Embodiments of the present invention relate to monitoring a hydraulic fluid filter, in particular such a filter in an underwater (for example subsea) well control system.
In offshore hydrocarbon well control systems, the main equipment of a typical system configuration includes: a master control station, which provides the operator interface with subsea equipment and displays the current state of various subsurface equipment, subsea valves and sensor information enabling the operator to control the system; an umbilical cable, which connects the master control station to the equipment installed on the seabed and incorporates a communication link which carries control signals to the subsurface equipment and transfers information on the status of the subsurface equipment to the master control station; a subsea control module, which receives commands from the master control station and controls subsea processes, provides the hydraulic power to actuate valves and transmits status data on subsea equipment and sensor data to the master control station; a subsea electronics module, housed within the subsea control module and which typically is a microprocessor based electronics unit that houses a set of printed circuit boards, the functions of which include communication with the master control station (receiving control information from, and transmitting sensor data to, the master control station), interfacing with subsurface sensors and controlling valves and hydraulics; and a tree installed on the seabed, to which is fitted the subsurface electric and hydraulic equipment needed to control the flow of fluids from or to the well together with a sensor pack, to determine the state of the tree equipment, well head components and fluid flowing from or to the well.
Hydraulic fluid is supplied to a subsea control module in a redundant manner in order to provide power for operating the hydraulic valves located on subsea trees and manifolds.
In order to remove particulate matter from the fluid, the fluid is passed through filters. Pressure transducers are normally located downstream of the filters for monitoring the incoming pressure of the fluid, and then selector valves allow the operator to select which of the redundant supplies is used for valve operation. The selected fluid is then used as a common supply for operations within the subsea control module, and a pressure transducer is used to monitor this supply pressure.
With this configuration of transducers and filters, there is no method to monitor the health (contamination levels) and hence life of the filters.
If there is no method for assessing the contamination of such filters when a subsea control module is deployed and the subsea control module is operated until problems are experienced, if the filters become blocked, this could result in the well being shut in, and cause lack of hydrocarbon production for a period of time until the module can be recovered and a replacement installed.
According to an embodiment of the present invention, there is provided a hydraulic circuit for supplying hydraulic fluid to a subsea control module of a control system for an underwater hydrocarbon well, comprising: an input for hydraulic fluid; a filter connected to the input for filtering hydraulic fluid from the input; an output for supplying hydraulic fluid from the filter to the subsea control module; first sensing means for sensing pressure of hydraulic fluid from the input upstream of the filter; second sensing means for sensing pressure of hydraulic fluid downstream of the filter; and a subsea electronics module in the subsea control module, the subsea electronics module being coupled with the first and second sensing means and being adapted to produce an indication related to a hydraulic fluid pressure differential across the filter.
There could be at least one further such subsea electronics module in the subsea control module for redundancy purposes, the or each further subsea electronics module also being coupled with the first and second sensing means.
In an embodiment, the circuit includes: a further input for hydraulic fluid and a further filter, connected to the further input for filtering hydraulic fluid from the further input, the output being connected for use in supplying hydraulic fluid from the further filter to the subsea control module; means for selecting whether the output supplies hydraulic fluid to the subsea control module from the first or the further filter; and further such first sensing means, for sensing pressure of hydraulic fluid from the further input upstream of the further filter, the second sensing means sensing pressure of hydraulic fluid downstream of the further filter, the or each subsea electronics module being coupled with the further such first sensing means and being adapted to produce an indication related to a hydraulic fluid pressure differential across that one of the first and further filters which is supplying fluid to the output.
In this case, the first and further such first sensing means could comprise respective ones of transducers between the first and further filters and the first and further inputs.
The second sensing means could comprise a transducer between such selecting means and the output. Alternatively, the second sensing means could comprise respective ones of transducers between outputs of the first and further filters and such selecting means.
