Float connector for interconnecting printed circuit boards
11056807 ยท 2021-07-06
Assignee
Inventors
- Michael A. Hoyack (Sandy Hook, CT, US)
- Joachim I. Grek (Katrineholm, SE)
- Owen R. Barthelmes (Putnam Valley, NY, US)
Cpc classification
H01R13/4538
ELECTRICITY
H01R12/585
ELECTRICITY
Y10T29/4913
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
H05K1/0243
ELECTRICITY
H05K2203/167
ELECTRICITY
H01R12/91
ELECTRICITY
H01R12/73
ELECTRICITY
H01R12/523
ELECTRICITY
H01R12/7082
ELECTRICITY
International classification
H01R12/52
ELECTRICITY
H01R43/20
ELECTRICITY
H05K3/36
ELECTRICITY
H01R12/91
ELECTRICITY
H01R13/453
ELECTRICITY
Abstract
A float connector for interconnecting printed circuit boards that has a contact assembly including a contacts and a holder and each of the contacts has opposite first and second contact ends for electrically connecting to the boards. A first guide member is slidably and flexibly coupled to the contact assembly and has openings corresponding to the first contact ends. A second guide member is slidably and flexibly coupled to the contact assembly and has openings corresponding to the second contact ends. A biasing member biases the guide members away from one another to an open position. Axial float of the contact assembly is provided between the first and second guide members to compensate for axial misalignment between the first and second printed circuit boards. Radial float of the contact assembly is provided between the first and second guide members to compensate for radial misalignment between the boards.
Claims
1. A float connector for interconnecting printed circuit boards, comprising: a contact assembly including a plurality of contacts and a holder configured to axially support the contacts, each of the plurality of contacts having opposite first and second contact ends for electrically connecting to the printed circuit boards; a first guide member slidably and flexibly coupled to the holder of the contact assembly, the first guide member having a plurality of first openings corresponding to each of the first contact ends, respectively; a second guide member slidably and flexibly coupled to the holder of the contact assembly, the second guide member having a plurality of second openings corresponding to each of the second contact ends, respectively; and a biasing member disposed between the first and second guide members, the biasing member biasing the first and second guide members away from one another to an open position, wherein when the first and second guide members are in the open position, the first and second contact ends are recessed in the first and second guide members, respectively, and not exposed, wherein the first and second guide members are movable from the open position to a compressed position in which the biasing member is compressed to expose the first and second contact ends outside of the openings of the first and second guide members, respectively, and wherein each of the first and second guide members is axially moveable with respect to the contact assembly along an axis generally parallel to longitudinal axes of the contacts to compensate for axial misalignment between the first and second printed circuit boards.
2. The float connector of claim 1, wherein the holder supports each of the plurality of contacts in a clearance fit inside thereof, thereby allowing each contact to radially tilt with respect to the holder to compensate for radial misalignment between the printed circuit boards.
3. The float connector of claim 1, further comprising at least one first alignment feature supported by the first guide member and at least one second alignment feature supported by the second guide member, the at least one first and second alignment features being configured to align the first and second contact ends, respectively, with a respective printed circuit board for electrical connection thereto.
4. The float connector of claim 3, wherein each of the first and second alignment features is coupled to the biasing member.
5. The float connector of claim 3, wherein each of the first and second alignment features is an alignment pin with a printed circuit board engaging end for engaging one of the printed circuit boards and an opposite biasing member engagement end for coupling with the biasing member.
6. The float connector of claim 5, wherein the biasing member is a compression spring and opposite ends of the compression spring are coupled to the first and second alignment pins, respectively.
7. The float connector of claim 5, wherein each printed circuit board engaging end of the first and second alignment pins has an extended length that is longer than the first and second contact ends.
8. The float connector of claim 5, wherein the first and second alignment pins extend through the first and second guide members, respectively.
9. The float connector of claim 1, wherein the first guide member includes at least one first latching feature and the second guide member includes at least one second latching feature, the at least one first and second latching members being configured to couple to the holder of the contact assembly.
10. The float connector of claim 9, wherein the first and second latching features are spring arms and each spring arm engages a detent on outer surface of the holder in a snap engagement.
11. The float connector of claim 1, wherein the holder of the contact assembly includes an outer recessed channel for accommodating the biasing member.
12. The float connector of claim 11, wherein the holder includes one or more latching features configured to engage corresponding latching features of the first and second guide members, respectively.
13. The float connector of claim 1, wherein the openings of the first and second guide members each include a lead-end geometry to assist with receipt of the first and second contact ends, respectively.
14. The float connector of claim 13, wherein the openings of the first and second guide members, respectively, are disposed in plates of the first and second guide members, respectively.
15. The float connector of claim 1, wherein the plurality of contacts includes at least one signal and a plurality of ground contacts.
16. A float connector for interconnecting printed circuit boards, comprising: a contact assembly including a plurality of contacts and a holder configured to axially support the contacts, each of the plurality of contacts having opposite first and second contact ends for electrically connecting to the printed circuit boards; a first guide member slidably and flexibly coupled to the holder of the contact assembly, the first guide member having a plurality of first openings corresponding to each of the first contact ends, respectively; a second guide member slidably and flexibly coupled to the holder of the contact assembly, the second guide member having a plurality of second openings corresponding to each of the second contact ends, respectively; and a biasing member disposed between the first and second guide members, the biasing member biasing the first and second guide members away from one another to an open position, wherein when the first and second guide members are in the open position, the first and second contact ends are recessed in the first and second guide members, respectively, and not exposed, wherein the first and second guide members are movable from the open position to a compressed position in which the biasing member is compressed to expose the first and second contact ends outside of the openings of the first and second guide members, respectively, and wherein the holder supports each of the plurality of contacts in a clearance fit inside thereof, thereby allowing each contact to radially tilt with respect to the holder to compensate for radial misalignment between the printed circuit boards.
