Attachment Point
20230202805 · 2023-06-29
Inventors
Cpc classification
F16G15/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16G15/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B66C1/66
PERFORMING OPERATIONS; TRANSPORTING
F16G13/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
An anchor point comprising a connecting means for connecting the anchor point to an object to be fixed and/or handled, with an eyelet bend connected to a base body and a connecting eyelet hooked into the eyelet bend for connecting an anchoring or lashing means. The connecting eyelet has a smaller radius in its bend hooked into the eyelet bend than in its other bend, and carries two dividing elements opposite one another with respect to their longitudinal axis projecting into the interior space enclosed by the connecting eyelet. The connecting eyelet carries a projecting movement limiting stop with respect to its central fiber opposite the dividing elements, in each case on the outside for limiting the depth of immersion of the connecting eyelet in the eyelet bend together with the dividing elements which project on the inside and are likewise designed as movement limiting stops. Due to the movement limiting stops, the maximum diameter of the section of the connecting eye carrying the movement limiting stops is greater than the clear width of the eyelet bend, wherein the contour forming the movement limiting stops is shaped so that there is essentially only line contact between the movement limiting stops and the eyelet bend in the stop arrangement.
Claims
1-11. (canceled)
12. An anchor point, comprising: a connecting means for connecting the anchor point to an object to be fixed and/or handled, an eyelet bend connected to a base body, and a connecting eyelet hooked in the eyelet bend for connecting an anchoring or lashing means, wherein the connecting eyelet has two bends, and the connecting eyelet has a smaller radius in its bend hooked into the eyelet bend than in its other bend, wherein the connecting eyelet carries two dividing elements which are opposite one another with respect to their longitudinal axis and project into an interior space enclosed by the connecting eyelet, wherein the connecting eyelet carries, opposite the dividing elements with respect to a central fiber of the connecting eyelet, in each case on an outside thereof a projecting movement limiting stop for limiting the depth of immersion of the connecting eyelet in the eyelet bend together with the dividing elements which project on the inside and are likewise designed as movement limiting stops, wherein, due to the movement limiting stops, a maximum diameter of the section of the connecting eye carrying the movement limiting stops is greater than a clear width of the eyelet bend, and wherein a contour forming the movement limiting stops is shaped such that there is essentially only line contact between the movement limiting stops and the eyelet bend in a stop arrangement.
13. The anchor point of claim 12, wherein at least one of the contours of the eyelet bend and the movement limiting stop of the connecting eyelet contacting each other in the stop arrangement is designed rounded.
14. The anchor point of claim 12, wherein the movement limiting stop projecting into the interior space of the connecting eyelet projects further from the respective section of the connecting eyelet than the movement limiting stop on the outside.
15. The anchor point of claim 12, wherein the two bends of the connecting eyelet are connected by legs of the connecting eyelet, and the movement limiting stops are arranged in an end section of the legs facing the bend with the smaller radius.
16. The anchor point of claim 12, wherein, in a region of the movement limiting stops, a cross-sectional area of the respective section of the connecting eyelet is not larger than in sections of the connecting eyelet adjacent thereto.
17. The anchor point of claim 12, wherein two movement limiting stops belonging to one another in one leg of the connecting eyelet merge into one another.
18. The anchor point of claim 17, wherein the connecting eyelet section has a uniform cross-sectional surface in the region of the movement limiting stops lying opposite one another on the inside or outside.
19. The anchor point of claim 12, wherein legs of the connecting eyelet connecting the bends are designed as straight legs.
20. The anchor point of claim 12, wherein legs of the connecting eyelet connecting the bends are S-shaped.
21. The anchor point of claim 12, wherein the base body carrying the eyelet bend forms an upper part of the anchor point or is part of such an upper part, and wherein the upper part is rotatable relative to a lower part which carries the connecting means.
