High voltage subsea connection assembly
10833449 · 2020-11-10
Assignee
Inventors
Cpc classification
International classification
Abstract
High voltage, subsea connection assembly having a male part (101) comprising a male housing (103) with a liquid chamber (110), and a male housing aperture (107). A male pin (106) is positioned within the male housing aperture. A female part (1) has a female housing (5) with a liquid chamber (10) with a dielectric liquid, and a male pin receiving aperture (7). The male pin is axially movable into and out of the female housing (5). An aperture channel (8) has a rear section (12), the radial inwardly directed face of which together with an outer radial face of the male pin (106) defines a flushing gap (14) when the male pin (106) is positioned in the rear section (12). An exit channel (16) is arranged in the aperture channel, between the rear section, and the male pin receiving aperture or the male housing aperture.
Claims
1. A high voltage, subsea connection assembly having a male part comprising a male housing with a liquid chamber with a dielectric liquid, and a male housing aperture, wherein a male pin is supported in the male housing and positioned within the male housing aperture; a female part with a female housing with a liquid chamber with a dielectric liquid, and a male pin receiving aperture; wherein the male pin is axially movable into and out of the female housing through the male pin receiving aperture, between a non-inserted non-connected position and an inserted connected position, the female housing comprises an electric contact face which is configured to contact an electric contact face of the male pin when the male pin is in the inserted connected position, wherein the male pin receiving aperture or the male housing aperture constitutes a forward section of an axially extending aperture channel configured to encompass an axial section of the male pin; wherein the aperture channel has a rear section, the radial inwardly directed face of which together with an outer radial face of the male pin defines a flushing gap when the male pin is positioned in the rear section; and wherein at least one liquid exit channel is arranged in the aperture channel, in a position between the rear section, and the male pin receiving aperture or the male housing aperture, respectively.
2. The high voltage, subsea connection assembly according to claim 1, wherein the liquid exit channel constitutes the only liquid exit path out of the liquid chamber.
3. The high voltage, subsea connection assembly according to claim 1, wherein the electric contact face of the male pin is facing in an outwardly radial direction, and that the electric contact face in the female housing faces in an inwardly radial direction.
4. The high voltage, subsea connection assembly according to claim 1, wherein the female housing or the male housing is arranged within an outer housing, wherein the liquid exit channel communicates between a liquid receiving compartment and the liquid chamber, wherein the liquid receiving compartment is between the female housing or the male housing, and the outer housing.
5. The high voltage, subsea connection assembly according to claim 1, wherein: the female part comprises the flushing gap and that in the female part the electric contact face is arranged within the liquid chamber; the rear section of the aperture channel is arranged axially between the liquid exit channel and the electric contact face; and the liquid exit channel is arranged axially between the rear section and the male pin receiving aperture.
6. The high voltage, subsea connection assembly according to claim 1, wherein a distribution groove encircles the aperture channel in a position axially between the rear section and the male pin receiving aperture or the male housing aperture, respectively, and that a plurality of liquid exit channels communicate between the distribution groove and the outside of the female housing or the male housing, respectively.
Description
EXAMPLE OF EMBODIMENT
(1) While various aspects of the present invention have been discussed in general terms above, a non-limiting, detailed example of embodiment will be given in the following with reference to the drawings, in which
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(10) At the region of the aperture 7, the inner housing 5 is connected to the outer housing 3 via a flexible support arrangement 9. The flexible support arrangement 9 provides some flexibility of the orientation of the inner housing 5 with respect to the outer housing 3. Since the flexible support arrangement 9 is not significant to the invention disclosed herein, it will not be further discussed. The skilled person will appreciate that the invention is applicable also in embodiments without such a flexible support arrangement.
(11) In
(12) Reference is made to
(13) The male pin 106 has a front portion 108 with a front face 109. The front portion 108 is made of an electrically insulating material. Axially behind the front portion 108, the male pin 106 has a conduction portion 111 with radially outwardly facing electric contact face 113. Axially behind the electric contact face 113, the male pin 106 has an insulating stem portion 115 which extends axially backwards. The conduction portion 111 is electrically connected to a stem conductor 117 inside the insulating stem portion 115.
