arranged as a tool string. The first tool 1 is connected to
a wireline at its first end 11 to power the tool string. In its second end 12, the
first tool 1 is connected to a first end 21 of the second tool 2 by means of a threaded
connection firmly connecting the first 1 and second 2 tools. In its second end 22,
the second tool 2 is connected to a first end 31 of the third tool 3, also by means
of a threaded connection.
[0030] Two operators may work together to perform a well operation in the sense that a tool
of one operator is arranged between the tools of another operator. Thus, the first
1 and the third tool 3 come from a first operator and the second tool 2 comes from
a second operator. Since the first 1 and third 3 tools are separated by the second
tool 2, communication between the tools of the first operator cannot take place inside
the tools in the conventional way since it is not possible to communicate through
the second tool 2. This is due to the fact that the second operator uses a different
communication system than the first operator and that it is not possible to pull wires
through the intermediate tool without having to substantially reconstruct this tool.
[0031] Therefore, the first 1 and third 3 tools comprise communication devices 13, 33 in
the form of acoustic devices. The acoustic device of the first tool 1 is arranged
in a housing wall at the second end 12 of the first tool 1, abutting the first end
21 of the second tool 2, thereby being able to generate acoustic signals propagating
axially along the housing 23 of the second tool 2. The acoustic device of the third
tool 3 is arranged in a housing wall at the first end 31 of the third tool 3, abutting
the second end 22 of the second tool 2, thereby also being able to generate acoustic
signals propagating axially along the housing 23 of the second tool 2.
[0032] Each acoustic device comprises a transducer 5 facing the end of the housing 23 of
the second tool 2. The transducers 5 may be magnetostrictive transducers transmitting
acoustic signals in the form of longitudinal sonic waves along the housing 23 of the
second tool 2.
[0033] In Fig. 2, the communication devices 13, 33 comprise antennas for sending and receiving
radio waves having wavelengths of 1-2 cm. The antennas are arranged so that they project
only partly from the outer faces of the first 1 and third tools 3 and extend parallel
to the longitudinal extension of the tools. By having antennas transmitting signals
with wavelengths of 1-2 cm, the radio waves propagate in the well fluid along the
tool string without being substantially destroyed when hitting the wall of the tools
1, 2, 3 or the wall of the production casing 10.
[0034] The antennas are arranged in the housings of the first 1 and third 3 tools and are
isolated from the other parts of the tools to improve the quality of the communication
between the first 1 and third 3 tools.
[0035] The antennas may also be projecting parts of the tools and be projected as required
and maintained inside the tools when the tool string is submerged into the casing
10.
[0036] By fluid or well fluid is meant any kind of fluid that may be present in oil or gas
wells downhole, such as natural gas, oil, oil mud, crude oil, water, etc. By gas is
meant any kind of gas composition present in a well, completion, or open hole, and
by oil is meant any kind of oil composition, such as crude oil, an oil-containing
fluid, etc. Gas, oil, and water fluids may thus all comprise other elements or substances
than gas, oil, and/or water, respectively.
[0037] By a casing is meant any kind of pipe, tubing, tubular, liner, string etc. used downhole
in relation to oil or natural gas production.
[0038] In the event that the tools are not submergible all the way into the casing, a downhole
tractor can be used to push the tools all the way into position in the well. A downhole
tractor is any kind of driving tool capable of pushing or pulling tools in a well
downhole, such as a Well Tractor®.
[0039] Although the invention has been described in the above in connection with preferred
embodiments of the invention, it will be evident for a person skilled in the art that
several modifications are conceivable without departing from the invention as defined
by the following claims.
1. A downhole tool system (100) for being submerged into a casing (10), comprising at
least three tools:
- a first tool (1) having a first (11) and a second end (12) and comprising a first
communication device (13) arranged at the second end,
- a second tool (2) having a first end (21), which is connected with the second end
of the first tool, and a second end (22), the second tool comprising a housing (23),
and
- a third tool (3) comprising a second communication device (33) arranged at a first
end (31), the first end of the third tool being connected with the second end of the
second tool,
the first and second communication devices being a first and a second acoustic device,
respectively,
wherein the second tool is arranged between the first and the third tool, and the
first acoustic device arranged at the first end of the second tool sends and receives
acoustic signals to and from the second acoustic device which is arranged at the first
end of the third tool.
2. A downhole tool system according to claim 1, wherein the first and second acoustic
devices comprise means (4) for converting data parameters into electric signals and
transducers (5) for receiving the electrical signals and generating acoustic signals
propagating along the housing of the second tool.
3. A downhole tool system according to claim 2, wherein the transducers abut the ends
of the second tool.
4. A downhole tool system according to any of the preceding claims, wherein the transducers
of the first and second acoustic devices face the second tool, causing the acoustic
signals to propagate axially along the housing of the second tool.
5. A downhole tool system according to any of the preceding claims, wherein the first
and second communication devices are antennas instead of acoustic devices, sending
and receiving radio waves.
6. A downhole tool system according to claim 5, wherein the antennas transmit signals
having a wavelength of 1-2 cm.
7. A downhole tool system according to any of the preceding claims, wherein the third
tool is a logging tool.
8. A downhole tool system according to any of the preceding claims, wherein the first
tool comprises an electronic motor (14).
9. A downhole tool system according to any of the preceding claims, wherein the first
and/or second communication device(s) comprise(s) a memory (6).
10. A downhole tool system according to any of the preceding claims, wherein the first
and/or second communication device(s) comprise(s) a processing unit (7) for processing
data before converting the data into acoustic signals.
11. A downhole tool system according to any of the preceding claims, wherein the transducer
is a magnetostrictive transducer.
12. A downhole tool system according to any of the preceding claims, wherein the communication
device comprises a battery (8).
13. A downhole tool system according to any of the preceding claims, wherein the acoustic
devices comprise mechanical or electronic filters (9).
14. A communication method for communicating wirelessly between a first and a third tool
separated by a second tool, comprising the steps of:
- connecting the first tool with the second tool, the first tool comprising a first
acoustic device and the second tool comprising a tool housing,
- connecting the third tool with the second tool, the third tool comprising a second
acoustic device,
- sending acoustic signals from the first acoustic device to the second acoustic device,
the signals propagating along the housing of the tool.
15. A communication method according to claim 14, further comprising the step of converting
data parameters into electric signals.