[0001] This invention relates to data transmission systems and methods of data transmission
for use in pipeline systems, in particular wells.
[0002] It is useful to be able to take measurements when drilling for oil and gas and during
the operation of producing wells. However, it is difficult to transmit data from downhole
locations to the surface and the difficulty increases with depth. At present there
is a requirement for data transmission from 3000 metres or more below the surface.
[0003] Of the signalling techniques currently available those which make use of the metallic
structure of the well itself are particularly preferred as they remove the need to
install separate wirelines. Most non-wireline systems make use of the production string
and casing as a single conducting channel and use earth as the return path. Some attempts
have been made to use the casing and string as separate conduction paths but this
is fraught with problems because of the difficulties in isolating the string from
the casing throughout its length and in particular at the wellhead because of the
loads involved. Other methods include "mud-pulsing" which is not only difficult to
implement and expensive but also gives a poor data rate.
[0004] Whichever system is used, the range is limited because of the inherent losses involved
and the need to keep currents at reasonable levels. Further, to the applicant's knowledge
no practical non-wireline systems are currently available for signalling from locations
on the string within the casing. The communication system described in the applicant's
earlier application EP-A-0, 646, 304, for example, works in open hole conditions and
can transmit a signal along a cased section. However it is generally accepted that
such a system cannot be used in practice to transmit from a position within a cased
section.
[0005] In pipeline systems it is also desirable to be able to transmit signals from an apparatus
within a flowline and/or the associated casing to an apparatus in the same region
of the system but outside the flowline and/or casing. However, it is generally accepted
that this is difficult to achieve.
[0006] It is an object of the present invention to provide communications systems which
alleviate at least some of the problems associated with the prior art.
[0007] According to a first aspect of the present invention there is provided a data transmission
system in which metallic structure of a well is used as a signal channel and earth
is used as return, characterised by an elongate deployment member arranged to move
within and relative to a surrounding portion of metallic structure, a local unit supported
on the deployment member and having receiving and/or transmitting means coupled to
the deployment member for receiving signals from and/or transmitting signals along
the signal channel, and spacer means arranged to ensure that the deployment member
and the surrounding portion of metallic structure are spaced from one another for
at least a selected minimum distance in the region of the local unit, said minimum
distance being selected to give desired reception and/or transmission characteristics.
[0008] According to a second aspect of the present invention there is provided a method
of data transmission in which metallic structure of a pipeline system is used as a
signal channel and earth is used as return characterised by the steps of:
arranging a signal coupling loop having first and second conducting portions, electrically
connected to one another at spaced locations, the metallic structure comprising the
first the conducting portion, and a portion of an elongate deploying member which
is arranged to move within and relative to a surrounding portion of metallic structure
comprising the second conducting portion;
applying a signal to one of the conducting portions to generate a potential difference
between earth and the metallic structure in the region of the loop and cause a signal
to be propagated along the metallic structure away from the loop; and
ensuring that the spaced locations are separated by at least a minimum distance selected
to give desired transmission characteristics.
Other, optional, features are described in the dependent claims.
[0009] An embodiment of the present invention will now be described by way of example only
with reference to the accompanying drawings in which:
Figure 1 schematically shows a subsea well including a data transmission system which
aids in understanding the invention;
Figure 2 schematically shows a portion of the well shown in Figure 1 at which a relay
station is disposed;
Figure 3 shows a simplified equivalent circuit of a typical length of production string
and casing of the well shown in Figure 1;
Figure 4 shows a simplified equivalent circuit of the portion of the well shown in
Figure 2 during reception of a signal;
Figure 5 shows a simplified equivalent circuit of the portion of the well shown in
Figure 2 during transmission of a signal;
Figure 6 shows an alternative coupling method;
Figure 7 is a schematic view of part of a second system which aids in understanding
the invention;
Figure 8 schematically shows a third system which aids in understanding the present
invention;
Figure 9 shows an equivalent circuit for the arrangement shown in Figure 8; and
Figure 10 schematically shows an embodiment of the present invention.
Figures 1 and 2 schematically show a subsea well including a wireless or non-wireline
data transmission system. The well comprises a production string 1 for extracting
product from a formation F. The production string 1 joins a tree 2 at the mudline
and is surrounded by casing 3 between the tree 2 and the formation F. The string 1
and casing 3 form part of the metallic structure of the well. Although Figure 1 shows
the string 1 as being disposed centrally within the casing 3, in practice the string
1 and casing 3 will make glancing contact with one another at numerous positions along
their lengths. In general there is nothing to prevent such glancing contact and the
string 1 will follow a sinuous, for example a helical, path within the casing 3.