According to an embodiment of the present invention, there is provided a method of monitoring a filter in a hydraulic circuit for supplying hydraulic fluid to a subsea control module of a control system for an underwater hydrocarbon well, the circuit comprising: an input for hydraulic fluid; a filter connected to the input for filtering hydraulic fluid from the input; and an output for supplying hydraulic fluid from the filter to the subsea control module, wherein the method comprises: sensing pressure of hydraulic fluid from the input upstream of the filter; sensing pressure of hydraulic fluid downstream of the filter; and using software algorithms within a subsea electronics module in the subsea control module to produce an indication related to a hydraulic fluid pressure differential across the filter, the subsea electronics module being coupled with the first and second sensing means.
In an embodiment, the circuit includes a further input for hydraulic fluid and a further filter, connected to the further input for filtering hydraulic fluid from the further input, the output being connected for use in supplying hydraulic fluid from the further filter to the subsea control module, the method comprising: selecting whether the output supplies hydraulic fluid to the subsea control module from the first or the further filter; and sensing pressure of hydraulic fluid upstream of the filter supplying hydraulic fluid to the output and sensing pressure of hydraulic fluid downstream of the that filter, the subsea electronics module being adapted to produce an indication related to a hydraulic fluid pressure differential across that one of the first and further filters which is supplying hydraulic fluid to the output.
By evaluating the rate of change of differential pressure over time, predictive maintenance may be performed.
If the hydraulic circuit of
In
With the hydraulic circuit modified as per
Filter health monitoring using differential pressure sensing is known using a dedicated physical differential pressure sensor across the filter. However, this application uses normal pressure transducers which can exist in the circuit, and software algorithms in the subsea electronics module to implement an active monitoring system. The subsea electronics module software is configured to monitor the hydraulic pressure transducer 8 downstream of the shuttle valve and the hydraulic pressure transducer 10a or 10b upstream of the filter synchronously so that their digitised signals represent the pressures at the same point in time. By then subtracting the downstream pressure from the upstream pressure, a virtual differential pressure sensor is realised. As the differential pressure function is calculated through software, other calibration factors may be applied such as correcting for incoming supply pressure fluctuations.
As a filter becomes blocked, the differential pressure across it becomes higher. Since in use of the hydraulic circuit, flow is only sporadic (during and after valve operations), when the system is in steady state, no differential would exist, so the software within the subsea electronics module is configured to monitor the peak differential pressure during each active period. When the differential pressure exceeds a threshold during a period of fluid flow, an alarm can be raised, thus alerting the operator of a potential blockage within the filter.
It should be noted from
A further improvement of the hydraulic circuit (at the expense of additional pressure transducers) may be realised as shown in
This configuration allows absolute monitoring of the filters without the potential for differential pressure inaccuracy due to the other components in the flow path.
In each of the embodiments of
The or each further module 12 is coupled with transducers 8 and 10a and 10b in the case of
As the differential pressure that will be monitored is an analogue reading, over time a rate of change can therefore be determined. This rate of change can then be used to predict when maintenance and intervention may be required.
Embodiments of the present invention enable the contamination levels of the filters within a subsea control module to be assessed whilst the module is in operation, enables the operator to be alerted of contamination, and enables maintenance of the module to be scheduled
If a method of assessing the contamination level within the filters during operation can be implemented, then subsea control module operation may be optimised, or preventative maintenance planned thus alleviating unscheduled shutdowns and loss of production.
By adding little specific hardware into the subsea control module, a predictive method for identifying progressive contamination of hydraulic filters can be achieved.
This will allow enhanced subsea control module prognostics, and planning predictive replacement of such a module in the event of filter contamination.
This written description uses examples to disclose the invention, including the best mode, and also to enable any person skilled in the art to practice the invention, including making and using any devices or systems and performing any incorporated methods. The patentable scope of the invention is defined by the claims, and may include other examples that occur to those skilled in the art. Such other examples are intended to be within the scope of the claims if they have structural elements that do not differ from the literal language of the claims, or if they include equivalent structural elements with insubstantial differences from the literal languages of the claims.
Number | Date | Country | Kind |
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1311407.9 | Jun 2013 | GB | national |