Field of the invention
[0001] The present invention relates to a downhole completion device configured to be mounted
as part of a well tubular metal structure. Furthermore, the invention relates to a
downhole completion system.
Background art
[0002] When having electrical components downhole, such as a pressure or temperature sensor,
the sensor is subjected to both high temperature and high pressure. The sensor is
often comprised in a housing, but when the temperature in the well increases, the
pressure in the housing also increases, which jeopardises the functionality of the
sensor.
Summary of the invention
[0003] 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
downhole completion device which is able to house and protect an electrical component
to prevent its functionality from deteriorating.
[0004] 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 completion device configured
to be mounted as part of a well tubular metal structure, comprising:
- a metal housing enclosing a closed space,
- an electrical component arranged in the space inside the housing, the housing being
filled with a liquid having a first volume of 1 bar at 20°C,
wherein the metal housing has a first housing section and a second housing section,
the first housing section having a first thickness and the second housing section
having a second thickness, and the second thickness being smaller than the first thickness
so that the second housing section is more flexible than the first housing section.
[0005] In this way, the electrical component is protected from any temperature and pressure
changes that naturally occur downhole in a well during production, fracturing, aciding,
gas lifting or other activities taking place downhole during the service life of a
well.
[0006] The second housing section may be made of a non-metallic material.
[0007] Furthermore, the electrical component may be a sensor.
[0008] Also, the electrical component may be a piezoelectric element, a strain gauge, a
coil or an anemometer.
[0009] Moreover, the second thickness may be less than 50% of the first thickness.
[0010] In addition, the second thickness may be less than 33% of the first thickness, preferably
less than 25%.
[0011] Further, the housing may have an outer face and the outer face may be provided with
a thread.
[0012] Additionally, the liquid may be silicone, grease or any liquid suitable for electrical
components.
[0013] Also, the housing may have a third housing section having a third thickness, the
third thickness being smaller than the first thickness.
[0014] Moreover, the second housing section may have a projected state in which the liquid
has a second volume being larger than the first volume, and a retracted state in which
the liquid has a third volume being smaller than the first volume.
[0015] The downhole completion device may further comprise a communication unit connected
with the electrical component.
[0016] In addition, the downhole completion device may further comprise a storage unit connected
with the electrical component.
[0017] Also, the downhole completion device may further comprise a power supply arranged
in the space.
[0018] Furthermore, the housing may comprise a filling nozzle.
[0019] The present invention furthermore relates to a downhole completion system comprising:
- a well tubular metal structure arranged in a borehole of a well, the well tubular
metal structure having a longitudinal axis and a wall, and
- a downhole completion device according to any of the preceding claims, mounted as
part of the well tubular metal structure.
[0020] The downhole completion device may be configured to be mounted in the well tubular
metal structure.
[0021] Furthermore, the downhole completion device may be configured to be mounted on an
outer face of the well tubular metal structure.
[0022] Also, the downhole completion device may be configured to be mounted on an inner
face of the well tubular metal structure.
[0023] Moreover, the housing of the downhole completion device and the outer face of the
well tubular metal structure may enclose the space.
[0024] In addition, the electrical component may abut the outer face of the well tubular
metal structure.
[0025] Further, the downhole completion device may have a longitudinal extension which is
perpendicular to the longitudinal axis and extends radially from the longitudinal
axis.
[0026] Additionally, the downhole completion device may extend through the wall of the well
tubular metal structure.
[0027] Furthermore, the downhole completion device may extend through the wall of the well
tubular metal structure in a sealing manner.
[0028] Moreover, the downhole completion device may at least partly project from the outer
face of the well tubular metal structure.
[0029] The downhole completion system may further comprise a downhole tool for communication
with the downhole completion device.
[0030] Finally, the well tubular metal structure may comprise one or more annular barriers,
each annular barrier comprising:
- a tubular metal part for mounting as part of the well tubular metal structure, the
tubular metal part having a first expansion opening and an outer face,
- an expandable metal sleeve surrounding the tubular metal part and having an inner
face facing the tubular metal part and an outer face facing a wall of the borehole,
each end of the expandable metal sleeve being connected with the tubular metal part,
and
- an annular space between the inner face of the expandable metal sleeve and the tubular
metal part, the expandable metal sleeve being configured to expand when pressurised
fluid is injected into the annular space through the first expansion opening.