[0010] The space between the string 1 and casing 3 is filled with brine (or alternatively
another fluid which is denser than water) to help reduce the pressure acting on the
packing ring 4 provided between the casing 3 and string 1 as they enter the formation
F. The presence of the brine introduces a further conduction path between the string
1 and the casing 3.
[0011] The effect of the glancing contacts and conduction through the brine mean that in
general corresponding points of the string 1 and casing 3 will reach the same potential
and the string 1 and casing 3 must be treated as a single conductor.
[0012] The well also comprises a number of data logging stations 5 provided on the string
1 at open well locations, that is within the formation. The data transmission system
is arranged to allow data to be transmitted between the data logging stations 5 and
the mudline or beyond by using the metallic structure of the well 1,3 as a signal
channel. The distance between the data logging stations and the mudline may be in
excess of 3000 metres. Data is received at and transmitted from the data logging stations
5 using existing non-wireline open well techniques, for example those described in
the applicant's earlier application EP-A-0,646,304. Whilst these techniques work in
the open well and can transmit a signal along the cased section they cannot be used
in practice to transmit from a position within the cased section. Only if the length
of the cased section is not too great can signals be received directly at and sent
directly from the mudline using the non-wireline techniques described in the above
mentioned application; range and data rate being essentially determined by signal
to noise ratio.
[0013] In the present system however, the strength of the signal and/or range of the system
is improved by providing a relay station 6 partway along the cased portion of the
production string 1. Referring particularly to Figure 2, the relay station 6 comprises
transceiver means including an isolation joint 7 provided in the production string,
signal generating means 8a used during transmission and signal measuring means 8b
used during reception. Both the signal generating means and the signal measuring means
are connected across the isolation joint 7. A plurality of insulating annular spacers
9 are provided around the production string 1 over a distance of the order of 100
metres in the region of the isolation joint 7. The distance over which the spacers
9 are provided is chosen such that signals can be effectively received and transmitted.
The actual distance will depend on a number of factors relating to the components
of the transmission system and the well itself.
[0014] The spacers 9 are of a half shell type which are bolted together around the string
1. An insulating layer 9a is provided between each spacer and the string 1. In Figure
2, a side view of one of the spacers 9 is shown and the remainder of the spacers 9
are shown in cross-section. The spacers 9 are arranged and positioned such that at
each spacer 9 the string 1 is held towards the centre of the casing 3 and such that
the string 1 will not contact with the casing 3 at any position between adjacent spacers
9. Beyond the last spacer 9 at each end of the plurality of spacers 9, the string
1 makes glancing contact 10 with the casing 3 as shown in Figure 2. The distance between
each last spacer 9 and the respective glancing contact 10 will be random but its lower
limit will be determined by characteristics of the well and spacers 9. Thus the spacers
9 ensure that there is no contact between the string 1 and casing 3 for at least a
selected minimum distance.
[0015] In general terms the transmission and receiving characteristics of the system improve
as the spacing between the glancing contacts 10 is increased. However, there is a
trade off against the cost involved in lengthening the minimum distance. In general
the actual spacing between the glancing contacts 10 will be greater than the minimum
distance but this simply serves to improve the system.
[0016] The portions of the string 1 and casing 3 between the glancing contacts 10 are hereinafter
referred to as the isolated portion of the string 1a and the corresponding portion
of the casing 3a.
[0017] Figure 3 shows an equivalent (lumped parameter) circuit for a typical length of the
production string 1 and casing 3. The string 1 and casing 3 are respectively represented
by series of resistors R
s and R
c. The leakage paths between the string 1 and casing 3 are represented by a series
of resistors R
g+b and the leakage paths between the casing 3 and remote earth E are represented by
resistors R
e and capacitors C
e. If a signal is applied to the string 1 or casing 3 the strength of the signal will
decrease with distance away from the source due to the losses through the leakage
paths to remote earth E. Further, as mentioned above the potential of the string 1
and casing 3 will tend to equalise.
[0018] Figure 4 shows a simplified equivalent circuit for the portions of the production
string 1a and casing 3a in the region of the relay station 6 during reception of a
signal. Except those 10 at either end of the portions 1a, 3a, the leakage paths due
to glancing contacts have been removed. Thus the resistors R
g+b are replaced by resistors R
b of much higher value representing the leakage through brine alone. The resistance
through the brine in the region of the relay station 6 is so large compared with that
provided by the glancing contacts 10 at the ends of the isolated portion of string
1a that the effect of the brine can essentially be ignored.
