Strain sensor system and machine element comprising strain sensor system
11733110 · 2023-08-22
Assignee
Inventors
Cpc classification
B60G17/019
PERFORMING OPERATIONS; TRANSPORTING
G01B7/16
PHYSICS
G01L1/2206
PHYSICS
B60G2800/702
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A strain sensor system having a first base plate with an elongate shape defining a first longitudinal axis, a first strain sensor disposed on the first base plate, a second base plate having an elongate shape defining a second longitudinal axis, a second strain sensor disposed on the second base plate, and a control unit configured to process measurement data produced by the first strain sensor and by the second strain sensor, wherein the first base plate and the second base plate are disposed such that the first longitudinal axis is arranged orthogonally or essentially orthogonally with respect to the second longitudinal axis.
Claims
1. A strain sensor system, comprising: a first base plate having an elongate shape defining a first longitudinal axis; a first strain sensor disposed on the first base plate; a second base plate having an elongate shape defining a second longitudinal axis; a second strain sensor disposed on the second base plate; and a control unit configured to process measurement data produced by the first strain sensor and by the second strain sensor, wherein the first base plate and the second base plate are disposed such that the first longitudinal axis is arranged orthogonally or essentially orthogonally with respect to the second longitudinal axis.
2. The sensor system according to claim 1, wherein the first base plate and/or the second base plate include a first set of strain sensors comprising the first strain sensor and the second strain sensor, the second strain sensor being arranged orthogonally or essentially orthogonally with respect to the first strain sensor.
3. The strain sensor system according to claim 2, wherein the first base plate and/or the second base plate further include a second set of strain sensors, the second set comprising a third strain sensor and a fourth strain sensor, the fourth strain sensor being disposed essentially orthogonally with respect to the third strain sensor.
4. The strain sensor system according to claim 3, wherein the first strain sensor and/or the first set of strain sensors are/is disposed on a top side of the respective first base plate or second base plate; and/or the second set of strain sensors is disposed on a bottom side opposite the top side of the respective first or second base plate.
5. The strain sensor system according to one of claim 2, wherein the first strain sensor of the first base plate and/or the first strain sensor of the second base plate have/has a first electrical connection, the second strain sensor of the first base plate and/or the second strain sensor of the second base plate have/has another first electrical connection, and the first and the second electrical strain sensors have a common second electrical connection.
6. The strain sensor system according to claim 3, wherein the third strain sensor of the first base plate and/or of the second base plate have/has a first electrical connection, the fourth strain sensor of the first base plate and/or of the second base plate have/has another first electrical connection, and the third and the fourth electrical strain sensors have a common second electrical connection.
7. The strain sensor system according to claim 6, wherein the first set of strain sensors and the second set of strain sensors of the first base plate and/or the first set of strain sensors and the second set of strain sensors of the second base plate are electrically connected, wherein the first electrical connection of the first strain sensor and the first electrical connection of the third strain sensor are connected and the first electrical connection of the second strain sensor and the first electrical connection of the fourth strain sensor are connected.
8. The strain sensor system according to claim 1, wherein the first base plate and the second base plate have identical elongate shapes.
9. The strain sensor system according to claim 1, wherein the first base plate and the second base plate are made of the same material.
10. The strain sensor system according to claim 1, wherein the first base plate and the second base plate each have a length l, wherein a maximal distance between the first base plate and the second base plate is at most 1, at most ½, or at most ⅓.
11. The strain sensor system according to claim 3, wherein the first strain sensor and/or the second strain sensor and/or the third strain sensor and/or the fourth strain sensor of the first base plate and/or the first strain sensor and/or the second strain sensor and/or the third strain sensor and/or the fourth strain sensor of the second base plate are each configured to measure a strain in the respective base plate on which they are mounted.
12. The strain sensor system according to claim 3, wherein the control unit is connected to the first strain sensor and/or the second strain sensor and/or the third strain sensor and/or the fourth strain sensor of the first base plate and/or is connected to the first strain sensor and/or second strain sensor and/or the third strain sensor and/or the fourth strain sensor of the second base plate; and wherein the control unit is configured to receive measurement data of the respective strain sensor and configured to process measurement data produced by the respective strain sensor, such as to compare measurement data of the respective strain sensor of the first base plate with the measurement data of the respective strain sensor of the second base plate, and/or to compare the measurement of a combination of strain sensors on the first base plate with the same combination of strain sensors on the second base plate.
