CHARGING CONNECTOR FOR ELECTRIC VEHICLE
20230054340 ยท 2023-02-23
Inventors
Cpc classification
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
H01R13/193
ELECTRICITY
H01R13/111
ELECTRICITY
H01R13/15
ELECTRICITY
B60L53/16
PERFORMING OPERATIONS; TRANSPORTING
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
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
International classification
B60L53/16
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A charging connector for an electrical vehicle has a connector base, a tubular first conductive terminal mounted in the connector base, an insulating isolation member mounted in the first conductive terminal, and a second conductive terminal mounted in a center of the isolation member and coaxially disposed in and electrically isolated from the first conductive terminal. The isolation member has at least one annular groove recessed in an upper surface of the isolation member, extending downwardly, and coaxially surrounding the second conductive terminal. A creepage distance between the first conductive terminal and the second conductive terminal is increased and a surface area for heat dissipation is increased to meet safety specifications.
Claims
1. A charging connector for an electric vehicle comprising: a connector base; a first conductive terminal mounted in the connector base via one of two ends of the first conductive terminal, extending out from the connector base via the other one of the two ends of the first conductive terminal, being tubular, and having an upper cavity; and a lower cavity formed in the first conductive terminal and having a recessed surface radially recessed in a cavity surface of the lower cavity to increase an internal diameter of the lower cavity; an isolation member being complementary in shape to the lower cavity and mounted in the lower cavity, the isolation member having at least one annular groove coaxially recessed in an upper surface of the isolation member and extending downwardly; and a second conductive terminal mounted in a center of the isolation member and coaxially disposed in and electrically isolated from the first conductive terminal, one of two ends of the second conductive terminal extending into the upper cavity of the first conductive terminal, and the other one of the two ends of the second conductive terminal extending out from a bottom of the isolation member.
2. The charging connector for the electric vehicle as claimed in claim 1, wherein an outer annular groove and an inner annular groove are formed in the upper surface of the isolation member, and the outer annular groove is located at an outer side with respect to the inner annular groove.
3. The charging connector for the electric vehicle as claimed in claim 2, wherein a depth of the outer annular groove is larger than half of a length of the isolation member.
4. The charging connector for the electric vehicle as claimed in claim 2, wherein a depth of the inner annular groove is smaller than a depth of the outer annular groove, and the inner annular groove has a step recess recessed in a side of the inner annular groove near the center of the isolation member.
5. The charging connector for the electric vehicle as claimed in claim 1, wherein the second conductive terminal is tubular and has an upper channel and a lower channel formed in the second conductive terminal and communicating with each other, a diameter of the upper channel is larger than a diameter of the lower channel; a flexible contact member and a contacting spring are mounted in the upper channel of the second conductive terminal; the contacting spring is located at a lower segment of the upper channel; and the flexible contact member is located at an upper segment of the upper channel and above the contacting spring.
6. The charging connector for the electric vehicle as claimed in claim 5, wherein the flexible contact member has an upper ring, a lower ring, and multiple contacting reeds; two ends of each of the contacting reeds are respectively connected with the upper ring and the lower ring; each of the contacting reeds of the flexible contact member is bended toward an axis in the upper ring and the lower ring to form a contact point; and a distance from the contact point of each of the contacting reeds of the flexible contact member to the lower ring is larger than a distance from the contact point to the upper ring.
7. The charging connector for the electric vehicle as claimed in claim 6, wherein the contacting spring has a convergent portion formed on a top of the contacting spring; and an external diameter of the convergent portion is smaller than an internal diameter of the lower ring of the flexible contact member and larger than an internal diameter of the flexible contact member at the contact points of the flexible contact member.
8. The charging connector for the electric vehicle as claimed in claim 7, wherein the lower channel of the second conductive terminal is a threaded hole; the contacting spring has a dense-turn portion, where a coil of the contacting spring is wound closely and formed on a bottom of the contacting spring; and a threaded rod extends into the dense-turn portion of the contacting spring and is threaded into the lower channel of the second conductive terminal,
9. The charging connector for the electric vehicle as claimed in claim 1, wherein a first connecting sheet and a second connecting sheet are mounted on a bottom of the connector base at a same side of the connector base and face to each other at an angle; the first connecting sheet and the second connecting sheet each have one respective end extending into the connector base and connected with the first conductive terminal and the second conductive terminal respectively; and a segment of each of the first connecting sheet and the second connecting sheet extending out from the connector base is covered by an insulation layer, except that an end of the segment is uncovered for electrical connection.
