IP Library Granted Patent US 6,932,382
Granted Patent B2
US 6,932,382 · App. 10/696,242 · Granted Aug 23, 2005

Hall effect sensor assembly

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Quick Facts
Patent No.
US 6,932,382
App. No.
10/696,242
Granted
Aug 23, 2005
Kind
B2
Abstract

A Hall effect sensor assembly including a Hall effect sensor; an overmolded housing which is overmolded onto the Hall effect sensor; and a magnet movably connected to the Hall effect sensor by a movable connection with the overmolded housing. The movable connection restrains movement of the magnet to a path along and aligned with a Hall effect central sensing axis. The magnet is substantially prevented from tilting relative to the sensing axis.

Claims (61)

1. A Hall effect sensor assembly comprising:

a Hall effect sensor;

an overmolded housing which is overmolded onto the Hall effect sensor; and

a magnet movably connected to the Hall effect sensor by a movable connection with the overmolded housing, wherein the movable connection restrains movement of the magnet to a path along and aligned with a Hall effect central sensing axis, and wherein the magnet is substantially prevented from tilting relative to the sensing axis,

wherein the Hall effect sensor and the overmolded housing are adapted to be connected as a single subassembly to a flexible printed circuit at a substantially same time.

2. A Hall effect sensor assembly as in claim 1 wherein the overmolded housing comprises a general tube section located above the Hall effect sensor.

3. A Hall effect sensor assembly as in claim 1 wherein the overmolded housing comprises an open section, and wherein electrical leads of the Hall effect sensor span across the open section.

4. A Hall effect sensor assembly as in claim 3 wherein the overmolded housing comprises a base section adapted to be snap lock connected to a mounting frame.

5. A Hall effect sensor assembly as in claim 1 wherein the Hall effect sensor and overmolded housing are adapted to be removably connected as the single subassembly to the flexible printed circuit by at least one removable connection.

6. A Hall effect sensor assembly comprising:

a Hall effect sensor;

an overmolded housing which is overmolded onto the Hall effect sensor; and

a magnet movably connected to the Hall effect sensor by a movable connection with the overmolded housing, wherein the movable connection restrains movement of the magnet to a path along and aligned with a Hall effect central sensing axis, and wherein the magnet is substantially prevented from tilting relative to the sensing axis,

wherein the overmolded housing comprises a general tube section located above the Hall effect sensor, and

wherein the general tube section of the overmolded housing comprises two opposing curved columns defining a magnet movement path therebetween, and wherein the opposing columns each comprise an alignment slot therein.

7. A vehicle seat sensor device comprising:

a frame;

a flexible printed circuit mat connected to the frame; and

a Hall effect sensor assembly as in claim 1 . electrically connected to the flexible printed circuit mat and mechanically connected to the frame.

8. A vehicle seat sensor device as in claim 7 wherein the Hall effect sensor assembly is snap lock connected to the frame.

9. A vehicle seat sensor device as in claim 7 further comprising a plurality of terminals connecting electrical leads of the Hall effect sensor to electrical conductors in the flexible printed circuit mat, wherein the terminals each comprise a first connection section extending from a first side of the terminal piercing through the flexible printed circuit mat and making electrical connection with one of the electrical conductors and a second connection section extending from an opposite second side of the terminal wrapped around a portion of one of the electrical leads.

10. A vehicle air bag system comprising:

an air bag;

a controller connected to the air bag for activating the air bag; and

a vehicle seat sensor device as in claim 7 , wherein conductors of the flexible printed circuit mat are coupled to the controller.

11. A Hall effect sensor assembly comprising:

a Hall effect sensor;

an overmolded housing which is overmolded onto the Hall effect sensor; and

a magnet movably connected to the Hall effect sensor by a movable connection with the overmolded housing, wherein the movable connection restrains movement of the magnet to a path along and aligned with a Hall effect central sensing axis, and wherein the magnet is substantially prevented from tilting relative to the sensing axis,

wherein the overmolded housing comprises a general tube section located above the Hall effect sensor, and

wherein the overmolded housing forms a first housing member, and the Hall effect sensor assembly further comprising a second housing member, wherein the magnet is fixedly connected to the second housing member, and wherein the second housing member is movably located in the general tube section of the overmolded housing.

