Power connector
11735845 ยท 2023-08-22
Assignee
Inventors
Cpc classification
H01R13/111
ELECTRICITY
H01R12/7058
ELECTRICITY
H01R11/03
ELECTRICITY
International classification
H01R12/72
ELECTRICITY
H01R12/73
ELECTRICITY
Abstract
A power connector for an aircraft solid state power controller includes a first portion including a socket configured for receiving an electric plug, which is inserted into the socket in a receiving direction (R). The controller also includes a second portion comprising a connection surface configured for mating with a complementary connection surface of a complementary connection element. At least one opening is formed within the connection surface.
Claims
1. A power connector for an aircraft solid state power controller, the power connector comprising: a first portion including a socket configured for receiving an electric plug, which is insertable into the socket in a receiving direction (R); and a second portion comprising a connection surface configured for mating with a complementary connection surface of a complementary connection element; wherein at least one opening is formed within the connection surface; wherein the power connector further comprises a connection channel extending between the socket and a lower surface of the power connector, and at least one electric connector arranged within the connection channel for providing an electric connection between the socket and an electrically conducting path, which is formed at the lower surface of the power connector.
2. The power connector according to claim 1, wherein the first and second portions are formed integrally with each other.
3. The power connector according to claim 1, wherein the at least one opening extends between the connection surface and a lower surface of the power connector.
4. The power connector according to claim 1, further comprising at least one protrusion extending from the connection surface.
5. The power connector according to claim 1, wherein the at least one electric connector includes a metallic spring, in particular a helical spring.
6. The power connector according to claim 1, wherein the first portion has a first upper surface and a first lower surface opposite to the first upper surface, and wherein a distance (d.sub.1) between the first upper surface and the first lower surface is larger than a distance (d.sub.2) between the connection surface and the first lower surface.
7. The power connector according to claim 1, wherein the first portion has a rectangular cross-section, in particular a quadratic cross-section, in a plane which is oriented orthogonally to the receiving direction (R); and/or wherein the socket has a circular cross-section in a plane which is oriented orthogonally to the receiving direction (R).
8. The power connector according to claim 1, wherein the connection surface is a flat connection surface.
9. The power connector according to claim 8, wherein a surface normal of the flat connection surface in particular extends orthogonally to the receiving direction (R).
10. A printed circuit board of an aircraft solid state power controller comprising: the power connector as claimed in claim 1.
11. The printed circuit board according to claim 10, wherein the connection surface and the complementary connection surface extend in a direction parallel, or essentially parallel, to the plane of the printed circuit board.
12. The printed circuit board according to claim 11, further comprising at least one conducting path electrically connecting with the electric connector arranged within the connection channel.
13. A power connection assembly comprising a power connector and a complementary connection element, the power connector comprising: a first portion including a socket configured for receiving an electric plug, which is insertable into the socket in a receiving direction (R); and a second portion comprising a connection surface configured for mating with a complementary connection surface of the complementary connection element; wherein at least one opening is formed within the connection surface; wherein the complementary connection element comprises: a complementary connection surface, which is configured for mating with the connection surface formed at the second portion of the power connector; and a backbone which is electrically connected with the complementary connection surface and plurality of connection arms extending from the backbone for distributing electric power from the power connector; wherein an opening is formed in each of the connection arms allowing fixing elements to extend through the connection arms for securely fixing the connection arms to corresponding electric contacts provided on a circuit board.
14. A circuit board of an aircraft solid state power controller comprising: electric contacts provided on the circuit board; and the power connection assembly as claimed in claim 13.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The subject-matter regarded as the invention is particularly pointed out and distinctly claimed in the claims at the conclusion of the specification. The foregoing and other features, and advantages of the invention are apparent from the following detailed description taken in conjunction with the accompanying drawings in which:
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DETAILED DESCRIPTION
(10)
(11) The solid state power controller 2 comprises a plurality of high performance solid state switches 12 forming a high performance portion 3 of the power controller 2, which is shown in the front portion of
(12) The solid state power controller 2 further comprises a plurality of control circuits 14 forming a (low current) control portion 5 of the power controller 2, which is shown in a rear portion of
(13) Outputs of the high performance solid state switches 12 are connected to output connectors 7a, 7b shown in the front of
(14) The solid state switches 12, the control circuits 14 and the output connectors 7a, 7b are mounted to a common circuit board 4, in particular a printed circuit board (PCB). The common circuit board 4 comprises a plurality of conducting paths 42 (cf.