10. The charging connector for the electric vehicle as claimed in claim 9, wherein the first connecting sheet and the second connecting sheet vertically extend out from the bottom of the connector base and are twisted to horizontally extend and to be parallel to each other.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
[0030] With reference to
[0031] The connector base 10 is hollow and tubular and has an annular boss 11 formed on a top thereof. The first conductive terminal 20 is complementary in shape to the boss 11 and is mounted in the boss 11.
[0032] The first conductive terminal 20 is hollow and tubular. The first conductive terminal 20 is mounted in the boss 11 of the connector base 10 via one of two ends thereof and extends out from the boss 11 via the other one of the two ends thereof. The first conductive terminal 20 has an upper cavity 21 and a lower cavity 22 communicating with each other. An internal diameter of the upper cavity 21 is larger than an internal diameter of the lower cavity 22. The lower cavity 22 further has a recessed surface 220 radially recessed in a cavity surface of the lower cavity 22 to further increase the internal diameter of the lower cavity 22.
[0033] An isolation member 40 is complementary in shape to the lower cavity 22 and is mounted in the lower cavity 22 of the first conductive terminal 20. The isolation member 40 is made of an insulation material and has an upper surface. The upper surface of the isolation member 40 faces a bottom of the upper cavity 21. At least one annular groove is coaxially recessed in the upper surface of the isolation member 40 and extends downwardly. With reference to
[0034] The second conductive terminal 30 is mounted in the center of the isolation member 40, and is surrounded by the outer annular groove 41 and the inner annular groove 42 formed in the upper surface of the isolation member 40. One of two ends of the second conductive terminal 30 extends into the upper cavity 21 of the first conductive terminal 20. The other one of the two ends of the second conductive terminal 30 extends out from the bottom of the isolation member 40. With reference to
[0035] A creepage distance from the first conductive terminal 20 to the second conductive terminal 30 along a horizontal direction is increased. In addition, the creepage distance along a vertical direction is further increased by the outer annular groove 41 and the inner annular groove 42 formed in the upper surface of the isolation member 40 and extended downwardly. With reference to
[0036] Also, because the isolation member 40 has the outer annular groove 41 and the inner annular groove 42 in the upper surface thereof to increase a surface area of the isolation member 40, the isolation member 40 has the larger surface area for heat dissipation.
[0037] With reference to
[0038] With reference to
[0039] With reference to
[0040] The contacting spring 34 has a convergent portion 341 formed on a top of the contacting spring 34. An external diameter of the convergent portion 341 is smaller than an internal diameter of the lower ring 332 of the flexible contact member 33 and is larger than an internal diameter of the flexible contact member 33 at the contact points thereof. So the convergent portion 341 is located below the contact points of the flexible contact member 33. The contacting spring 34 has a dense-turn portion 342, where a coil of the contacting spring 34 is wound closely and formed on a bottom of the contacting spring 34. With reference to
[0041] With reference to
[0042] According to the embodiment, the internal diameter of the lower cavity 22 of the first conductive terminal 20 is increased to increase the external diameter of the isolation member 40. Accordingly, the creepage distance between the first conductive terminal 20 and the second conductive terminal 30 along the horizontal direction is increased. The at least one annular groove is formed in the upper surface of the isolation member 40 and further increases the creepage distance between the first conductive terminal 20 and the second conductive terminal 30 along the vertical direction. So there is enough creepage distance to meet the safety specifications. In addition, the at least one annular groove formed in the upper surface of the isolation member 40 increases the surface area thereof to increase the area of the isolation member 40 for heat dissipation. In addition, the first connecting sheet 200 and the second connecting sheet 300 for external connection are covered by the insulation layers 201, 301 at segments thereof extending out from the connector base 10, such that the creepage distance between the first connecting sheet 200 and the second connecting sheet 300 meets the safety specifications.