Electrically conductive contact element for an electric plug connector
11456092 ยท 2022-09-27
Assignee
Inventors
- Stefan Mayer (Waiblingen, DE)
- Martin Littek (Kernen, DE)
- Karl Friedrich Albrecht (Schorndorf, DE)
- Marcus Bihrer (Althengstett, DE)
- Andreas Zimmermann (Kernen, DE)
Cpc classification
B60L53/302
PERFORMING OPERATIONS; TRANSPORTING
Y02T10/7072
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B60L53/18
PERFORMING OPERATIONS; TRANSPORTING
Y02T10/70
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
H01R24/20
ELECTRICITY
B60L53/16
PERFORMING OPERATIONS; TRANSPORTING
Y02T90/12
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y02T90/14
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
H01R24/20
ELECTRICITY
B60L53/302
PERFORMING OPERATIONS; TRANSPORTING
B60L53/18
PERFORMING OPERATIONS; TRANSPORTING
B60L53/16
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The invention relates to an electrically conductive contact element (2) for an electric plug connector. The electrically conductive contact element (2) comprises a contact region (4) for making detachable electric contact with a mating contact element of a mating plug connector, and comprises a cable connecting region (6) for the connection of a cable. The contact element (2) comprises a cooling cavity (24), which opens into a distal opening (22) of the cable connecting region (6) which is arranged opposite the contact region (4).
Claims
1. An electrically conductive contact element for an electric plug connector with a cable connected to the electrically conductive contact element, comprising: a contact region for making detachable electric contact with a mating contact element of a mating plug connector; a cable connecting region for connecting the cable to the electrically conductive contact element; and a cooling cavity, wherein the cooling cavity opens into a distal opening of the cable connecting region arranged opposite the contact region, the cooling cavity extends into a contact pin of the contact region, and a distal opening of a radially inner tube of the cable is guided through the distal opening of the cable connecting region and arranged inside the cooling cavity.
2. The electrically conductive contact element according to claim 1, wherein the cable connecting region comprises a circumferential connecting section, the circumferential connecting section is proximally arranged with respect to the distal opening of the cable connecting region, and wherein an electrical conductor of the cable is in electrical and mechanical contact with the circumferential connecting section.
3. The electrically conductive contact element according to claim 1, wherein the cable connecting region comprises a sealing section, wherein a distal end of a tube of the cable surrounding the radially inner tube is arranged in a fluid-tight manner on the sealing section.
4. The electrically conductive contact element according to any of claim 1, wherein a main body comprises the contact region having a contact socket and wherein the cooling cavity extends into the main body.
5. The electrically conductive contact element according to claim 1, any of the preceding claims, wherein the cooling cavity is formed as a blind bore.
6. The electrically conductive contact element according to claim 1, any of the preceding claims, wherein a first volume within the radially inner tube forms a section of an inlet or return flow for the cooling fluid, and wherein a second volume between an outer wall of the tube and an inner wall of the cooling cavity forms a section of a return flow or inlet for the cooling fluid.
7. A charging station for electrically charging a motor vehicle, comprising: a stationary unit; the a plug connector having at least two electrically conductive contact elements, wherein each of the at least two electrically conductive contact elements comprises: a contact region for making detachable electric contact with a mating contact element of a mating plug connector; a cable connecting region for connecting a cable to the electrically conductive contact element and a cooling cavity, wherein the cooling cavity opens into a distal opening of the cable connecting region arranged opposite the contact region, the cooling cavity extends into a contact pin of the contact region, and a distal opening of a radially inner tube of the cable is guided through the distal opening of the cable connecting region and arranged inside the cooling cavity; and a charging cable arranged between the plug connector and the stationary unit and comprising at least two cables arranged on the at least two electrically conductive contact elements.
8. The charging station according to claim 7, wherein the cable connecting region comprises a circumferential connecting section, the circumferential connecting section is proximally arranged with respect to the distal opening of the cable connecting region, and an electrical conductor of the cable is in electrical and mechanical contact with the circumferential connecting section.
