Field of the Invention
[0001] The present invention relates to monitoring the operation of a subsea hydrocarbon
production control system.
Background of the Invention
[0002] A shutdown philosophy is employed in the design of production control systems for
subsea oil and gas wells, to ensure the protection of personnel, environment and equipment
from the consequences that may occur as a result of abnormal operational conditions,
accidental release of hydrocarbons or other accidents. This usually entails the inclusion
of production shutdown and emergency shutdown mechanisms being built into the system,
so that the system fails to a safe condition.
[0003] In this respect it is important that the status of all subsea valves and their actuators,
which form part of the production control system, are known at all times but, more
essentially, after a fail-safe shutdown has occurred. However, situations can arise
where this information is not available and where this knowledge is critical for eliminating
the problem (such as oil spilling out of a well or pipeline). Recent events in the
Gulf of Mexico have demonstrated this need.
[0004] Examples of fail-safe shutdowns resulting from subsea failures, where relevant status
information cannot be obtained using the existing system functionality, are those
which occur between a well Christmas tree and the power distribution and protection
module (PDPM) which is installed subsea and is the main subsea interface with Christmas
trees providing electrical power, hydraulic power and communications to each Christmas
tree. Such failures include:
failure in communications between a Christmas tree and the PDPM;
failure of the power line between a Christmas tree and PDPM;
failure in the hydraulic line between a Christmas tree and the PDPM; and
a combination of the above three failures.
[0005] Other situations are possible. A failure in any of these links will result in no
information being available topside on valve status.
[0006] In all these situations, flow control valves and protective valves go into a fail-safe
condition, but there is no means of verifying the actual status of the valves because
communication is not possible between the Christmas tree concerned and the PDPM. A
means of overcoming this would significantly improve the functional safety of hydrocarbon
production control systems.
[0007] As prior art, there may be mentioned
WO 2009/122168; the Internet article "
To the last drop", pages 63-66, XP002532134 (www.abb.com/abbreview);
WO 2005/078233;
US 2006/0159524 A1;
US 2003/0098799 A1;
US 2004/0124994 A1;
US-A-6 798 338;
GB-A-2 377 131;
WO 2006/134331;
GB-A-2 163 029; and
Ram Somaraju, et al, "Frequency, Temperature and Salinity Variation of the Permittivity
of Seawater", Vol. 54, No. 11, November 2006, IEEE Transactions on Antennas and Propagation,
IEEEE Service Center, Piscataway, NJ, US, pages 3441-3448, XP011150333 ISSN: 0018-926X.
Summary of the Invention
[0008] According to the present invention from one aspect, there is provided a method of
monitoring the operation of a subsea hydrocarbon production control system, the method
comprising monitoring at least one subsea device of the system and, if the device
fails to a fail-safe condition, sending an indication of that by wireless.
[0009] According to the present invention from another aspect, there is provided a subsea
hydrocarbon production control system, comprising means for monitoring at least one
subsea device of the system and means for, if the device fails to a fail-safe condition,
sending an indication of that by wireless.
[0010] Typically, said indication is sent to a fail-safe monitoring unit, which could be
a subsea unit.
[0011] Typically, such a subsea unit is in a subsea power distribution and protection module.
[0012] Typically, the at least one device comprises at least one of a valve and an actuating
mechanism for a valve.
[0013] The indication could be sent from fail-safe monitoring means at a tree of the system
with which the device is associated. Typically, the system has at least one further
such tree from which, if a device associated with it, fails to a fail-safe condition,
an indication to that effect is sent by wireless from fail-safe monitoring means of
the further tree.
[0014] An embodiment of the invention to be described below entails including a separate,
independent, dedicated, health monitoring module on a Christmas tree, for monitoring
the status of all actuators and valves installed on the Christmas tree and wellhead.
The system has its own dedicated subsea wireless communication link capable of communicating
information to a wireless receiving system on the PDPM and on other Christmas trees.
Thus, in the event of failure of the normal communication links, the wireless channel
is available. The module is provided with its own battery back-up to provide power
in the event of power supply failure. The module sits alongside the normal process
and control equipment in the Christmas tree mounted subsea control module (SCM) and
can also be used to enhance the fail-safe decision making process in the SCM, by providing
additional confirmation of the state of actuators and valves. If a shutdown should
occur, but an indication that a device has gone to a fail-safe condition is not received,
then this is an indication of a problem.
[0015] The module can also form part of the normal decision making process by adding some
intelligence to process the critical data which is related to a fail-safe condition.
[0016] Addition of the module also adds redundancy to the system.
Brief Description of the Drawings
[0017]
Fig. 1 is a schematic diagram of an embodiment of the invention; and
Fig. 2 is a block diagram of a modification which can be made to Fig. 1.
Description of Embodiments of the Invention.