12. A Hall effect sensor assembly as in claim 11 wherein the second housing member comprises a tube shaped section, wherein the tube shaped section is slidably mounted in the general tube section of the overmolded housing, and wherein interference between the tube shaped section and the general tube section provides a telescoping movement substantially preventing the second housing member from tilting relative to the overmolded housing.

13. A Hall effect sensor assembly as in claim 11 wherein the second housing member is snap lock connected to the overmolded housing.

14. A Hall effect sensor assembly as in claim 13 wherein the general tube section comprises guide slots, and wherein snap lock sections of the second housing member are movably located in the guide slots.

15. A Hall effect sensor assembly comprising:

a Hall effect sensor;

an overmolded housing which is overmolded onto the Hall effect sensor; and

a magnet movably connected to the Hall effect sensor by a movable connection with the overmolded housing, wherein the movable connection restrains movement of the magnet to a path along and aligned with a Hall effect central sensing axis, and wherein the magnet is substantially prevented from tilting relative to the sensing axis,

wherein the overmolded housing comprises a general tube section located above the Hall effect sensor, and

wherein the Hall effect sensor comprises leads with distal ends having the overmolded housing thereon to fixedly connect the distal ends to the overmolded housing, wherein exposed middle sections of the leads do not have the overmolded housing thereon, wherein the exposed middle sections are adapted to be connected to connection terminals, and wherein the overmolded housing retains the exposed middle sections in a fixed orientation relative to each other and relative to the overmolded housing.

16. A Hall effect sensor assembly comprising:

a housing comprising a first housing member and a second housing member, wherein the second housing member is slideably connected to the first housing member along an axis;

a Hall effect sensor connected to the first member, wherein the first housing member comprises an overmolded housing member which is overmolded on the Hall effect sensor;

a permanent magnet connected to the second housing member; and

a spring connected between the first and second housing members to bias the permanent magnet and second housing member in a direction away from the Hall effect sensor,

wherein the Hall effect sensor comprises electrical leads with distal ends having the overmolded housing member thereon to fixedly connect the distal ends to the overmolded housing member, wherein exposed middle sections of the leads do not have the overmolded housing member thereon, wherein the exposed middle sections are adapted to be connected to connection terminals, and wherein the overmolded housing member retains the exposed middle sections in a fixed orientation relative to each other and relative to the overmolded housing member.

17. A Hall effect sensor assembly as in claim 16 wherein the second housing member is slidably connected to the first housing member by a movable connection, wherein the movable connection restrains movement of the second housing member and the permanent magnet to a path along and aligned with a Hall effect central sensing axis, and wherein the permanent magnet is substantially prevented from tilting relative to the Hall effect central sensing axis.

18. A Hall effect sensor assembly as in claim 16 wherein the overmolded housing member comprises a general tube section located above the Hall effect sensor.

19. A Hall effect sensor assembly as in claim 18 wherein the general tube section of the overmolded housing member comprises two opposing curved columns defining a magnet movement path therebetween, and wherein the opposing columns each comprise an alignment slot therein.

20. A Hall effect sensor assembly as in claim 18 wherein the second housing member is movably located in the general tube section of the overmolded housing.

21. A Hall effect sensor assembly as in claim 20 wherein the second housing member comprises a tube shaped section, wherein the tube shaped section is slidably mounted in the general tube section of the overmolded housing member, and wherein interference between the tube shaped section and the general tube section substantially prevent the second housing member from tilting relative to the overmolded housing member.

22. A method of assembling a Hall effect sensor assembly with a flexible printed circuit comprising steps of:

overmolding a first housing member onto a Hall effect sensor; and

movably connecting a permanent magnet to the first housing member by a movable connection, wherein the movable connection comprises a spring biasing the permanent magnet away from the Hall effect sensor, wherein the movable connection limits movement of the permanent magnet to a fixed orientation relative to the Hall effect sensor along a Hall effect central sensing axis, and wherein the permanent magnet is substantially prevented from tilting relative to the Hall effect central sensing axis,

connecting the first housing member and the Hall effect sensor at a substantially same time as a single subassembly unit to the flexible printed circuit.

