DEVICE AND METHOD FOR MEASURING DEFORMATION IN METALLIC BARS
20220214157 ยท 2022-07-07
Assignee
Inventors
Cpc classification
G01B2210/58
PHYSICS
G01B5/30
PHYSICS
G01B2210/66
PHYSICS
G01B11/16
PHYSICS
International classification
G01B11/16
PHYSICS
Abstract
A device for measuring strain in an elongated metallic bar, the device comprising a housing arranged to be secured to the metallic bar, at least one optical sensor, at least one light source arranged to emit light across an interior space of the housing, and a thread arranged freely movable within a sheath and having a proximal end extending to a distal end of the housing and a distal free end arranged to be attached to the metallic bar at a distance from the housing such that longitudinal deformation of the metallic bar causes displacement of the proximal end of the thread in relation to the housing, and wherein the at least one optical sensor is configured to measure the displacement of the proximal end of the thread by measuring light emitted from the at least one light source.
Claims
1-20. (canceled).
21. A device for measuring strain in an elongated metallic bar, the device comprising a housing arranged to be secured to the metallic bar, at least one optical sensor, at least one light source arranged to emit light across an interior space of the housing, and a thread arranged freely movable within a sheath and having a proximal end extending to a distal end of the housing and a distal free end arranged to be attached to the metallic bar at a distance from the housing such that longitudinal deformation of the metallic bar causes displacement of the proximal end of the thread in relation to the housing, and wherein the at least one optical sensor is configured to measure the displacement of the proximal end of the thread by measuring light emitted from the at least one light source.
22. The strain measuring device according to claim 21, wherein the housing comprises a plurality of optical sensors and light sources arranged opposite one another along a longitudinal extension of the housing, and wherein the proximal end of the thread is attached to a slidable plug which occludes the interior space of the housing.
23. The strain measuring device according to claim 21, wherein the at least one optical sensor is arranged in a proximal end of the housing.
24. The strain measuring device according to claim 23, wherein the housing is cylindrical and comprises two nested slidable portions, and wherein the proximal end of the thread is attached to a distal portion of the housing.
25. The strain measuring device according to claim 23 wherein the at least one light source is associated with the proximal end of the thread.
26. The strain measuring device according to claim 21, wherein the at least one light source is a light-emitting diode, LED.
27. The strain measuring device according to claim 21, wherein the at least one optical sensor is configured to measure the light intensity of the at least one light source in order to determine the displacement of the proximal end of the thread in relation to the housing.
28. The strain measuring device according to claim 24, wherein the at least one optical sensor and the at least one light source is an optical distance measurement sensor comprising lidar arranged to measure the length of the housing.
29. The strain measuring device according to claim 23, wherein the at least one optical sensor is configured to measure the time-of-flight of a light signal emitted by the at least one light source in order to determine the displacement of the proximal end of the thread in relation to the housing.
30. The strain measuring device according to claim 21, further comprising a microcontroller operatively connected to the strain measuring device and configured to receive displacement values measured by the strain measuring device, wherein the microcontroller comprises means for wireless communication with an external unit.
31. The strain measuring device according to claim 21, further comprising a vibration sensor arranged to measure seismic energy exerted on the metallic bar.
32. The strain measuring device according to claim 21, further comprising one or more conductive wires arranged to be attached to the metallic bar at a distance from the housing to form one or more electrical circuits for determining the integrity of the metallic bar.
33. The strain measuring device according to claim 21, wherein metallic bar is hollow and the hollowness constitutes the sheath in which the strain measuring device is provided.
34. A metallic bar comprising at least one strain measuring device according to claim 21 mounted thereon.
35. The metallic bar according to claim 34, comprising a plurality of strain measuring devices, wherein the distal free ends of the threads of each strain measuring device are attached at different longitudinal positions along the length of the metallic bar.
36. The metallic bar according to claim 34, wherein the metallic bar is a rock bolt, a rebar, a threaded bolt or a friction bolt.
37. The metallic bar according to claim 34, wherein the metallic bar is hollow and the at least one strain measuring device is mounted in an interior cavity of the metallic bar.
38. A method for determining strain exerted on an elongated metallic bar, the method comprising: mounting at least one strain measuring device according to claim 21 on the metallic bar; attaching the distal free end of the thread to the metallic bar at a distance from the housing such that the thread is taut; measuring longitudinal deformation of the metallic bar by means of the at least one strain measuring device; and determining the strain exerted on the metallic bar based on the measured deformation.
39. The method according to claim 38, further comprising: determining seismic energy exerted on the metallic bar based on vibration measured by a vibration sensor of the at least one strain measuring device.
40. The method according to claim 38, further comprising: attaching one or more conductive wires between the at least one strain measuring device and the metallic bar at a distance from the housing to form one or more electrical circuits; and determining the integrity of the metallic bar by passing electrical current through the one or more electrical circuits.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0033] The invention is now described, by way of example, with reference to the accompanying drawings, in which:
[0034]
[0035]
[0036]
[0037]
DESCRIPTION OF EMBODIMENTS
[0038] In the following, a detailed description of a strain measuring and monitoring device according to the present disclosure is presented. In the drawing figures, like reference numerals designate identical or corresponding elements throughout the several figures. It will be appreciated that these figures are for illustration only and are not in any way restricting the scope of the invention.
