IP Library Granted Patent US 12,725,985
Granted Patent B2
US 12,725,985 · App. 18/589,478 · Granted Sep 1, 2026

Ground shield contact member

Inventors: Jacobus Nicolaas Tuin (Looierstraat Best, NL); Bruce Allen Champion (Camp Hill, PA); Charles Raymond Gingrich, III (Mechanicsburg, PA); Keith Edwin Miller (Manheim, PA); Kyle Gary Annis (Hummelstown, PA); Rutger Wilhelmus Smink (Hamont-Achel, BE); Sander Floris (Lennisheuvel, NL); Scott Eric Walton (Mount Joy, PA)
Assignee: TE Connectivity Solutions Gmbh
H01R13/6587H01R12/716H01R12/721H01R12/724H01R13/193H01R13/26H01R13/6471H01R13/6585H05K1/0251
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Quick Facts
Patent No.
US 12,725,985
App. No.
18/589,478
Granted
Sep 1, 2026
Kind
B2
Abstract

An electrical connector with a housing having at least one slot for receiving an electrical wafer therein. Signal contacts are positioned on a first side of the at least one slot. The signal contact resilient contact arms exert a first normal force on the electrical wafer inserted in the at least one slot. At least one ground shield contact member is positioned on a second side of the at least one slot. The ground shield resilient contact arms exert a second normal force on the wafer inserted in the at least one slot. The second normal force exerted by the ground shield resilient contact arms is greater than the first normal force exerted by the signal contact resilient contact arms. The wafer is biased toward the signal contact resilient contact arms of the signal contacts regardless of a thickness of the wafer.

Claims (35)

1 . An electrical connector comprising:

a housing having at least one slot for receiving an electrical wafer therein;

signal contacts positioned on a first side of the at least one slot, the signal contacts having signal contact resilient contact arms extending into the at least one slot, the signal contact resilient contact arms exert a first normal force on the electrical wafer inserted in the at least one slot;

at least one ground shield contact member positioned on a second side of the at least one slot, the second side being opposed to the first side, the at least one ground shield contact member having ground shield resilient contact arms extending into the at least one slot, the ground shield resilient contact arms exert a second normal force on the wafer inserted in the at least one slot;

the at least one ground shield contact member has a planar ground shield portion, the ground shield resilient contact arms extending from a first end of the planar ground shield portion, resilient members extend from a second end of the planar ground shield portion, the second end of the planar ground shield portion is opposed to the first end of the planar ground shield portion;

the second normal force exerted by the ground shield resilient contact arms is greater than the first normal force exerted by the signal contact resilient contact arms;

wherein the wafer is biased toward the signal contact resilient contact arms of the signal contacts regardless of a thickness of the wafer allowing the first normal force exerted on the wafer to be independent of a wafer thickness tolerance.

2 . The electrical connector as recited in claim 1 , wherein the ground shield resilient contact arms are spaced uniformly along the length of the planar ground shield portion.

3 . The electrical connector as recited in claim 2 , wherein the ground shield resilient contact arms have lead in portions and engagement portions, the engagement portions press against a ground plane member of the wafer when the wafer is inserted into the at least one slot.

4 . The electrical connector as recited in claim 1 , wherein the resilient members are spaced uniformly along the length of the planar ground shield portion.

5 . The electrical connector as recited in claim 4 , wherein a longitudinal axis of each of the resilient members is offset from a longitudinal axis of each of the ground shield resilient contact arms.

6 . The electrical connector as recited in claim 4 , wherein the resilient members have U-shaped members.

7 . The electrical connector as recited in claim 6 , wherein circuit board engaging surfaces are provided at free ends of the of the U-shaped members, the circuit board engaging surfaces are configured to engage and make an electrical connection with contact pads on a surface of a backplane circuit board.

8 . The electrical connector as recited in claim 1 , wherein ground contacts are provided at ends of the planar ground shield portion of the at least one ground shield contact member.