23. A method as in claim 22 wherein the step of connecting the first housing member and the Hall effect sensor as a single unit to the flexible printed circuit at a substantially same time comprises removably connecting the first housing member and the Hall effect sensor to the flexible printed circuit by at least one removable connection.

24. A method of assembling a Hall effect sensor assembly comprising steps of:

overmolding a first housing member onto a Hall effect sensor; and

movably connecting a permanent magnet to the first housing member by a movable connection, wherein the movable connection comprises a spring biasing the permanent magnet away from the Hall effect sensor, wherein the movable connection limits movement of the permanent magnet to a fixed orientation relative to the Hall effect sensor along a Hall effect central sensing axis, and wherein the permanent magnet is substantially prevented from tilting relative to the Hall effect central sensing axis,

wherein the step of overmolding the first housing member onto the Hall effect sensor comprises overmolding the first housing member onto distal ends of electrical leads of the Hall effect sensor and not overmolding the first housing member onto middle sections of the electrical leads.

25. A method as in claim 24 wherein the step of movably connecting the permanent magnet to the first housing member comprises connecting the permanent magnet to a second housing member, and snap lock connecting the second housing member to the first housing member, wherein the second housing member is slidably connected to the first housing member.

Assignments (10)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 27, 2018
From: DELPHI INTERNATIONAL OPERATIONS LUXEMBOURG SARL
To: APTIV TECHNOLOGIES LIMITED
Reel/Frame 047589/0181 →
CORRECTIVE ASSIGNMENT; REEL/FRAME: 030302/O763; CORRECTED ASSIGNEE Recorded May 3, 2013
From: FCI AUTOMOTIVE HOLDING SAS
To: DELPHI INTERNATIONAL OPERATIONS LUXEMBOURG, S.A.R.L.
Reel/Frame 030353/0183 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 23, 2013
From: FCI AUTOMOTIVE HOLDING SAS
To: DELPHI TECHNOLOGIES OPERATIONS LUXEMBOURG S.A.R.L.
Reel/Frame 030302/0763 →
RELEASE OF PATENT SECURITY INTEREST AT REEL/FRAME NO. 26956/0814 Recorded Nov 29, 2012
From: BANC OF AMERICA SECURITIES LIMITED
To: FCI AUTOMOTIVE HOLDING SAS
Reel/Frame 029377/0664 →
RELEASE OF PATENT SECURITY INTEREST AT REEL/FRAME NO. 17400/0192 Recorded Nov 29, 2012
From: BANC OF AMERICA SECURITIES LIMITED
To: FCI AMERICAS TECHNOLOGY LLC (F/K/A FCI AMERICAS TECHNOLOGY, INC.)
Reel/Frame 029377/0632 →
SECURITY AGREEMENT Recorded Sep 23, 2011
From: FCI AUTOMOTIVE HOLDING SAS
To: BANC OF AMERICA SECURITIES LIMITED, AS SECURITY AGENT
Reel/Frame 026956/0814 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 21, 2011
From: FCI AMERICAS TECHNOLOGY LLC
To: FCI AUTOMOTIVE HOLDING
Reel/Frame 026940/0702 →
CONVERSION TO LLC Recorded Mar 14, 2011
From: FCI AMERICAS TECHNOLOGY, INC.
To: FCI AMERICAS TECHNOLOGY LLC
Reel/Frame 025957/0432 →
SECURITY AGREEMENT Recorded Mar 31, 2006
From: FCI AMERICAS TECHNOLOGY, INC.
To: BANC OF AMERICA SECURITIES LIMITED, AS SECURITY AGENT
Reel/Frame 017400/0192 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 28, 2003
From: HAYES, EARL JAMES; MCLAUCHLAN, RAYMOND BRUCE
To: FCI AMERICAS TECHNOLOGY, INC.
Reel/Frame 014659/0800 →