(14) When the male pin 106 is inserted into the female part 1 to a connected position, the electric contact face 113 of the male pin 106 is configured to contact an oppositely faced electric contact face 25 of the female part 1. This electric contact face 25 is shown in
(15) The female part 1 shown in
(16) Reference is now made to
(17) Before commencement of this axial insertion of the male pin 106, the male housing 103 has been aligned with the outer housing 3 and the inner housing 5 of the female part 1. Then, the male pin 106 has been moved in an axial direction, into the female part 1, during which movement, the front face 109 of the male pin 106 is in an abutting engagement with the front face 23 of the core sleeve 21.
(18) The male pin receiving aperture 7 constitutes the entrance of the male pin 106 into the inner housing 5.
(19) In the view shown in
(20) The liquid chamber 10 is filled with an electrically insulating liquid, such as oil. The skilled person will now appreciate that as the male pin 106 is inserted into the liquid chamber 10, the liquid must be displaced out of the liquid chamber 10. For this discussion, reference is made to the enlarged view of
(21) The male pin receiving aperture 7 constitutes an axially forward section of an aperture channel 8 which is configured to receive the male pin. Moreover, the aperture channel 8 also has a rear section 12. The rear section 12 is positioned axially closer to the main portion of the liquid chamber 10 than the male pin receiving aperture 7. The male pin receiving aperture 7 and the rear section 12 of the aperture channel 8 continuously encircles the male pin 106, when the latter is inserted. Although not appearing from
(22) As appears from
(23) Advantageously, a plurality of liquid exit channels 16 can be distributed in the aperture channel 8. This will contribute to an evenly distributed flow of the liquid over the electric contact face 113. In addition, the aperture channel 8 advantageously also has a recessed distribution groove 18 which connects to the one or more liquid exit channels 16. As shown in
(24) In the embodiment shown herein, the liquid displaced out from the liquid chamber 10, through the flushing gap 14 and the liquid exit channel or channels 16, will enter into liquid receiving compartment 20 defined between the inner housing 5 and the outer housing 3 of the female part 1. In order to receive the displaced liquid, the liquid receiving compartment 20 may further connect to an external, flexible liquid containment (not shown) which receives liquid from the liquid receiving compartment 20. Alternatively or in addition, a gas containing, compressible liquid container (not shown) may be arranged within the liquid receiving compartment 20.
(25) Instead of arranging the liquid receiving compartment 20 as a space between the inner housing 5 and the outer housing 3, one may instead arrange a liquid receiving component directly in communication with the outlets of the liquid exit channel or channels 16. In such manner, one may use only one housing, corresponding to the inner housing 5 in the shown embodiment. such a liquid receiving component may for instance be a compensator.
(26) When retracting the male pin 106, i.e. when decoupling the high voltage, subsea connection assembly, liquid from the liquid receiving compartment 20 may flow back into the liquid chamber 10 inside the inner housing 5.
(27)
(28) As the skilled person will appreciate, the present invention provides a means for flushing the surface of the electric contact face 113 of the male pin 106 clean immediately before contacting the opposite electric contact face 25 of the female part 1.
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(31) For simplicity, identical reference numbers as above are used on the aperture channel 8, the flushing gap 14, the recessed distribution groove 18, the rear section 12, and the liquid exit channel 16. The male housing aperture 107 corresponds to the male pin receiving aperture 7 of the discussed female housing 5 above. In the shown position, the male pin 106 is being retracted into the male housing 103. Within the male housing 103 there is a male liquid chamber 110. Hence, when the male pin 106 is retracted back into the male housing 103, it displaces the liquid in the male liquid chamber 110, which flushes the radially facing face of the male pin 106, cf. the inserted arrows in
(32) It is noted that the size of the flushing gap 14 indicated in