9 . The electrical connector as recited in claim 1 , wherein the at least one ground shield contact member provides grounding and shielding the electrical connector.

10 . The electrical connector as recited in claim 1 , wherein the signal contacts have the signal contact resilient contact arms, securing sections and mounting sections.

11 . The electrical connector as recited in claim 10 , wherein the signal contact resilient contact arms have lead in portions and engagement portions, the engagement portions press against signal conductive pads of the wafer when the wafer is inserted into the at least one slot.

12 . The ground shield contact component as recited in claim 1 , wherein a signal contact length across the signal contacts is minimized for signal integrity purposes while still meeting the normal force requirements for a reliable contact system.

13 . An electrical connector comprising:

a housing having at least one slot for receiving an electrical wafer therein;

signal contacts positioned on a first side of the at least one slot, the signal contacts having signal contact resilient contact arms extending into the at least one slot, the signal contact resilient contact arms exert a first normal force on the electrical wafer inserted in the at least one slot;

at least one ground shield contact member positioned on a second side of the at least one slot, the second side being opposed to the first side, the at least one ground shield contact member having ground shield resilient contact arms extending into the at least one slot, the ground shield resilient contact arms exert a second normal force on the wafer inserted in the at least one slot;

the second normal force exerted by the ground shield resilient contact arms is greater than the first normal force exerted by the signal contact resilient contact arms;

wherein the wafer is biased toward the signal contact resilient contact arms of the signal contacts regardless of a thickness of the wafer allowing the first normal force exerted on the wafer to be independent of a wafer thickness tolerance;

wherein a securing section extends from a second end of the planar ground shield portion, the second end of the planar ground shield portion is opposed to the first end of the planar ground shield portion.

14 . The electrical connector as recited in claim 13 , wherein the securing the securing section is bent out of the plane of the ground shield portion, the securing section cooperates with securing projections of the connector to retain the ground shield contact member in the connector.

15 . The electrical connector as recited in claim 14 , wherein a portion of the securing section extends approximate perpendicular to the ground shield portion.

16 . The electrical connector as recited in claim 14 , wherein mounting members extend from the securing sections, the mounting members are configured to engage and make an electrical connection with through holes of a backplane circuit board.

17 . An electrical connector comprising:

a housing having at least one slot for receiving an electrical wafer therein;

signal contacts positioned on a first side of the at least one slot, the signal contacts having signal contact resilient contact arms extending into the at least one slot, the signal contact resilient contact arms exert a first normal force on the electrical wafer inserted in the at least one slot;

at least one ground shield contact member positioned on a second side of the at least one slot, the second side being opposed to the first side, the at least one ground shield contact member having ground shield resilient contact arms extending into the at least one slot, the ground shield resilient contact arms exert a second normal force on the wafer inserted in the at least one slot;

the second normal force exerted by the ground shield resilient contact arms is greater than the first normal force exerted by the signal contact resilient contact arms;

wherein the wafer is biased toward the signal contact resilient contact arms of the signal contacts regardless of a thickness of the wafer allowing the first normal force exerted on the wafer to be independent of a wafer thickness tolerance;

wherein the at least one ground shield contact member makes a ground connection from a backplane circuit board on which the electrical connector is mounted to ground planes of the wafer, the at least one ground shield contact member provides mechanical stability and signal integrity.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 31, 2024
From: CHAMPION, BRUCE ALLEN; GINGRICH, CHARLES RAYMOND, III; MILLER, KEITH EDWIN; ANNIS, KYLE GARY; WALTON, SCOTT ERIC
To: TE CONNECTIVITY SOLUTIONS GMBH
Reel/Frame 068134/0445 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 31, 2024
From: TUIN, JACOBUS NICOLAAS; SMINK, RUTGER WILHELMUS; FLORIS, SANDER
To: TE CONNECTIVITY NEDERLAND B.V.
Reel/Frame 068217/0142 →
Continuity (2)
Provisional Application 63490014 · Mar 14, 2023
Related Publication 20240313476A1 · Sep 19, 2024
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