Brief description of the drawings
[0031] 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 cross-sectional view of a downhole completion device mounted in a well
tubular metal structure,
Figs. 2 and 3 show the downhole completion device of Fig. 1 in a projected and a retracted
state, respectively,
Fig. 4 shows a cross-sectional view of another downhole completion device,
Fig. 5 shows a cross-sectional view of a downhole completion device mounted outside
the well tubular metal structure,
Fig. 6 shows a cross-sectional view of another downhole completion device mounted
outside the well tubular metal structure, and
Fig. 7 shows a cross-sectional view of a downhole completion system having an annular
barrier.
[0032] 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
[0033] Fig. 1 shows a downhole completion device 1 configured to be mounted as part of a
well tubular metal structure 2 in a borehole 30. The downhole completion device 1
comprises a metal housing 3 enclosing a closed space 4 and an electrical component
5, such as a coil 32, arranged in the space inside the metal housing. The metal housing
3 is filled with a liquid 41 having a first volume V
1 of 1 bar at 20°C. The metal housing 3 has a first housing section 6 and second housing
section 7. The first housing section 6 has a first thickness t
1 and the second housing section 7 has a second thickness t
2, and the second thickness is smaller than the first thickness so that the second
housing section is more flexible than the first housing section. When the temperature
in the well increases, the pressure inside the closed space 4 increases accordingly.
This causes the second housing section 7 to bulge radially outwards into the inside
of the well tubular metal structure 2, as shown in Fig. 2, to a projected state of
the second housing section in which the liquid 41 has a second volume V
2 which is larger than the first volume. When the pressure decreases, the second housing
section 7 bulges radially inwards to a retracted state in which the liquid 41 has
a third volume V
3 which is smaller than the first volume, as shown in Fig. 3. The electrical component
is hereby protected from any temperature and pressure changes that naturally occur
downhole in a well during production, fracturing, aciding, gas lifting or other activities
taking place downhole during the service life of a well.
[0034] Known sensors are filled with gas, such as air, and during insertion of the well
tubular metal structure, the sensors are exposed to a lot of bumps, and often, the
sensors no longer work when the well is completed because they could not withstand
these bumps. By the present invention, the liquid inside the downhole completion device
1 surrounds the electrical component and thereby protects the electronics from these
bumps during installation of the well tubular metal structure since the liquid fills
out the space and has a substantially dampening effect when such bumps and shakings
occur.
[0035] The second housing section 7 may be made of metal or a non-metallic material. The
second housing section 7 is in Figs. 1-3 a separate part fastened to the first housing
section 6, and in Fig. 4, the second housing section 7 is made as a thinner part of
the metal housing 3 and not as a separate part. In Fig. 4, the second thickness is
less than 50% of the first thickness, and the second housing section 7 is made of
the same material as the first housing section 6. The downhole completion device 1
extends through a wall of the well tubular metal structure 2 and partly projects from
the outer face 28 of the well tubular metal structure 2. The downhole completion device
1 has a longitudinal extension 15 being perpendicular to a longitudinal axis 12 and
extends radially from the longitudinal axis. Furthermore, the electrical component
5 is a sensor, such as an anemometer having a hot wire 17, extending from the metal
housing 3 into the borehole 30 and is thus in connection with the well fluid. The
metal housing 3 has an outer face 8, and the outer face is provided with a thread
9. The metal housing 3 comprises a filling nozzle 19 or filling plug for filling the
space 4 with liquid, such as silicone, grease or a similar liquid suitable for electrical
components.
[0036] In Fig. 5, the electrical component 5 is a piezoelectric element 29 which also functions
as a communication unit 18. The downhole completion device 1 further comprises an
energy harvesting unit 22 functioning as a power supply 10 for supplying power to
the electrical component 5. The downhole completion device 1 further comprises a control
unit 23 having a storage unit 24 for storing data, e.g. from a sensor 25 arranged
outside the downhole completion device 1, or for controlling the communication from
the communication unit 18. Thus, the electrical component 5 may be connected with
the communication unit 18, the energy harvesting unit 22, the power supply 10, the
control unit 23 or the storage unit 24. The energy harvesting unit 22 may obtain energy
from a downhole tool 16, and the downhole tool 16 may also communicate with the downhole
completion device 1.
[0037] In Fig. 6, the electrical component 5 is a sensor having access via a line 27 to
measure a condition, such as temperature or pressure, of the well fluid in the borehole
30. The electrical component 5 may also be a strain gauge.
[0038] In Fig. 5, a downhole completion system 100 is shown comprising a well tubular metal
structure 2 arranged in a borehole 30 of a well 20. The well tubular metal structure
2 has a longitudinal axis 12 and a wall 21. The downhole completion system 100 further
comprises a downhole completion device 1 mounted as part of the well tubular metal
structure 2 on an outer face 28 of the well tubular metal structure. The downhole
completion device 1 may also be mounted on an inner face 14 of the well tubular metal
structure 2. In Figs. 5 and 6, the metal housing 3 of the downhole completion device
1 and the outer face 8 of the well tubular metal structure 2 enclose the space. In
this way, the electrical component 5 being the piezoelectric element 29 abuts and
has direct contact to the outer face 8 of the well tubular metal structure 2 in order
to communicate and/or harvest energy.