13. The strain sensor system according to claim 12, wherein the control unit is configured to determine, based on the measurement data of the respective strain sensor of the first base plate and based on the measurement data of the respective strain sensor of the second base plate, if the measurement data of the respective strain sensor of the second base plate is indicative of an impending tip-over of a vehicle and/or of a load on an axle.
14. The strain sensor system according to claim 12, characterized in that the control unit is configured to adjust the measurement data on which a determination of whether an impending tip-over of a vehicle is based.
15. The strain sensor system according to claim 12, wherein the control unit is configured to adjust the measurement data when a strain measured along the longitudinal axis of the first base plate is identical to a strain measured along a longitudinal axis of the second base plate, wherein the control unit is configured to decrease the determined strain by the identified identical strain value measured along the longitudinal axis of the first base plate and the second base plate.
16. A machine element, such as a vehicle axle, including a strain sensor system according to claim 1.
17. The machine element according to claim 16, comprising a recess, wherein the first and/or the second base plate are/is disposed in the recess.
18. The machine element according to claim 16, wherein the base plates are screwed to the machine element.
Description
BRIEF DESCRIPTION OF THE FIGURES
(1) The accompanying drawings are incorporated herein as part of the specification. The drawings described herein illustrate embodiments of the presently disclosed subject matter, and are illustrative of selected principles and teachings of the present disclosure. However, the drawings do not illustrate all possible implementations of the presently disclosed subject matter, and are not intended to limit the scope of the present disclosure in any way.
(2) In the appended drawings:
(3)
(4)
(5)
DETAILED DESCRIPTION
(6)
(7) The base plates 100 and 200 are made of the same material, in the shown example made of stainless steel. In other examples the base plates may comprise other metallic material (e.g. aluminium and/or cast iron) and/or other types of materials (e.g. plastic).
(8) The second base plate 200 comprises a first strain sensor 201 and a second strain sensor 202 arranged perpendicular with respect to each other. The strain sensors 201 and 202 are mounted on a top side of the base plate 200. The second base plate 200 further comprises a third and a fourth strain sensor 203,204 arranged perpendicular with respect to each other and mounted on a bottom side of the base plate 200 (not shown).
(9) The first base plate 100 comprises a first strain sensor 101 and a second strain sensor 102 arranged perpendicular with respect to each other. The strain sensors 101 and 102 are mounted on a top side of the base plate 102. The first base plate 100 further comprises a third and a fourth strain sensor 103,104 arranged perpendicular with respect to each other and mounted on a bottom side of the base plate 100 (not shown).
(10) The first strain sensor 201 has a first electrical connection 2011 and the second strain sensor 202 has another first electrical connection 2021. The first and the second strain sensors have a common second electrical connection 2012.
(11) The third strain sensor 203 has a first electrical connection 2031 and the fourth strain sensor 204 has another first electrical connection 2041. The third and the fourth strain sensors 203, 204 have a common second electrical connection 2032.
(12) The first strain sensor 101 has a first electrical connection 1011 and the second strain sensor 102 has another first electrical connection 1021. The first and the second strain sensors 101, 102 have a common second electrical connection 1012.
(13) The third and fourth strain sensors 103 and 104 of the first base plate 100 are configured and connected according to the third and fourth strain sensors 203, 204 of the second base plate 200.
(14) The first strain sensor 101 is connected to the third strain sensor 103 via the electrical connection 1011 and the electrical connection 1031. The second strain sensor 102 is connected to the fourth strain sensor 104 via the electrical connection 1021 and the electrical connection 1041.
(15) The first, second, third and fourth strain sensors 201, 202, 203, 204 of the second base plate 200 are connected accordingly.
(16)
(17) In the following, an example calculation is shown.
