FALL ARREST DEVICE
20230050164 ยท 2023-02-16
Inventors
Cpc classification
International classification
Abstract
The present invention provides a fall arrest device comprising: a. a bracket having a first engagement element and a second engagement element aligned with the first engagement element; b. a cantilever element comprising: i. a first bracket engagement portion for fixed engagement with the first engagement element; ii. a second bracket engagement portion aligned with the first bracket engagement portion, the second bracket engagement portion for pivotable engagement with the second engagement element; iii. a load application point located distal to the first and second bracket engagement portions; and iv. a first deformable element located between the load application point and the first bracket engagement portion, the deformable element being dimensioned for plastic shock absorbing deformation or fracture on application of a predetermined load at the load application point.
Claims
1. A fall arrest device comprising: a. a bracket having a first engagement element and a second engagement element aligned with the first engagement element; b. a cantilever element comprising: i. a first bracket engagement portion for fixed engagement with the first engagement element; ii. a second bracket engagement portion aligned with the first bracket engagement portion, the second bracket engagement portion for pivotable engagement with the second engagement element; iii. a load application point located distal to the first and second bracket engagement portions; and iv. a first deformable element located between the load application point and the first bracket engagement portion, the deformable element being dimensioned for plastic shock absorbing deformation or fracture on application of a predetermined load at the load application point.
2. A fall arrest device as claimed in claim 1, wherein the first deformable element is of reduced dimension compared to portions of the cantilever element located between the first deformable element and the first bracket engagement portion, and between the deformable element and the load application point.
3. A fall arrest device as claimed in claim 1, wherein the load application point and the first bracket engagement portion define an axis X and wherein the deformable element is aligned with axis X.
4. A fall arrest device as claimed in claim 1, wherein the load application point and the first bracket engagement portion define an axis X and wherein the first deformable element deviates from axis X.
5. A fall arrest device as claimed in claim 4, wherein the first deformable element is substantially S shaped.
6. A fall arrest device as claimed in claim 1, wherein, when the first deformable element comprises a deformable element dimensioned for plastic shock absorbing deformation, the cantilever element further comprises a second deformable element located between the load application point and the first bracket engagement portion, the second deformable element being dimensioned for fracture on application of a predetermined load at the load application point.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
DETAILED DESCRIPTION
[0031]
[0032] Bracket 12 comprises a first engagement element 16 and a second engagement element 18 aligned with the first engagement element 16 along first axis X.
[0033] Cantilever element 14 comprises a first bracket engagement portion 20 and a second bracket engagement portion 22 and a load application point 24 located distal to both the first and second bracket engagement portions 20, 22.
[0034] First bracket engagement portion 20 is secured to first engagement element 16 and is fixed in position relative to bracket 12.
[0035] Second bracket engagement portion 22 is engaged with second engagement element 18 and is pivotable relative to bracket 12 about second engagement element 18.
[0036] Cantilever element 14 is further provided with a first deformable element 26 located between the load application point 24 and the first bracket engagement portion 20. In the embodiment shown in
[0037] In the embodiment shown in
[0038] Cable securing element 34 of cable 32 is then engaged with cantilever element at load application point 24. The user is secured to the cable 32 at an opposing end (not shown).
[0039] Provided the load through load application point 24 does not exceed the predetermined load, the cantilever element 14 will remain in its original fixed engagement with the bracket 12, with both first bracket engagement portion 20 and load application point 24 aligned along axis Y.
[0040] However, if the user falls, when they reach the extent of the cable 32 to which they are attached, a load through the load application point 24 will exceed the predetermined load, the predetermined load selected to be less that the load exerted by the weight of a user at the full extent of the cable 32, the deformable element 26 will fracture, allowing cantilever element 14 to pivot about second engagement element 18, thus reducing the moment at load application point 24, thereby reducing the stresses at bracket and the structure to which it is attached. This serves to protect the bracket and structure from potential damage. It is to be appreciated that the bracket and the portion of the structure to which it is attached may be weaker than the rest of the structure and thus may not be strong enough to take the stress applied by the fallen load at a distance so far out from the core of the structure. Therefore, by including a deformable element 26 that fractures when the load through the load application point exceeds a predetermined load, the fracture and consequential pivoting of the second engagement element 18 effectively reduces the distance the cantilever element extends from the bracket, thereby bringing the stresses within a threshold that can be handled by the structure to which the bracket is attached.
[0041]
[0042] If the user should fall and a load the same as or exceeding the predetermined load be applied through load application point 24, first deformable element 26 will fracture as shown in
[0043]
[0044] When a predetermined load is applied at load application point 24, deformable element 26 will undergo plastic shock absorbing deformation as shown in
[0045] Although the deformable element 26 of cantilever element 14 in
[0046]
[0047] On application of a predetermined force through load application point 24, second deformable element 36 would fracture, followed by plastic shock absorbing deformation of first deformable element 26 to allow pivoting of cantilever element 14 about second engagement element 18, thus absorbing energy and reducing the applied moment, which in turn reduces stresses on the bracket and the structure to which it is secured. This two-step deformation i.e., fracture followed by plastic shock absorbing deformation provides a slightly slower deformation than that observed with the cantilever element 12 of