[0019] During reception of a signal, because there is no current path through the string
portion 1a due to the isolation joint 7 and because the string portion 1a is effectively
isolated from the corresponding casing portion 3a, all of the signal losses for that
section of the metallic structure will be from the casing 3a. In this circumstance
there will be little potential drop along the two halves of the isolated string portion
1a which essentially provide a direct contact with the glancing contacts 10 at the
end of the portions 1a,3a. This means that the potential difference between two longitudinally
spaced locations on the casing can be detected and hence a signal extracted from the
metallic structure. The fact that all of the signal is forced along the casing 3 in
the region of the relay station 6 can serve to increase the potential difference between
the two spaced locations on the casing 3.
[0020] Figure 5 shows a simplified equivalent circuit for the portions of the production
string 1a and casing 3a in the region of the relay station 6 during transmission.
As above the leakage paths due to glancing contacts have been removed except those
10 at either end of the portions 1a, 3a. Thus the resistors R
g+b are replaced by resistors R
b of much higher value representing the leakage through brine alone. The resistance
through the brine in the region relay station 6 is so large compared with that provided
by the glancing contacts 10 at the ends of the isolated portion of string 1a that
the effect of the brine can be ignored. Thus during transmission a current loop path
can be considered to exist consisting of the isolated portion of the string 1a, the
corresponding portion of the casing 3a and the glancing connection points 10. The
two ends of this loop are of course also connected to the remainder of the string
1 and casing 3. The signal generating means 8a causes a current I to flow around the
loop path. This flow of current I causes a potential difference to be set up between
the glancing contacts 10 at opposite ends of the isolated portion of string 1a. This
potential difference will be I x sumRc, where sumRc equals the total resistance of
the casing between the glancing contacts 10.
[0021] Assuming that the isolation joint 7 is provided at the centre of the isolated portion
of the string 1a and the system settles in balance relative to earth, the magnitude
of the potential difference between metallic structure and earth at each end of the
isolated portion 1a will be (I x sumRc)/2. Because a potential difference exists between
the positions of the glancing contacts 10 and earth, a signal will tend to travel
along the string 1 and casing 3 in each direction away from the relay station 6.
[0022] Desired data, for example that received from a data logging station, can be transmitted
along the string 1 and casing 3 away from the relay station by encoding a suitable
signal onto the string 1 by means of the mechanism described above. The resulting
signal propagates away from the current loop path along the string and casing as a
single conductor. The signal circuit is completed by an earth return and no wirelines
are required. Thus all of the problems associated with the provision of wirelines,
especially downhole, can be avoided.
[0023] Appropriate receiving means at the mudline or at another relay station (not shown)
are used to detect the signal applied to the string 1 and casing 3 and extract the
desired data. The receiving means may make use of an inductive coupling or be arranged
to measure signals with respect to a separate earth reference.
[0024] Thus the range of the signal transmission system can be dramatically increased by
providing a suitable number of relay stations within the casing 3. The relay stations
are bi-directional so that the transmission range when transmitting signals down into
the well as well as out of the well is increased.
[0025] With the isolation joint located centrally within the isolated portion 1a, the signals
in each direction away from the relay station 6 will have substantially equal strength.
However, if the isolation joint 7 is disposed towards one end of the isolated portion
1a, the potential difference generated at the other end of the isolated portion 1a
will tend to be greater than (I x sumRc)/2. Thus if it is desired to increase the
strength of the signal in one direction the isolation joint 7 may be disposed accordingly.
[0026] In an alternative the isolated portion of the production string 1a is provided with
an insulating coating to further reduce conduction between the isolated portion 1a
and the corresponding portion of the casing 3a.
[0027] Figure 6 shows a coil 201 provided on a toroidal core 202 disposed around the production
string portion 1a for use in an alternative method of applying a signal to and/or
tapping a signal from the production string 1. In this case inductive coupling is
relied on and no isolation joint is used. During transmission the coil 201 is used
to induce a current in the string 1 and the current loop path described above acts
as a single turn transformer winding. During reception, a signal on the production
string 1 induces a corresponding current in the coil 201 which can be detected. This
method of reception does not rely on there being an isolated portion 1a of production
string. This coupling method gives an advantage that it is possible to optimise impedance
matching by appropriately choosing the turns ratio.
