TOWING HOOK
20210146737 · 2021-05-20
Inventors
Cpc classification
B60D1/488
PERFORMING OPERATIONS; TRANSPORTING
B61G1/36
PERFORMING OPERATIONS; TRANSPORTING
B60D1/04
PERFORMING OPERATIONS; TRANSPORTING
B60Y2300/28
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A towing hook arranged on a mining machine, with a first end having a bent portion to allow a towing tool to be connected and a second end having a cylindrical rod. An intermediate part is located between the first and the second end. The towing hook is arranged to be mounted in a through hole in a frame of a machine in order for the first and second ends to be positioned on different sides of the machine frame. The intermediate part is mounted partly in the through hole of the frame, and wherein the longitudinal axis of the cylindrical rod is generally parallel with a longitudinal axis defined through the towing hook representing the force transmitting direction when connecting the towing tool to the bent portion.
Claims
1. A towing hook arranged on a mining machine, the towing hook comprising: a first end having a bent portion arranged to allow a towing tool to be connected; a second end having a cylindrical rod with a longitudinal axis; and an intermediate part located between the first and the second end, wherein the towing hook is arranged to be mounted in a through hole in a frame of a machine in order for the first and second ends to be positioned on different sides of the machine frame and the intermediate part mounted partly in the through hole of the frame, and wherein the longitudinal axis of the cylindrical rod is generally parallel with a longitudinal axis defined through the towing hook representing the force transmitting direction when connecting the towing tool to the bent portion.
2. The hook according to claim 1, wherein the cylindrical rod is connected to a tube extending along the longitudinal axis of the cylindrical rod.
3. The hook according to claim 1, wherein the intermediate part of the hook is mounted freely in the through hole of the machine frame to allow the hook to be moved in relation to the frame.
4. The hook according to claim 1, wherein the hook includes a first stopper element and a second stopper element.
5. The hook according to claim 4, wherein the first stopper element is mounted at the first end of the hook.
6. The hook according to claim 4, wherein the first stopper element is a pin with an axis perpendicular to a surface of the first end of the hook and the axis being parallel to a surface of the machine frame.
7. The hook according to claim 4, wherein the first stopper element is a shoulder located at the first end of the hook toward the intermediate part.
8. The hook according to claims 4 to 7, wherein the second stopper element is mounted at the intermediate part of the hook.
9. The hook according to claim 8, wherein the second stopper element is a shoulder located at the intermediate part toward the second end.
10. The hook according to claim 8, wherein the second stopper element is a pin having a longitudinal axis perpendicular to the longitudinal axis of the cylindrical rod and wherein the intermediate part includes a through hole, which pin is arranged in the through hole.
11. The hook according to claim 10, wherein the second stopper element is mounted in the machine frame.
12. The hook according to claim 1, wherein at least two springs are mounted in connection to the intermediate part, wherein spring extends between the end surface of the intermediate part being connected to the second end of the hook and the machine frame.
13. The hook according to claim 1, wherein the intermediate part is pivotally engaged at a pivoting point with the second end.
14. The hook according to claim 1, wherein the tube is connected to a brake system of the machine.
15. A towing hook system comprising a hook according to claim 1, wherein the system transmits the towing force applied at the bent portion of the first end to the tube connected to the second end, and wherein the tube removes a brake force of the machine.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0025] A specific implementation of the present invention will now be described, by way of example only, and with reference to the accompanying drawings in which:
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS OF THE INVENTION
[0035] The subject invention will be described by way of example with reference to a towing hook facilitating the towing of a mining machine. It will be appreciated that the subject invention is applicable to any type of heavy vehicle for which the brakes are activated when the vehicle is standing still.
[0036] Referring to
[0037] The cylindrical tube 8 is connected to the brake system of the machine via a first and a second port. The first port is located closest to the cylindrical rod 7 and the bent portion 2a, 2b of the hook. The second port is located at the end farthest from the cylindrical rod 7 and the bent portion 2a, 2b of the hook.
[0038] In parallel to the intermediate part 3a springs 5 are arranged. One spring on opposite sides of the intermediate part is disclosed. Any other number of springs may be arranged on each side, such that there is symmetry of springs, the same number of springs on both sides. The springs have a longitudinal extension parallel to the main longitudinal axis L of the hook, at one end mounting to the machine frame 10 and at the other end to an end surface 9a of the second end of the intermediate part 3a, as seen in e.g.
[0039] Referring to
[0040] When mounting the hook in the machine frame 10 the bent portion 2a together with the intermediate part 3a is preferably inserted into the through hole of the machine frame by first inserting the second end of the intermediate part and when the intermediate part is safely arranged in the through hole of the machine frame the plate being the end surface 9a can be connected and rigidly fixed to the second end of the intermediate part, preferably with bolts. The second stopper element 11a will then be arranged in the machine frame 10 and in the elongated through hole 12 accordingly. The second stopper element 11a is able to slide freely in the oblong through hole 12.
[0041] The intermediate part 3a, 3b must be able to slide in the machine frame and thus, allowing the entire hook 1 to move in the longitudinal direction when a towing force is applied and then released. The spacing between the intermediate part and the through hole is small, as the spacing serves to guide the intermediate part and thus, the hook. The intermediate part has a mainly rectangular cross section seen in the longitudinal direction.
[0042] The towing hook is mounted in the frame 10 of a heavy vehicle, of which frame only a small part is shown in
[0043] Referring to
[0044] Identical parts already described in connection to the first embodiment will not be further described.
[0045] Referring to
[0046] When mounting the hook in the machine frame 10 the bent portion 2b together with the intermediate part 3b is preferably inserted into the through hole of the machine frame by first inserting the first end of the intermediate part and when the intermediate part is safely arranged in the through hole of the machine part the first stopper element 4b is firmly arranged in the hook close to the bent portion 2b.
[0047] The bent portion 2a of the hook may have smooth edges as seen in the first embodiment seen in
[0048] Referring to
[0049] Referring to
[0050] When the machine is towed any kind of towing tool can be connected to the bent portion of the hook. The towing tool can either be a corresponding hook of a towing car, a wire loop, shackle or a rope, or the similar. When applying a pulling force at the bent portion 2a, 2b in a longitudinal direction the intermediate part 3a, 3b of the hook 1 can slide in the machine frame 10 such that the pivot point 6 is moved and the cylindrical rod 7 is moved in a longitudinal direction. The springs 5 are compressed. An oil flow is created flowing out of the first port of the cylindrical tube 8 being located closest to the cylindrical rod 7, resulting in the hydraulic circuit releasing the machine brakes. The sliding motion is limited by the first stopper element 4a, 4b and on the other end by the second stopper element 11a, 11b. When applying the towing force, the hook is pulled out in the longitudinal direction until the second stopper element 11a in the form of a pin bears against the end of the oblong through hole 12 most remote from the bent portion 2a. Alternatively, when the second stopper element 11b in the form of a shoulder comes to close contact with the machine frame 10, the hook cannot be pulled out further. When the towing takes place so that the pulling force is transmitted to the machine being moved, the second stopper element 11a, 11b carries the towing force.
[0051] When the towing action is completed and the force applied is removed the springs 5 help the hook to return to the original position as before starting the towing action, the machine frame will then again bear against the first stopping element in either the form of an edge 4a or a pin 4b. This also has the effect that the intermediate part 3a, 3b slides back to its original position and that the cylindrical rod 7 moves back to its original position in a longitudinal direction. Also, the creation of a hydraulic oil flow back into the hydraulic tube via the second port will result in the hydraulic circuit activating the machine brakes.
[0052] Referring to