Subsea pumping and booster system
View Patent ↗A subsea pumping and booster system. The system comprises a pumping unit including two electric submersible pumps (ESPs) that are electrically connected by a parallel electrical connection having a first branch and a second branch extending to a respective one of the ESPs. The branches each comprise temperature sensors. The temperature sensors can be used to determine the currents being drawn by each ESP to improve the health and efficiency monitoring of the system. A related method and floating production storage and offloading (FPSO) unit connected to the system is also described.
1 . A subsea pumping and booster system, comprising:
a pumping unit including two electric submersible pumps (ESPs) for receiving production fluid from a well and being operable to increase a pressure of the production fluid;
wherein the two ESPs are electrically connected by a parallel electrical connection, the parallel electrical connection comprising:
a splitter;
a first branch extending from the splitter to a first of the two ESPs; and,
a second branch extending from the splitter to a second of the two ESPs;
wherein the first branch comprises a first temperature sensor, and the second branch comprises a second temperature sensor; and
a processing unit configured to:
receive temperature data from the first and second temperature sensors of the two ESPs and a measure of a total electrical current supplied to the splitter during operation; and,
determine individual electrical currents being supplied to each of the first and second ESPs via the first and second branches, respectively, therefrom.
2 . The subsea pumping and booster system of claim 1 , wherein the first and second temperature sensors each comprise:
a thermally conductive tube surrounding and in thermal contact with the first and second branches, respectively; and,
a temperature sensing element attached to the thermally conductive tube.
3 . The subsea pumping and booster system of claim 1 , wherein the first and second temperature sensors each comprise a temperature sensing element connected directly to the first and second branches, respectively.
4 . The subsea pumping and booster system of claim 2 , wherein the temperature sensing element is a thermistor.
5 . The subsea pumping and booster system of claim 1 , further comprising a plurality of tubulars for directing flow from a first end to a second end of the pumping unit, wherein the two ESPs are positioned within the plurality of tubulars and are configured to increase the pressure of production fluid to direct it from the first end to the second end.
6 . The subsea pumping and booster system of claim 1 , further comprising a base unit, adapted to receive the pumping unit.
7 . The subsea pumping and booster system of claim 6 , wherein the base unit comprises a subsea connector for receiving a production line and directing production fluid toward the pumping unit.
8 . The subsea pumping and booster system of claim 7 , wherein the base unit comprises an isolation valve to block flow of production fluid to the subsea connector.
9 . The subsea pump and booster system of claim 1 , wherein the processing unit includes:
a memory for storing the temperature data from the first and second temperature sensors and the total electrical current value and having instructions saved therein for determining the individual currents being supplied to each of the first and second ESPs using the temperature data and the total electrical current value; and,
a processor for carrying out the instructions.
10 . The subsea pump and booster system of claim 1 , further comprising an ESP controller electrically connected to the splitter by an umbilical and operable to supply the total electrical current to the splitter that is split between the first and second branches to control the two ESPs.
11 . A floating production storage and offloading (FPSO) unit connected to the subsea pump and booster system of claim 10 , wherein the umbilical extends from the FPSO unit to the subsea pump and booster system, the ESP controller is positioned on the FPSO unit and is a variable speed drive (VSD) for controlling the speed of the two ESPs; and,
a riser extends from the FPSO unit and is connected to the subsea pump and booster system, and production fluid is communicated to the FPSO from the subsea pump and booster system via the riser.
12 . A method of determining individual currents being supplied to two ESPs in a subsea pumping and booster system, wherein the two electric submersible pumps (ESPs) are electrically connected by a parallel electrical connection comprising a splitter, a first branch extending from the splitter to a first of the two ESPs, and a second branch extending from the splitter to a second of the two ESPs, the method comprising:
determining a first temperature (T 1 ) of the first branch;
determining a second temperature (T 2 ) of the second branch;
determining a total electrical current (I total ) supplied to the splitter;
calculating a first current (I 1 ) being supplied to the first of the two ESPs via the first branch; and,
calculating a second current (I 2 ) being supplied to the second of the two ESPs via the second branch.
13 . The method of claim 12 , wherein the calculating of the first and second current (I 1 , I 2 ) is achieved by solving the following three simultaneous equations i)-iii):
I
total
=
I
1
+
I
2
i
)
T
1
=
T
a
+
b
(
I
1
)
2
ii
)
T
2
=
T
a
+
b
(
I
2
)
2
iii
)
where T a is the ambient temperature around the branch being measured and b is the heat transfer coefficient of the branch being measured.
14 . The subsea pump and booster system of claim 9 , wherein the instructions stored in the memory are to carry out a method of determining individual currents being supplied to two ESPs in a subsea pumping and booster system, wherein the two ESPs are electrically connected by a parallel electrical connection comprising a splitter, a first branch extending from the splitter to a first of the two ESPs, and a second branch extending from the splitter to a second of the two ESPs, the method comprising:
determining a first temperature (T 1 ) of the first branch;
determining a second temperature (T 2 ) of the second branch; determining a total electrical current (I total ) supplied to the splitter;
calculating a first current (I 1 ) being supplied to the first of the two ESPs via the first branch; and,
calculating a second current (I 2 ) being supplied to the second of the two ESPs via the second branch.