[0028] Figure 7 shows a further system suitable for use in a well of the type described
above which comprises two pigs 301 connected by an electrically conductive strop 302
and disposed within the production string 1 which may or may not be cased. A first
of the pigs 301 comprises a local station 303 having an isolation member 7 provided
in series with the strop 302 and signal generating means 8a and signal measuring means
8b connected across the isolation member 7. Each of the pigs 301 has a contact 304
for contacting with an internal surface of the string 1.
[0029] Signals may be transmitted and received in this system in substantially the same
way as described above in relation to the first system. During transmission the strop
302, a portion of the string 1a and the contacts 304 form a current loop path. When
current is caused to flow around the loop by the signal generating means 8a a potential
difference between the string 1 and earth can be generated at each contact 304 allowing
a signal to be transmitted. During reception of a signal, the strop 302 and contacts
304 allow the potential difference between two longitudinally spaced points on the
string 1 to be measured so that a signal can be extracted from the string 1.
[0030] In this system signals may be sent to and from the first pig 301. In particular,
signals may be sent from the pig 301 which allow the location of the pig 301 to be
determined and/or which represent a quantity, such as wall thickness, measured by
the pig 301.
[0031] In implementing this system it is desirable to minimise the impedance of the conductive
strop 302 and the contacts 304 between the pigs 301 and the production string 1. Wire
brushes (not shown) provided around the pigs 301 for cleaning purposes may be used
as the contacts 304.
[0032] One possible mechanism for determining the location of the pig 301 would be to arrange
trigger means at spaced locations along a pipeline which cause the pig 301 to send
an appropriate signal. Another method would be to determine the time difference of
arrival of the signal at each end of the pipeline.
[0033] It will be appreciated that this system may be used whether the pigs 301 are within
a cased or uncased section of string. Further the system may be used in other pipeline
systems besides wells.
[0034] In alternatives more than two pigs may be used. Three pigs connected by two conductive
members may be used and the local unit disposed at the central pig. This can facilitate
equalisation of the transmission characteristics in both directions away from the
local unit.
[0035] Figure 8 schematically shows a third system which is for transmitting data from inside
a section of a cased well to a substantially adjacent position outside of the casing.
[0036] Referring to Figure 8 a metallic production string 401 is surrounded by a metallic
casing 403 which form part of a cased well. An isolation joint 407 is provided in
the string 401 and an internal unit 408 including transmitting means (not shown) is
connected across the isolation joint 407. At equally spaced distances from the isolation
joint 407, generally annular electrically conductive packers 411 are provided between
the string 401 and casing 403. The electrically conductive packers 411 are spaced
by a selected distance L and provide a good electrical connection between the production
string 401 and the casing 403.
[0037] The portion 401a of the production string 401 between the spaced pair of packers
411 is provided with an insulating coating 409. The coating 409 helps to ensure that
there is no conduction path or at least only a very poor conduction path between the
string 401 and casing 403 at all points between the packers 411.
[0038] An external unit 413 comprising receiving means (not shown) and a toroid 415 is provided
outside of the casing 403 at a position which is between the pair of spaced packers
411. The toroid 415 surrounds the casing 403 and is arranged to act as an inductive
coupling means such that any net magnetic flux flowing through the toroid generates
a signal which can be detected by the receiving means (not shown).
[0039] The system is arranged to be used to transmit signals from the internal unit 408
to the external unit 413 by the mechanism described below.
[0040] The insulated portion of the production string 401a, a corresponding portion of the
casing 403a, and the pair of conductive packers 411 form a current loop path around
which current may flow. However, the loop is imperfect such that there are other current
flow paths and losses will occur. There can be considered to be a leakage loop via
earth which accounts for the losses.
[0041] The current flow, at an arbitrary instant, around the current loop path as well as
along the leakage paths is shown by arrows in Figure 8. I
s represents the current flowing through the insulated portion 401a of production string
401, I
c represents the current flowing in the corresponding portion of the casing 403a and
I
e represents the leakage current to earth.
[0042] At the particular instant represented by the arrows in Figure 8, current I
s flows up the production string 401 away from the isolation joint 407, a portion of
the current passes through the conductive packer 411 to the casing 403 but a further
portion of the current continues up the string with subsequent losses to earth. At
the casing 403 the path splits again and a proportion of the current I
c continues around the current loop path while the remainder travels along the casing
403 away from the current loop path and contributes to the leakage to earth. At the
lower end of the insulated portion of the string 401a, current from the casing I
c returns to the string 401 via the respective conductive packer 411 and leakage currents
from earth I
e join this flow back towards the isolation joint 407.