[0039] In Fig. 7, the well tubular metal structure 2 of the downhole completion system 100
comprises an annular barrier 50. The annular barrier 50 comprises a tubular metal
part 51 for mounting as part of the well tubular metal structure 2. The tubular metal
part 51 has a first expansion opening 52 and an outer face 53. The annular barrier
50 further comprises an expandable metal sleeve 54 surrounding the tubular metal part
51 and having an inner face 55 facing the tubular metal part and an outer face 56
facing a wall of the borehole 30. Each end 57 of the expandable metal sleeve 54 is
connected with the tubular metal part 51, thereby defining an annular space 58 between
the inner face 55 of the expandable metal sleeve and the tubular metal part. The expandable
metal sleeve 54 is expanded by letting pressurised fluid into the annular space through
the first expansion opening 52 and further through an expansion unit 59. A strain
gauge 47 is mounted on the expandable metal sleeve 54 and is electrically connected
with the electrical component 5 inside the space 4 for measuring the expansion of
the expandable metal sleeve of the annular barrier 50. The downhole completion device
1 further comprises a power supply 10 for powering the electrical component 5.
[0040] 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.
[0041] By a casing or well tubular metal structure is meant any kind of pipe, tubing, tubular,
liner, string etc. used downhole in relation to oil or natural gas production.
[0042] In the event that the tool is not submergible all the way into the casing, a downhole
tractor can be used to push the tool all the way into position in the well. The downhole
tractor may have projectable arms having wheels, wherein the wheels contact the inner
surface of the casing for propelling the tractor and the tool forward in the casing.
A downhole tractor is any kind of driving tool capable of pushing or pulling tools
in a well downhole, such as a Well Tractor®.
[0043] 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 completion device (1) configured to be mounted as part of a well tubular
metal structure (2), comprising:
- a metal housing (3) enclosing a closed space (4),
- an electrical component (5) arranged in the space inside the metal housing, the
metal housing being filled with a liquid having a first volume (V1) of 1 bar at 20°C,
wherein the metal housing has a first housing section (6) and a second housing section
(7), the first housing section having a first thickness (t1) and the second housing section having a second thickness (t2), and the second thickness being smaller than the first thickness so that the second
housing section is more flexible than the first housing section.
2. A downhole completion device according to claim 1, wherein the second housing section
is made of a non-metallic material.
3. A downhole completion device according to any of the preceding claims, wherein the
electrical component is a sensor.
4. A downhole completion device according to any of the preceding claims, wherein the
metal housing has an outer face (8) and the outer face is provided with a thread (9).
5. A downhole completion device according to claim 4, wherein the liquid is silicone,
grease or any liquid suitable for electrical components.
6. A downhole completion device according to any of the preceding claims, wherein the
second housing section has a projected state in which the liquid has a second volume
(V2) being larger than the first volume, and a retracted state in which the liquid has
a third volume (V3) being smaller than the first volume.
7. A downhole completion device according to any of the preceding claims, further comprising
a communication unit (9) connected with the electrical component.
8. A downhole completion device according to any of the preceding claims, further comprising
a power supply (10) arranged in the space.
9. A downhole completion system comprising:
- a well tubular metal structure (2) arranged in a borehole (30) of a well (20), the
well tubular metal structure having a longitudinal axis (12) and a wall (21), and
- a downhole completion device (1) according to any of the preceding claims, mounted
as part of the well tubular metal structure.
10. A downhole completion system according to claim 9, wherein the downhole completion
device is configured to be mounted in the well tubular metal structure.
11. A downhole completion system according to claim 9, wherein the downhole completion
device is configured to be mounted on an outer face (28) of the well tubular metal
structure.
12. A downhole completion system according to claim 11, wherein the metal housing of the
downhole completion device and the outer face of the well tubular metal structure
enclose the space.
13. A downhole completion system according to claim 10, wherein the downhole completion
device extends through the wall of the well tubular metal structure.
14. A downhole completion system according to any of claims 9-13, wherein the downhole
completion device at least partly projects from the outer face of the well tubular
metal structure.
15. A downhole completion system according to any of claims 9-14, further comprising a
downhole tool (16) for communication with the downhole completion device.