9. The charging station according to claim 7, wherein the cooling cavity is formed as a blind bore.
10. The charging station according to claim 7, wherein a first volume within the radially inner tube forms a section of an inlet or return flow for the cooling fluid, and a second volume between an outer wall of the tube and an inner wall of the cooling cavity forms a section of a return flow or inlet for the cooling fluid.
11. An electrically conductive contact element for an electric plug connector with a cable connected to the electrically conductive contact element, comprising: a contact region for making detachable electric contact with a mating contact element of a mating plug connector; a cable connecting region for connecting the cable to the electrically conductive contact element; and a cooling cavity, wherein the cooling cavity opens into a distal opening of the cable connecting region arranged opposite the contact region, the cable connecting region comprises a sealing section, wherein a distal end of a tube of the cable surrounding the radially inner tube is arranged in a fluid-tight manner on the sealing section, and a distal opening of a radially inner tube of the cable is guided through the distal opening of the cable connecting region and arranged inside the cooling cavity.
12. The electrically conductive contact element according to claim 11, wherein the cable connecting region comprises a circumferential connecting section, the circumferential connecting section is proximally arranged with respect to the distal opening of the cable connecting region, and an electrical conductor of the cable is in electrical and mechanical contact with the circumferential connecting section.
13. The electrically conductive contact element according to claim 11, wherein a main body comprises the contact region having a contact socket and the cooling cavity extends into the main body.
14. The electrically conductive contact element according to claim 11, wherein the cooling cavity extends into a contact pin of the contact region.
15. The electrically conductive contact element according to claim 11, wherein the cooling cavity is formed as a blind bore.
16. The electrically conductive contact element according to claim 11, wherein a first volume within the radially inner tube forms a section of an inlet or return flow for the cooling fluid, and a second volume between an outer wall of the tube and an inner wall of the cooling cavity forms a section of a return flow or inlet for the cooling fluid.
Description
(1) Further advantageous embodiments, features and advantages of the invention can be found in the following description of the drawing. For functionally equivalent features, the same reference signs are used in all figures, even in the case of different embodiments. Shown in the drawing are:
(2)
(3)
(4)
(5)
(6)
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(8) Between the contact region 4 and the cable connecting region 6, the contact element 2 comprises a fastening section 16 with a groove-shaped recess 18 running transversely to the longitudinal extent of the contact element 2, wherein the recess 18 is a groove for receiving an O-ring (not shown). By means of this O-ring, a seal is created between the insulating body and the contact element 2. In the region of the fastening section 16, the contact element 2 is held in the plug connector.
(9) The contact region 4 and the fastening section 16 are part of a main body 20. From the main body 20, the cable connecting region 6 projects substantially in the form of a hollow cylinder and ends in a distal opening 22. The distal opening 22 opens a cooling cavity 24, which extends into the main body 20 along a central longitudinal axis 26 of the contact element 2. The cooling cavity 24 is designed as a blind bore.
(10) Starting from the opening 22, a diameter extension 28 is provided on the circumferential side. The diameter extension 28 essentially has the shape of a lateral surface of a straight circular truncated cone, wherein the circular truncated cone tapers in the distal direction. A circumferential annular groove 30 proximally adjoins the diameter extension 28. The diameter extension 28 and the annular groove 30 form a circumferential distal sealing section 32. A circumferential connecting section 34 for making contact with an electrical conductor of the cable proximally adjoins the sealing section 32.
(11)
(12) A radially outer section of the cable end 35 comprising the second inner tube 44 and the electrical conductor 46 extends in the connection direction 50 outside of the opening 22 around the cable connecting region 6 of the contact element 2. Thus, the radially outer section of the cable end 35 surrounds the cable connecting region 6 of the contact element 2. At the sealing section 32, the second inner tube 44 is arranged in a fluid-tight manner toward its distal end 54.