(15) The solid state power controller 2 also comprises a power connection assembly 6, which is also mounted to the circuit board 4 and configured for distributing electric power input into the power controller 2 to the electric components 12, 14 mounted to the circuit board 4, in particular to the solid state switches 12 and the control circuits 14.
(16) The power connection assembly 6 comprises a power connector 8 and a complementary connection element 10, which is mechanically and electrically connected with the power connection assembly 6.
(17) The power connector 8 is shown in the right front edge of the circuit board 4 in
(18)
(19) The complementary connection element 10 comprises a complementary connection surface 102, which, in the orientation depicted in
(20) The complementary connection element 10 further comprises a backbone 104 which is electrically connected with the complementary connection surface 102. In the configuration shown in the figures the backbone 104 extends at an angle, particularly basically orthogonally, with respect to the complementary connection surface 102, but other configurations of the backbone 104 are conceivable as well. A plurality of connection arms 108 extend from the backbone 104 for distributing electric power from the power connector 8 via the complementary connection surface 102 to the solid state switches 12 and control circuits 14 (cf.
(21) An opening 109 is formed in each of the connection arms 108, respectively, allowing fixing elements 111, such as bolts or screws, to extend through the connection arms 108 for securely fixing the connection arms 108 to corresponding electric contacts 113 provided on the circuit board 4 (see
(22)
(23) The power connector 8 comprises a first portion 81 having a first upper surface 81a and a first lower surface 81b, which is arranged opposite and parallel to the first upper surface 81a in a distance d.sub.1.
(24) An opening providing a socket 84 is formed in an end face of the first portion 81. When the power connector 8 is mounted to the circuit board 4, the end face extends orthogonally to the plane of the circuit board 4.
(25) The socket 84 is configured for receiving an electric plug 9, an example of which is depicted in
(26) A connection channel 83 (see
(27) When the plug 9 is inserted into the socket 84, an outer periphery 92 of the plug 9 contacts an inner surface 84a of the socket 84 establishing a first electric connection.
(28) Further, a tip 94 of the plug 9 contacts the electric connector 85 arranged within the connection channel 83, thereby providing a (second) electric connection between the tip 94 of the plug 9 and the conducting path 42 of the circuit board 4.
(29) The power connector 8 further comprises a second portion 82, which in the exemplary embodiment depicted in the figures is formed integrally with the first portion 81. In alternative embodiments not depicted in the figures, the second portion 82 may be manufactured independently from and then joined with the first portion 81.
(30) The second portion 82 has a second lower surface 82b, which is formed flatly with the first lower surface 81b of the first portion 81 forming a continuous planar lower surface 81b, 82b of the power connector 8.
(31) The second portion 82 further comprises a second upper surface 82a, which is arranged parallel to the second lower surface 82b at a distance d.sub.2 from the second lower surface 82b. The distance d.sub.2 between the second upper surface 82a and the second lower surface 82b is smaller than the distance d.sub.1 between the first upper surface 81a and the first lower surface 81b (d.sub.1<d.sub.2). This results in a step 88 formed between the first and second upper surfaces 81a, 82a.
(32) The second upper surface 82a is configured as a connection surface 82a, i.e. for mating with the complementary connection surface 102 of the complementary connection element 10 (cf
(33) A plurality of protrusions 87 and/or openings 89 are formed on and/or within the second portion 82 of the connection surface 82a. The positions of the protrusions 87 and/or openings 89 are aligned to match with corresponding openings 110 formed within the complementary connection surface 102 of the complementary connection element 10 (see
(34) Fixing elements 115, such as bolts or screws, may extend through the openings 89, 110 for securely fixing the complementary connection element 10 to the power connector 8, as it is depicted in
(35) While the invention has been described with reference to exemplary embodiments, it will be understood by those skilled in the art that various changes may be made and equivalents may be substituted for elements thereof without departing from the scope of the invention. In addition, many modifications may be made to adopt a particular situation or material to the teachings of the invention without departing from the essential scope thereof. Therefore, it is intended that the invention is not limited to the particular embodiments disclosed, but that the invention includes all embodiments falling within the scope of the claims.