[0039] Although the example embodiments of the strain measuring and monitoring device are discussed in examples below with respect to rock bolts, it will be appreciated by those of ordinary skill in the art that the strain measurement and monitoring device of the present disclosure can be used in association with any sort of metallic bar structure, such as concrete rebars, friction bolts, threaded bolts, cables and other flexible steel tendons such as cable bolts and is not limited to the measurement and monitoring of strain in rock bolts. In the following, the terms are used interchangeably and should not be construed as limiting the scope of protection.
[0040] In
[0041] In order to monitor the condition of the reinforcement and the rock wall 1, a strain measuring device according to the present disclosure may be installed on the rock bolt 10. Turning now to
[0042] The strain measuring device 20 further comprises a thread 17, preferably non-conducting, arranged freely movable in a sheath 11 adapted to extend along the length of the rock bolt 10, as illustrated in
[0043] The proximal end 18 of the thread 17 is attached to the distal portion 28 of the housing 25 in a distal end 29 thereof. In one embodiment, the housing 25 is fully or partially arranged within the sheath 11. Alternatively, it is foreseen that the sheath 11 is attached to the housing 25. The distal free end (not shown) of the thread 17 is configured to be attached to the rock bolt 10 at a distance from the housing 25 in such a way that longitudinal deformation of the rock bolt 10 causes displacement of the thread 17 and thus the distal portion 28 of the housing 25 attached thereto, as illustrated by the arrow in
[0044] As an alternative to the time-of-flight measurement mentioned above, it is foreseen in the present disclosure to determine a distance by using the intensity of the light detected by the optical sensor 15, also known as irradiance which is defined as the radiant flux (power) received by a surface per unit area with the SI unit watt per square metre (W/m.sup.2). It is well known that the intensity of light emitted by a light source decreases in proportion to the distance squared. By comparing the intensity (irradiance) of the light detected by the optical sensor 15 to the known intensity of the light emitted by the light source 16, it is possible to calculate the distance travelled by the light from the difference. When the difference in intensity varies, the optical sensor 15 can measure changes in length of the housing indicated by the dotted line in
[0045] Turning now to
[0046] Similar to the embodiment of
[0047] Referring now to
[0048] Slidably arranged in the housing 45 is a plug 42 which is attached to the proximal end 18 of the thread 17. The plug 42 is dimensioned with a diameter adapted to the inner diameter of the housing 45 such that the plug 42 occludes the interior space of the housing 45. Light emitted by the light sources 16a-d will then be blocked and thus does not reach the oppositely arranged optical sensors 15a-d. Since the position of each pair of optical sensor 15a-d and light source 16a-d is known, this configuration can be used to determine displacement of the proximal end 18 of the thread 17 in relation to the housing 45, and thus the strain exerted on the metallic bar 10. In the situation illustrated in
[0049] Major advantages over the prior art, apart from the simplicity of the solution with the optical sensor 15 to reduce the cost of the strain measuring device 20; 30; 40, include precision in measuring longitudinal deformation of the rock bolt 10 as well as reduced cost due to lower energy consumption. Contrary to e.g. inductive sensors as known in the art, the strain measuring device 20; 30; 40 according to the present disclosure only requires intermittent power of the light source 16 and optical sensor 15 to provide accurate measurements of longitudinal deformation in the rock bolt 10 based on the relative displacement of the proximal end 18 of the thread 17 with respect to the optical sensor 15.
[0050] Reverting to
[0051] In order to provide additional information about the state of the rock wall 1, the strain measuring device according to the present disclosure may be provided with additional sensors. In one embodiment, the strain measuring device further comprises a vibration sensor (not shown) adapted to measure seismic energy exerted on the rock bolt 10. Thus, the vibration sensor provides information about seismic activity in the rock wall 1 which enables prediction of dangerous situations, e.g. with breaks of the rock bolt 10.
[0052] In another embodiment, the strain measuring device further comprises one or more conductive wires which may be attached between the housing 25; 35 and different positions along the longitudinal extension of the rock bolt 10 to form an electrical circuit. In this way, the integrity of the rock bolt 10 may be monitored by intermittently passing current through the electrical circuit. In case of breakage of the rock bolt 10 due to forces exerted thereon by the rock wall 1, the electrical circuit will be broken such that no current may pass through it. With a plurality of such electrical circuits attached at different longitudinal positions along the length of the rock bolt 10, it is possible to determine at which longitudinal position the breakage has occurred.
[0053] Optionally, foreseen in the present disclosure is a reinforcement system for a rock wall in e.g. a mine or tunnel comprising a plurality of rock bolts, each having one or more strain measuring devices according to the present disclosure mounted thereon.
[0054] Preferred embodiments of a device and method for measuring strain in metallic bars have been disclosed above. However, a person skilled in the art realises that this can be varied within the scope of the appended claims without departing from the inventive idea.
[0055] All the described alternative embodiments above or parts of an embodiment can be freely combined or employed separately from each other without departing from the inventive idea as long as the combination is not contradictory.