(13) Toward its terminal 56, the electrical conductor 46 is arranged on the connecting section 34 by means of a cable clamp 58. The cable clamp 58 presses the cable braid of the electrical conductor 46 radially inward and thus establishes a secure electric contact between the electrical conductor 46 and the connecting section 34. Of course, instead of or in addition to the provisioning of the cable clamp 58, the electrical conductor 46 can be welded to the connecting section 34 in order to establish a material connection. A radially inner section of the cable end 35 comprises the first inner tube 40 and the spacing means 42. The radially inner section of the cable end 35 projects with its distal opening 60 into the cooling cavity 24. In particular, an opening of the first inner tube 40 projects in the proximal direction of the contact element 2 beyond the outer electrical connecting section 34 into the cooling cavity 24.
(14) A substantially cylindrical inner space of the first inner tube 40 forms an inlet 62 for a cooling fluid. The cooling fluid is preferably electrically insulating and may be a gas or a liquid. The cooling fluid is pumped into the inlet 62 according to an arrow 64. The spacing means 42 ensures, that a return flow 66 arranged radially outside of the inlet 62 remains open. According to an arrow 68, the cooling fluid supplied via the inlet 62 into the cooling cavity 24 is supplied into the return flow 66. The return flow 66 is formed in the cable 36 itself by a hollow cylindrical volume between an outer wall of the first tube 40 and an inner wall of the second tube 44. A reverse region 25 for the cooling fluid is defined by the blind hole end of the cooling cavity 24 and the distal opening 60. In the region of the cable connecting region 6, the return flow 66 is formed by a substantially hollow cylindrical volume between the outer wall of the first inner tube 40 and an inner wall of the cooling cavity 24 of the cable connecting region 6. In the region of the cable end 35, the cable 36 connected in this manner to the contact element 2 is surrounded by a shrink tube 49. Of course, the space outside the first tube 40 can also be used for an inlet of the cooling fluid and the inner space of the first tube 40 can also be used for a return flow of the cooling fluid.
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(18) The cable connecting region 86 is part of an electrically conductive connecting element 92. A base body 94 has a female thread in the region of the inner space 88. The connecting element 92 has a male thread which faces away from the cable 36 and can be screwed into the female thread of the base body 94 until contact is established. The connecting element 92 and/or the base body 94 is/are electrically conductively connected with a current clamp 96. The base body 94 is designed to be electrically conductive.
(19) The inlet 62 and the return flow 66 are each connected to the base body 94 in a fluid-tight manner with connecting elements 98 and 99 of electrically insulating design. The inlet 62 and the return flow 66 are connected to a cooling fluid pump (not shown).
(20)
(21) After a completed charging process of the energy storage 102, the plug connector 110 is detached from the mating plug connector 112.
(22) For example, a first power electronics 114 of the stationary unit 106 is connected to a public or private power grid and generates a direct current. The stationary unit 106 comprises two connecting devices 80A and 80B according to
(23) The stationary unit 106 further comprises the cooling fluid pump 126. The cooling fluid is pumped into the respective inlets 62A and 62B of the cables 36A, 36B via the connecting devices 80A and 80B. For this purpose, the cooling fluid pump 126 extracts the cooling fluid from the return flows 66A and 66B of the cables 36A, 36B. The cooling fluid is supplied into the contact elements 2A and 2B from where it returns to the stationary unit 106 via the respective return flows 66A, 66B.
(24)
(25) The connecting section 34 of the contact element 2 comprises two annular beads 134 and 136. Furthermore, an electrically conductive metal sleeve 138 is arranged in the cable connecting region 6 between the shrink tube 49 and the electrical conductor 46. In the region of the beads 134 and 136, the composite of electrical conductor 46 and metal sleeve 138 is crimped so as to project into beads 134 and 136. The shrink tube 24 insulates the electric contact in the region of the connecting section 34. This improves the mechanical stability of the connection between contact elements 2 and cable 36. Moreover, the metal sleeve 138 allows current flow between the electrical conductor 46 and the connecting section 34 to be circumferentially substantially the same, thereby reducing the risk of formation of isolated spots with a high input of thermal energy.
(26)