Claims
- 1. A torsional sensing load cell for use as a force indicator comprising:a first arm held in a relatively fixed position, a second arm, parallel to the first arm, connected to a load associated with a force, a joining section integrally connected to an end of said first arm and to an end of said second arm, a force transducer connected to produce an electrical output signal representing torsion between the first and second arms, and an electrical circuit connected to receive said output signal representing torsion and to use said signal to indicate the load associated with a force, wherein the load is connected to the second arm in a manner to produce torsion between the first arm and the second arm thus producing torsion in the joining section.
- 2. The apparatus of claim 1 further defined by the force transducer comprising a pair of spaced apart strain gauges, one strain gauge associated with each of the first and second arms.
- 3. The apparatus of claim 1 wherein the first and second arms and joining section have a tuning fork shape.
- 4. The apparatus of claim 2 wherein said joining section has an axis of symmetry and said strain gauges are symmetrically located relative to the center line.
- 5. The apparatus of claim 1 wherein the first arm is connected to a post anchored to a rigid platform.
- 6. The apparatus of claim 5 wherein said rigid platform is part of a vehicle.
- 7. The apparatus of claim 6 wherein said vehicle is a motor vehicle, said post is a fixed foot rising above said platform.
- 8. The apparatus of claim 1 wherein the first and second arms are integrated into a supporting rail.
- 9. The apparatus of claim 1 wherein the first and second arms each has a linear geometry.
- 10. A torsional sensing load cell comprising:a first member; a second member; a third member integrally coupling together the first and second members, wherein the first member and second member are configured to be coupled to a load in a manner to produce torsional stress in the first, second, and third members; a first force transducer connected to the first member detect torsional stress in the first member; and a second force transducer connected to the second member to detect torsional stress in the second member.
- 11. The load cell of claim 10 wherein the first, second, and third members are arranged in the shape of a tuning fork.
- 12. The load cell of claim 10 wherein the first, second, and third member are defined by a continuous slot formed through a thickness of a solid material, the slot tracing a shape which outlines the first, second, and third members.
- 13. A torsional sensing load cell comprising:a generally U-shaped member having a main body portion and first and second extending portions extending away from the main body portion; a first transducer coupled along the first extending portion and proximate the main body portion; and a second transducer coupled along the second extending portion and proximate the main body portion, the first extending portion and the second extending being coupled to a load in a manner to produce torsional stress through the generally U-shaped member when subjected to the load, the first and second transducers configured to detect a torsional force respectively in the first extending portion and the second extending portion resulting from the torsional stress.
- 14. The load cell of claim 13 wherein the first and second extending portions are substantially coplanar.
- 15. The load cell of claim 13 wherein the main body is subject to torsion when opposing forces are applied to the first extending portion and to the second extending portion.
CROSS REFERENCE TO RELATED APPLICATION
The present application is a divisional application of U.S. application Ser. No. 09/351,866, filed Jul. 12, 1999.
US Referenced Citations (27)