[0043] Figure 9 shows a simplified equivalent circuit for the current loop path and the
leakages to earth. The resistances of the portion of the production string 401a, the
corresponding portion of the casing 403a and earth are represented by a resistors
R
s,R
c,R
e respectively.
[0044] From the equivalent circuit and the above description, it can be seen that I
s = I
c + I
e. It follows that the current I
s flowing through the insulated portion of the production string 401a does not equal
the current I
c flowing through the corresponding portion of the casing 403a. This in turn means
that there is a net magnetic flux generated by the current flowing around the loop
path. The loop path is encircled by the toroid 415 and hence the toroid 415 is linked
by the net flux. Therefore, as current flows around the loop, the existence of, and
variations in, that current may be detected by monitoring signals generated in the
toroid 415.
[0045] It therefore becomes possible to communicate between the internal and external units
408,413 by injecting appropriate signals onto the production string 401 and monitoring
the signals generated in the toroid 415.
[0046] For this technique to work it is important that not all of the current I
s which is injected into the production string 401 continues around the current loop.
That is to say, significant and appropriate leakages to earth and/or away from the
current loop must be provided for. In practice such leakages will tend to occur because
of the existence of the remainder of the metallic structure of the well and because
the casing 403 will be in contact with earth or another conductive medium, such as
sea water.
[0047] The level of signal obtained in the toroid 415 can be adjusted by making appropriate
design choices. For example, the position of the toroid along the insulated portion
of the string 401a and the position of the isolation joint 407 may be selected. Further,
the spacing L between the conductive packers 411 may be changed, as may the length
of the insulated portion of the production string 401a. The aim is to maximise the
receivable signal by increasing the resistance of the casing loop R
c relative to the leakage resistance R
e as far as is practicable. In the first instance this may be achieved by increasing
the spacing between the conductive packers. Theoretically there will come a point
where spacing between the packers is electrically optimised, since increased spacing,
at some stage, will begin to significantly increase the resistance of the leakage
path R
e. Generally however, other practical considerations will prevent this electrical optimised
spacing being reached. The exact nature and conductive properties of the packers 411
may also be selected to vary performance.
[0048] Although the position of the toroid along the current loop path/insulated portion
401a is not crucial, the best results are likely to be achieved towards a central
position to balance signals generated during positive and negative going cycles and
avoid any undesirable edge effects.
[0049] It will be noted that this system does not require insulation between the production
string 401 and the casing 403 along the whole of the well's length, it is merely preferable
along the length chosen to give the necessary transmitting characteristics.
[0050] Although this technique has been described with reference to a cased portion of a
well, it will be appreciated that the technique is equally appropriate for other situations
where it is desired to signal from within a conductive member which surrounds the
transmitter. For example, the system can be used to signal from within the casing
of flow lines other than production strings and from within flow lines themselves
providing that a suitable inner conductor is provided.
[0051] In a particular case this system can be used with apparatus along the lines of that
shown in and described with reference to Figure 7. That is to say the current loop
path may be formed by a portion of a flow line 1, two pigs 301 and an interconnecting
conductive strop 302. If a toroid is then provided around the flow line 1 it will
be possible to pick-up signals generated by the transmitting means 8a located in the
pig 301 as it passes through the region of the toroid.
[0052] It can be noted that this system makes use of the same phenomenon as described above
with reference to the first and second systems. However, in the present system it
is the effects which occur in the current loop path itself which are used rather than
the current which leaks away from the current loop path along the production string
and casing 1,3.
[0053] It should also be noted that the implementation of the present system will, at least
in some circumstances, be compatible with the previously described systems. Thus systems
may be provided in which signalling along the metallic structure to a remote location
and signalling from within the casing to adjacent equipment outside of the casing
is possible.
[0054] Although not shown in the drawings, the casing 3 of a well is typically made up of
screwed together sections. In alternative implementations, some or all of the joints
between the casing sections may be treated so as to cause a level of discontinuity
in conductivity of the casing. This can typically be achieved by coating the mating
surfaces at each joint with an isolating medium which does not prejudice the sealing
requirements for the casing.
[0055] Introducing such discontinuities can significantly change the electrical characteristics
of the well as a whole. At least in some circumstances this may lead to improved performance
of the relevant systems described above. For example the range of transmission systems
shown in Figures 1 and 2 may be improved. Improvements can be achieved whether the
discontinuities are provided in the region of the current loop path, i.e. between
the spaced connections or away from that region. The tendency is to force more of
the signal into the string rather than the casing and to increase the proportion of
the signal which travels away from the region of the loop.