17. A float connector for interconnecting printed circuit boards, comprising: a contact assembly including a plurality of contacts and a holder configured to axially support the contacts, each of the plurality of contacts having opposite first and second contact ends for electrically connecting to the printed circuit boards; a first guide member slidably and flexibly coupled to the holder of the contact assembly, the first guide member having a plurality of first openings corresponding to each of the first contact ends, respectively; a second guide member slidably and flexibly coupled to the holder of the contact assembly, the second guide member having a plurality of second openings corresponding to each of the second contact ends, respectively; a biasing member disposed between the first and second guide members, the biasing member biasing the first and second guide members away from one another to an open position; at least one first alignment feature supported by the first guide member and at least one second alignment feature supported by the second guide member, the at least one first and second alignment features being configured to align the first and second contact ends, respectively, with a respective printed circuit board for electrical connection thereto, wherein when the first and second guide members are in the open position, the first and second contact ends are recessed in the first and second guide members, respectively, and not exposed, and wherein the first and second guide members are movable from the open position to a compressed position in which the biasing member is compressed to expose the first and second contact ends outside of the openings of the first and second guide members, respectively.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) A more complete appreciation of the invention and many of the attendant advantages thereof will be readily obtained as the same becomes better understood by reference to the following detailed description when considered in connection with the accompanying drawings, wherein:
(2)
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DETAILED DESCRIPTION OF THE EXEMPLARY EMBODIMENT
(8) Referring to the figures, the present invention relates to a connector 100, such as an RF board-to-board connector, that has both high float capability and a low profile for interconnecting two printed circuit boards 10 and 12. The connector 100 is effective in applications, such as those with small board spacing, e.g. under 8 mm. The connector 100 of the present invention is designed to compensate for both axial and radial misalignment between the circuit boards. The connector 100 of the present invention is designed to achieve higher levels of float even in such low profile applications. The connector 100 is also configured to protect it contacts from damage.
(9) Connector 100 according to an exemplary embodiment of the present invention generally includes a contact assembly 110 comprising a plurality of contacts 120 supported by a holder 130 in such a manner as to allow radial tilt of the contacts 120, and first and second guide members 140 slidably and flexibly coupled to the contact assembly 110 and configured to be installed on the first and second printed circuit boards 10 and 12, respectively. One ore more biasing members 150, such as a compression spring, may be disposed between the first and second guide members 140 to provide axial float to the connector and to bias the first and second guide members 140 away from one another to an open position of the connector, as seen in
(10) As seen in
(11) The holder body 130 may include outer recessed channels 138 positioned and size to accommodate one of the biasing members 150. One or more latching features 160 (
(12) Each guide member 140 may have a base that is a plate 142 with a number of guide features, such as spaced openings 144 corresponding to the number, pattern, or arrangement of the contacts 120 supported in the holder 130. Each opening 144 may be generally funnel shaped to provide lead-in geometry 146 to ease and align insertion of the ends 122 of the contacts 120 when mating the contact assembly 110 the respective boards 10 and 12. The lead-in geometry 146 of the openings 144 guide the ends 122 of the contacts 120 into electrical contact with the printed circuit board, that is when inserted into holes 14 thereof, even if the contacts 120 are out of direct alignment to the holes 14. The latching features 162 may be provided at the perimeter 148 of the plate 142 and positioned to correspond to the latching features 160 of the holder 130. In one embodiment, the latching features 162 are disposed at opposite ends of the plate 142, as seen in
(13) One or more alignment features 170 are preferably incorporated with each guide member 140. The alignment features 170 may be alignment pins, for example, that extend through alignment openings 172 in the plate 142 of the guide members 140. Alternatively, the alignment features 170 may be formed integrally with the plate 142 or formed separately and attached to the plate 142. As best seen in
(14) Each guide members 140 is slidably and flexibly coupled to opposing ends 137 and 139, respectively, of the holder 130 of contact assembly 110, with the biasing members 150 between the guide members 140 and the alignment pins 170 coupled to each guide member and also coupled to the biasing members 150 at their ends 176, as best seen in
(15) The biasing members 150 bias the guide members 140 away from one another to define the open position of the connector 100, as seen in
(16) The biasing members 150, which bias against compression of the connector 100, allows the contact assembly 110 and its contacts 120 to move axially for insertion into plated holes 14 (
(17)
(18) Once the second guide member is properly aligned with the second circuit board 12, as seen in
(19) Next, the connector 100 may be compressed in order to expose the contacts ends 122 for electrical connection with a respective printed circuit board 10 and 12. As seen in
(20) While particular embodiments have been chosen to illustrate the invention, it will be understood by those skilled in the art that various changes and modifications can be made therein without departing from the scope of the invention as defined in the appended claims. For example, the contacts of the above embodiments may be pin or socket. Also, the connector of the present invention may have non-traditional geometry comprising a matrix of pin or socket contacts. To achieve proper impedance between the signal and ground, it is preferable that the float connector of the present invention have at least one signal and one ground contact. Adding more ground contacts to the above embodiments can improve impedance consistency and shielding to prevent RF from leaking (crosstalk) between closely placed signal lines.