(18) Considering the layout for the base plate 100, the output voltage is
VO=VB+−VB−=k.Math.VS.sup.4(ϵ.sub.tl−ϵ.sub.tt+ϵ.sub.bl−ϵ.sub.bt)
(19) Wherein:
(20) VO: output voltage, V
(21) VS: supply voltage, V
(22) VB+: voltage at the central point of TOP half bridge
(23) VB−: voltage at the central point of BOTTOM half bridge
(24) k: gauge factor, −
(25) ϵ: mechanical strain, −
(26) Wherein the subscripts means:
(27) tl: top side, longitudinal direction
(28) tt: top side, transversal direction
(29) bl: bottom side, longitudinal direction
(30) bt: bottom side, transversal direction
(31) Considering that each strain is composed of a strain due to load and an apparent strain due to temperature:
VO=k.Math.VS.sup.4(ϵ.sub.tlload+ϵ.sub.tltemp−(ϵ.sub.ttload+ϵ.sub.tttemp)+ϵ.sub.blload+ϵ.sub.bltemp−(ϵ.sub.btload+ϵ.sub.bttemp))
(32) Considering an isotropic material, locally the temperature can be considered uniform and the strains are equal. Also, the transversal load can be related with longitudinal via the Poisson coefficient (v):
VO=k.Math.VS.sup.4(ϵ.sub.tlload+ϵ.sub.temp−(−v.sub.steelϵ.sub.ttload+ϵ.sub.temp)+ϵ.sub.blload+ϵ.sub.temp−(−v.sub.steelϵ.sub.blload+ϵ.sub.temp))
(33) Leading to: VO=k.Math.VS.sup.4(1+v.sub.steel)(ϵ.sub.tlload+ϵ.sub.blload)
(34) The top and bottom faces are cancelled out, thus eliminating the pure bending component, as well as apparent strains due to local temperature fluctuations.
(35) The signals from the two baseplates are then acquired and subtracted via software, leading to:
ΔV=VO.sub.L−VO.sub.T=k.Math.VS.sup.4(1+v.sub.steel)(ϵ.sub.Ltlload+ϵ.sub.Lblload−ϵ.sub.Ttlload−ϵ.sub.Tblload)
(36) Where the uppercase subscripts L and T refer to the longitudinal and to the transversal baseplates 100, 200. If each baseplate is deformed by a purely axial (bending is canceled anyway) and by temperature expansion or compression of a supporting machine element (for example, of an arm of an axle):
ΔV=VO.sub.L−VO.sub.T=k.Math.VS.sup.2(1+v.sub.steel)(ϵ.sub.Lload+ϵ.sub.Ltemp−ϵ.sub.Tload−ϵ.sub.Ttemp)
(37) Considering again Poisson and the approximation of uniform temperature and isotropic material:
ΔV=VO.sub.L−VO.sub.T=k.Math.VS.sup.2(1+v.sub.steel)(1+v.sub.cast iron)ϵ.sub.load
(38) This additional operation approximately compensates for local (in the surrounding of the baseplates) temperature fluctuations while retaining traction and compression components. This traction and compression strains on the surface on the baseplates 100 and 200, (and on a surface of an axle or an arm on which the base plates are mounted) are mainly, but not only, caused by the bending of the axle/arm that, ultimately, is caused by the vertical load applied to it. In a stationary telehandler, for example, when a vertical load of a rear axle diminishes and approaches zero, it means that there is an incipient tipping-over.
(39) Forces other than pure vertical load may cause the same traction and compression on the baseplates, for instance the ones induced by the steering system.
(40) Non-local temperature fluctuations may not be compensated. For instance, if the tires are fixed and the axle is warmed or cooled, a bending (a real strain) of the axle itself is induced because its deformation is constrained. This will cause a traction or compression in the surface of the arm or axle (and baseplates) that will be measured by the sensor. If, on the other end, the axle or arm is warmed or cooled without constraining its deformation (an apparent strain), this will not be measured by the sensor, because it is approximately the same in every direction.
(41) A resulting delta value may then normalized using two reference points derived from a calibration process, where the axle is characterized by acquiring the same delta value in two loading conditions:
(42) Max load on the axle: boom retracted, lowered, unloaded
(43) Unloaded axle: boom extended, lowered, loaded, rear wheels suspended.
(44) In
(45)
(46) Throughout this specification relative language such as the words ‘about’ and ‘approximately’ may be used. Unless otherwise specified or described, this language seeks to incorporate at least 10% variability to the specified number or range. That variability may be plus 10% or negative 10% of the particular number specified.
(47) The foregoing description is considered as illustrative only of the principles of the described embodiments. Further, since numerous modifications and changes will readily occur to those skilled in the art, it is not desired to limit the described embodiments to the exact construction and processes shown and described herein. Accordingly, all suitable modifications and equivalents may be considered as falling within the scope of the described embodiments as defined by the claims which follow.