[0056] In the case of the system shown in figure 8, the inclusion of an isolation medium
between sections of the casing in the region between the spaced connections particularly
aids performance as it reduces the screening effect of the casing. Looked at another
way, it tends to increase the impedance of the string-casing loop and thus increase
the difference between the current flowing in the string I
s and in the casing I
c.
[0057] It should be noted that, although as mentioned above, the present systems may function
better if discontinuities exist between mating sections of casing this is not a requirement
for operation. Thus the system may be such that the casing is substantially electrically
continuous along its whole length or at least in the region of the loop. This is true
for the casing of a well and the casing of any other pipeline as well for as any corresponding
surrounding outer member such as the string in the system shown in figure 7.
[0058] Figure 10 shows a pipeline system embodying the present invention. In particular,
Figure 10 shows two adjacent wells 501, 502. In this case a first of the wells 501
is being studied, whereas a second of the wells 502 is merely acting as part of an
earth return circuit.
[0059] A deployment member 503 comprising a length of coiled tubing is disposed within the
first well 501. In accordance with standard practice in the field of oil and gas wells,
this coiled tubing 503 is arranged to be movable relative to the casing C of the well
501. Therefore, the tubing 503 and anything supported on it may be moved up and down
the length of the well 501.
[0060] The end of the coiled tubing 503 is provided with a conductive centraliser 504 which
both serves to keep that end of the coiled tubing 503 away from the casing and to
provide electrical contact between the coiled tubing 503 and the casing C.
[0061] A local unit 505 is supported on the coiled tubing 503 in a region near the conductive
centraliser 504. The local unit 505 comprises transmitting and receiving means 506
and a toroid 507 provided around the coiled tubing 503. These components are arranged
so that signals may be transmitted from, and received at, the local unit 505 via the
coiled tubing 503.
[0062] The metallic structure, including the respective casings C of the first and second
wells 501, .502 is connected via a cable 508. A surface unit 509 is provided adjacent
the cable 508 and comprises transmitting and receiving means 510 and a toroid 511
disposed around the cable 508.
[0063] In operation, the embodiment of the present invention functions in a way similar
to the systems described above with reference to figures 1 to 7. In particular, the
mechanisms described above allow the transmission of signals to and from the local
unit 505 which is disposed in casing C.
[0064] It should be noted that although the coiled tubing 503 is shown to be displaced from
the casing C along its length, in practice it will make glancing contact with the
casing at a number of locations between the local unit 505 and the surface. On the
other hand the conductive centraliser 504 ensures that there is a selected minimum
spacing (in this embodiment the selected minimum spacing may be as little as 10 metres)
between the connection provided by the centraliser 504 and the glancing connection
nearest to the local unit 505. Thus current flow behaviour substantially the same
as that described with reference to Figures 1 to 7 will occur allowing the local unit
505 to both inject signals onto the coiled tubing 503 and extract signals from the
coiled tubing 503.
[0065] It will be appreciated that away from the region of the local unit 505 the coiled
tubing 503 and casing C will essentially act as a single conductor and that the coiled
tubing is a relatively good electrical conductor and typically metallic.
[0066] In the arrangement shown in Figure 10, the adjacent well 502 provides a convenient
earthing point to allow completion of the signal circuit, but it will be appreciated
that it is not essential to use a second well to provide the earth connection.
[0067] The present embodiment facilitates the extraction of data from various positions
within a well 501. Although not shown in detail, the local unit 505 will generally
comprise a number of sensors for measuring parameters such as pressure and temperature.
The system allows the results of such measurements to be encoded onto signals which
are transmitted away from the local unit 505 and received at the surface unit 509.
It will be immediately apparent that as more coiled tubing 503 is fed into the well
501, the local unit 505 will traverse down the well 501 and measurements may be made
and output from each location through which the local unit 505 passes. The system
is such that signalling may be achieved whilst the local unit is on the move and/or
when the local unit is stationary.
[0068] Although this embodiment has been described with particular reference to the use
of coiled tubing within a cased section of a well it will be appreciated that the
system may also be used in other situations where there is a conductive elongate deployment
means which is arranged to move within and relative to a surrounding conductive member.
[0069] In this application the phrase conductive centraliser should be construed broadly
to include any electrically conductive device which serves to keep the inner conductive
portion away from the surrounding conductive portion.