LINEAR FORCE SENSOR AND METHOD OF USE
20210181048 · 2021-06-17
Inventors
Cpc classification
G01L5/108
PHYSICS
G01L5/102
PHYSICS
International classification
Abstract
A device for attachment to a linear force transmission medium such as a wire or rod includes a flexure body having axially aligned tubular extensions on opposite ends that can receive and be crimped to the medium to create a continuous path for tensile force transmission. The flexure carries strain gages on top and bottom planar surface portions that are connected into a bridge circuit that responds to stress in the flexure body. Leads are protected against disconnection from solder pads by wrapping the leads and a carrier for them around the exterior circumferential surface of a jacket that fits on and around the flexure body. An FPC plug embodiment is disclosed.
Claims
1. A method for measuring tension in a linear transmission medium such as a wire using a sensor comprising a flexure body having a longitudinal axis, a circumferential exterior surface, opposite ends, a longitudinal bore extending into said ends and into tubular extensions at each of said ends and aligned with said axis, said body having strain sensing means mounted on a portion of said circumferential exterior surface where stress is concentrated for producing electrical signals representing elastic deformation in the flexure body, said method comprising the steps of: passing said medium into said tubular extensions; deforming said extensions to make connections of said extensions to said medium; and applying a force via said medium and flexure body thereby elastically deforming said flexure body and producing electrical signals.
2. The method defined in claim 1 wherein said sensor further includes conductive leads extending from said circuit and wrapping circumferentially around said flexure body; and the method further comprising the step of connecting said leads to a device for receiving said electrical signals.
3. The method defined in claim 2 wherein said tubular extensions are formed integrally and seamlessly with said flexure body.
4. A sensor for measuring tension in a linear force transmission medium such as a wire comprising: a sensor body of high modulus of elasticity material having a longitudinal axis of symmetry, a circumferential exterior surface, opposed ends; said body further including tubular extensions extending from said ends and a bore extending at least into said extensions along said axis; strain sensing means attached to a portion of said surface and connected into a bridge circuit for producing electrical signals representing elastic deformation in said body caused by longitudinal tensile force applied to said body at and between said tubular extensions; and electrical leads attached to and extending laterally from said strain sensing means and circumferentially around said body and extending away from said body for attachment to a signal receiving device.
5. A sensor as defined in claim 4 wherein the body is formed with rounded side surfaces joined by a least one planar surface, said body further includes a lateral bore extending through the body and intersection said longitudinal axis and a slot formed in and extending laterally across said planar surface parallel to said lateral bore and longitudinally spaced therefrom to produce stress concentrating areas in said flexure body; and strain sensing means mounted on said planar surface in proximity to said stress concentrating area so as to be affected by elastic deformation and stress in said concentrating areas to produce electrical signals.
6. A sensor as defined in claim 5 further including a flexible insulative lead carrier film strip carrying said leads and extending laterally from said strain sensing means and wrapping fully around said body to prevent separation of said leads from strain sensing means due to incidental tension.
7. A sensor as defined in claim 6 further comprising a jacket configured to form fit around and to the rounded exterior circumferential surfaces of the flexure body; said jacket providing on its exterior a support for said lead carrier.
8. A sensor as defined in claim 7, wherein the flexure body has two opposite planar exterior surface portions each carrying some of said strain sensing means, said rounded opposite side surfaces joining said planar surface portions, and the jacket is configured to contact and fit against said rounded side surfaces and to provide slot openings over said planar surfaces for portions of said lead carrier to extend from connection points on the planar surfaces under said jacket and onto the exterior surface thereof.
9. A sensor as defined in claim 4 wherein the tubular extensions are integral with and made of the same material as the flexure body.
10. A sensor as defined in claim 9 wherein the tubular extensions are attached to the medium by crimping.
11. A sensor as defined in claim 4 wherein the flexure body is on the order of 5 mm long.
12. A miniature sensor for application to force carrying medium such as a wire comprising: a flexure body having a circumferential outside surface and a longitudinal passage into which the medium can extend; the body being configured to produce an area of stress concentration therein; said body being further connected to said medium at longitudinally spaced locations along said passage such that forces in the medium are transmitted to the body and cause deformation in said area of stress concentration; a strain gage bridge circuit being mounted on said body with half of the bridge circuit being mounted on a top outside surface portion of the body and another half of the bridge circuit being mounted on a bottom outside surface portion of the body; and a lead carrier with leads attached to the bridge circuit wrapped substantially fully circumferentially around the flexure body for carrying signals from said bridge circuit to a remote readout device.