[0018] Fig. 1 illustrates an implementation of the invention. In a conventional production
control system, a master control station (MCS) 1, installed topside, provides the
operator interface with subsea equipment and displays the current state of the various
equipments and sensor information, enabling the operator to control the system. The
MCS 1 collates data such as the operational state of all subsea valves and data relating
to the state of production fluids across an entire oilfield. The MCS 1 interfaces
with the subsea installed power distribution and protection module (PDPM) 2 which
feeds electric power on lines 3, hydraulic power on lines 4, and communication on
a line 5 to a plurality of Christmas trees 6, only two (A and B) being shown.
[0019] Each Christmas tree 6 includes a subsea control module (SCM) 7 which controls all
the Christmas tree processes by providing hydraulic power to actuate valves mounted
on the Christmas tree and at the wellhead. It also receives process instrumentation
signals from sensors mounted on the Christmas tree and at the wellhead. These are
received and processed in a subsea electronics module (SEM) 8 housed within the SCM
7 and communicated via the system communication link to the PDPM 2, and then topside.
Failure of the communications link between a Christmas tree 6 and the PDPM 2 will
result in no valve and other status data being available from that tree.
[0020] In accordance with the embodiment of the invention, a dedicated fail-safe monitoring
module 9 is at each tree 6, which module provides data on the health of the valves,
as well as their actuating mechanisms. The module 9 includes its own interfacing,
signal conditioning and processing and have its own dedicated sensors. A back-up battery
10 is built-in so that the module can still operate in the event of electrical power
failure. Health monitoring of the module 9 would form part of the normal equipment
condition monitoring checks and the battery would be kept charged from the normal
power supplies.
[0021] The production control system is provided with its own subsea wireless communication
arrangement to communicate with the PDPM 2, so that in the event of a normal communication
channel failure (copper wire, communications-on-power or fibre-optic) it has an alternative
independent communication link. More particularly, at each tree 6, there is an RF
antenna 11 for sending data to an RF antenna 12 at the PDPM 2 and thence to a fail-safe
monitoring unit 13 in the PDPM 2. Thus, each Christmas tree 6 in the overall production
well complex has its own SCM 7 and failsafe monitoring module 9 with a subsea wireless
link 14. This enables individual Christmas trees to communicate with the PDPM and
each other, providing alternative routes for valve and other status information to
reach topside.
[0022] Fig. 2 illustrates an example of a configuration in which the fail-safe monitoring
module 9 with its fail-safe monitoring (FSM) dedicated sensor package 15 is used in
conjunction with the SEM 8 and its sensor package 16. When the sensor signals feeding
the SEM 8 result in it triggering the fail-safe mechanism, a check can be made against
the output from the fail-safe monitoring module 9 to see if this has also triggered
a fail-safe mechanism as a result of the data from its dedicated sensor package. A
fail-safe mechanism gets executed if either or both the SEM and the fail-safe monitoring
system takes the decision to trigger a fail-safe mechanism. This also adds redundancy
to the system.
Advantages of using the Invention
[0023] The invention can utilise a wireless communication system between topside and subsurface
equipment that forms part of the latest hydrocarbon production control system.
[0024] There is no need to rely on hardwired communication systems using communications-on-power
techniques or separate wired communication cables. The availability of subsea status
information can provide immediate confirmation of a fail-safe situation and enable
a rapid response to be achieved to a developing situation.
[0025] A rapid response to dangerous situations can save lives, significantly reduce environmental
pollution and thereby reduce the cost of rectifying situations which arise.
1. A method of monitoring the operation of a subsea hydrocarbon production control system,
the method comprising monitoring at least one subsea device of the system and, if
the device fails to a fail-safe condition, sending an indication of that by wireless.
2. A method according to claim 1, wherein said indication is sent to a fail-safe monitoring
unit.
3. A method according to claim 2, wherein said unit is a subsea unit.
4. A method according to claim 3, wherein said subsea unit is in a subsea power distribution
and protection module.
5. A method according to any preceding claim, wherein the at least one device comprises
at least one of a valve and an actuating mechanism for a valve.
6. A method according to any preceding claim, wherein the indication is sent from fail-safe
monitoring means at a tree of the system with which the device is associated.
7. A method according to claim 6, wherein the system has at least one further such tree
from which, if a device associated with it, fails to a fail-safe condition, an indication
to that effect is sent by wireless from fail-safe monitoring means of the further
tree.
8. A subsea hydrocarbon production control system, comprising means for monitoring at
least one subsea device of the system and means for, if the device fails to a fail-safe
condition, sending an indication of that by wireless.
9. A system according to claim 8, wherein, in use of the system, said indication is sent
to a fail-safe monitoring unit of the system.
10. A system according to claim 9, wherein said unit is a subsea unit.
11. A system according to claim 10, wherein said subsea unit is in a subsea power distribution
and protection module.
12. A system according to any of claims 8 to 11, wherein the at least one device comprises
at least one of a valve or an actuating mechanism for a valve.
13. A system according to any of claims 9 to 12, wherein, in use of the system, the indication
is sent from fail-safe monitoring means at a tree of the system with which the device
is associated.
14. A system according to claim 13, wherein the system has at least one further such tree
from which, if a device associated with it, fails to a fail-safe condition, an indication
to that effect is sent by wireless from fail-safe monitoring means of the further
tree.