22. The anchor point of claim 12, wherein the connecting means of the anchor point is designed as a screw bolt.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0013] The present disclosure is described below with reference to the accompanying figures by way of an example embodiment, wherein:
[0014]
[0015]
[0016]
DETAILED DESCRIPTION
[0017] With reference to
[0018] The connecting eyelet 8 is designed to be mirror-symmetrical to the central longitudinal plane marked with the reference sign 12 in
[0019] The connecting eyelet 8 basically has a circular cross-sectional geometry in its bends 9, 10 and its legs 11, 11.1. In the area of its end section facing the bend 10 with the smaller radius, the leg 11 carries a dividing element 13 projecting inwards into the interior space I, the contour of which facing the bend 10 forms a movement limiting stop 14. Together with the dividing element 13.1 of the leg 11.1, the dividing element 13 divides the interior space I of the connecting eyelet 8 into the area in which the eyelet bend 6 is hinged and into the area which is larger in terms of its clear width and in which a crane hook or other lashing means engages or is to be connected. A further movement limiting stop 15 is provided on the outside opposite the dividing element 13 with respect to the virtual central long fiber M of the leg 11, which is shown schematically in
[0020] The contours of the dividing element 13 as well as of the projection 16, which form the movement limiting stops 14, 15, are rounded, and in the illustrated example embodiment without intervening straight sections, in any case without any such sections that would have played a role in the described context. The radius of the concave section of the movement limiting stop 14 merges into the radius of the bend 10.
[0021] Both movement limiting stops 14, 15 have an elongated S-shaped contour towards the bend 10. The amount by which the dividing element 13 projects into the interior space I is several times greater in the illustrated embodiment than the amount by which the projection 16 projects from the lateral surface of the adjacent cylindrical lateral surface of the leg 11.
[0022]
[0023]
[0024] If a tensile force acts on the connecting eyelet 8 of the connection point 1, as shown for example in
[0025] The measures described effectively prevent latching of the connecting eyelet 8 in or on the eyelet bend 6 of the upper part 3.
[0026] In some applications, it is necessary for the anchor point to be loaded with a tensile force acting transversely to the longitudinal axis of the screw bolt for the purpose of handling it. This is easily possible with the anchor point 1 without having to fear that in this position the connecting eyelet 8 will seize in relation to the eyelet bend 6.
[0027] In addition, the connection point 1 shown in the figures is particularly resilient to applied transverse forces without the risk of the upper part 3 being torn out of the lower part 2. This is achieved by the fact that the upper end of the lower part 2 carries a circumferential flange 19 projecting in the radial direction. This has a circular outer contour geometry. The diameter of the flange 19 corresponds to the diameter of the lower contact flange 20 in the illustrated example embodiment, which is clamped with its lower side against the surface of the object to be handled. This flange 19 acts as a reinforcing annular body with respect to the upper end of the lower part 2. This ensures that higher transverse forces can be applied to the upper part without the risk of the upper part being torn out of the receptacle of the lower part or of the receptacle of the upper part tearing open laterally in the lower part.
[0028] For fastening the lower part 2 to an object to be handled, its radially outer lateral surface has end flats 21. In the illustrated example embodiment, these are arranged in the manner of a hexagon. The flange 19 overhangs the end flats 21 in the radial direction, so that this measure not only provides an effective breakaway protection for the upper part 3, but at the same time provides an effective slip-off protection for a tool, typically a jaw fastener, with which the lower part 2 of the anchor point 1 is clamped to an object to be handled.
[0029] The invention is described with reference to an example embodiment. Without departing the scope of the claims, there are numerous further possibilities for a person skilled in the art to implement the same without these needing to be explained or shown in detail in the context of this disclosure.
LIST OF REFERENCE NUMBERS
[0030] 1 Anchor point [0031] 2 Lower part [0032] 3 Upper part [0033] 4 Screw bolt [0034] 5 Threaded section [0035] 6 Eyelet bend [0036] 7 Base body [0037] 8 Connecting eyelet [0038] 9 Bends [0039] 10 Bend [0040] 11, 11.1 Leg [0041] 12 Central longitudinal plane [0042] 13, 13.1 Dividing element [0043] 14 Movement limiting stop [0044] 15 Movement limiting stop [0045] 16 Projection [0046] 17 Surface [0047] 18 Central longitudinal plane [0048] 19 Flange [0049] 20 Contact flange [0050] 21 End flat [0051] I Interior space [0052] M Central fiber