13. A sensor as described in claim 12 further including a jacket fitted to and around the flexure body wherein said lead carrier is in contact with the jacket surface.
14. A sensor as defined in claim 13 wherein the jacket has a top arch defining a through passage thereunder; said lead carrier and the leads thereon passing through said arch passage.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0008] The illustrative embodiments to the invention are here and after described in accordance with 35 U.S. C. §112 which description is to be taken with the accompanying drawing in which:
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DETAILED DESCRIPTION OF THE ILLUSTRATIVE EMBODIMENTS
[0031] Referring to
[0032] The circumferential outer surface of the flexure body 12, by way of additional detail, has rounded left and right-side surface portions 22 and 24 and planar top and bottom surfaces 26 together defining a circumferential exterior surface. A flange on the near end as shown in
[0033] A lateral aperture 30 passes fully through the body 12 intersecting the longitudinal axis and the passage 18 if it extends fully through the body 12 such that aperture 30 plays a part in creating stress concentration areas in the flexure body responding to both compression and tension forces. The aperture 30 works in cooperation with lateral slots 32 and 34 in the top and bottom planar surfaces, respectively, proximate but longitudinally spaced from the central axis of the lateral aperture 30.
[0034] Film pads 36 of insulating material are adhered to the top and bottom parallel planar surfaces 26 of the flexure body, respectively, to receive strain gages 38 and solder pads 40, the pads 40 being connected via plated tracings on the top surface to the strain gages 38. It is to be understood that in the embodiment of
[0035] The tubular extensions 14 are mechanically deformed by crimping after the wire 20 is threaded into them along the longitudinal passage 18 and properly located for the particular job application so that the flexure body 12 is effectively permanently connected to the wire medium 20 whereby axial loads in the wire are transmitted to the flexure body and are concentrated in the stress concentration areas by the aforementioned lateral aperture 30 and the lateral slots 32 and 34. The strain gages 38 respond to deformation of the flexure body 12 by changing in electrical resistance thereby unbalancing the bridge and producing a voltage output difference between the side nodes which produces the bridge output in a well-known manner.
[0036]
[0037] Referring now to
[0038] As shown in
[0039] When fully installed the jacket 42 provides a support for an elongate insulate and flexible lead carrier 48 that carries printed conductive leads 50 from the strain gages and makes the connections described above. The leads are first arranged to form the bridge circuit of
[0040] By way of review, the bridge circuit shown in
[0041] Referring now to
[0042] Looking to
[0043] The jacket 42 is formed with an integral arch 66 on the top surface that creates a passage 68 through which the final portion 58 of the lead carrier 48 passes after being fully wrapped around the jacket 42. The arch provides further protection for the leads and the lead carriers as well as a place for labels and aesthetic features.
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[0047] In all embodiments the flexure body is as shown and is mechanically connected to the medium by crimping the extensions 14 sufficiently to make an effectively permanent connection. The leads, and the solder connections, exclusive of the plug embodiment, are protected against accidental disconnection by circumferential wrapping about the flexure and the jacket to avoid disruption and creating a potentially life threatening situation.
[0048] It is to be understood the invention as has been described with reference to a number of illustrative embodiments and the various modifications and additions can be made without departing from the scope and content of the appended claims.
TABLE OF REFERENCE NUMBERS
[0049] 10 sensor [0050] 12 flexure body [0051] 14 tubular extensions [0052] 16 not used [0053] 18 longitudinal passage [0054] 20 medium; wire [0055] 22 rounded side surface [0056] 24 rounded side surface [0057] 26 top and bottom planar exterior surfaces of flexure body [0058] 28 shoulder [0059] 30 lateral aperture [0060] 32 lateral slot [0061] 34 lateral slot [0062] 40 solder pads [0063] 42 jacket [0064] 44 rounded side of jacket [0065] 46 rounded side of jacket [0066] 48 lead carrier [0067] 50 leads [0068] 52 first leg portion of lead carrier 48 [0069] 53 slot [0070] 54 2.sup.nd leg portion of lead carrier 48 [0071] 55 slot [0072] 56 3.sup.rd leg portion of lead carrier 48 [0073] 58 longer portion of lead carrier 48 [0074] 60 lead carrier portion [0075] 62 lead carrier portion [0076] 64 lead carrier portion [0077] 66 arch on jacket [0078] 68 passage [0079] 70 wires [0080] 72 FCP plug