The present invention relates to a gear reduction system, and more particularly, to a power driven gear reduction system configured for use with a chain binder, for facilitating efficiency and ease in extending and retracting the chain binder.
Chain binders, also known as ratchet binders, are generally used in the trucking industry to secure loads for transporting. Most binding systems connect to a chain or strap that engages with the cargo. The conventional process of binding a load requires that the user first extend the binder, then hook the binder to a chain or strap engaged with the load. Thereafter, the user retracts the binder using a lever to tighten the straps. Rotating the lever causes one or more binder shaft members to rotate and pull the straps and/or chains in towards the binder, thereby tightening the load to a surface.
One disadvantage of the conventional binding system is that a kink in the chain or a wedge can break loose as the binder shaft runs out of threads. Additionally, the manual labor used to tighten the load with the lever can be time consuming and labor intensive. It is therefore advantageous to reduce the time and manual effort typically expended for ratcheting the binder.
Accordingly, a binding system that requires minimal operator effort is desired.
The reduction gear box for a chain binder generally includes a housing member, a nozzle on the housing member to which a power tool may be connected, and an opening in the housing member within which the shaft of a chain binder may extend. The housing member includes a worm gear assembly and a main gear assembly therein. The worm gear assembly is in communication with the main gear assembly such that rotation of the worm gear assembly causes the main gear assembly also to rotate. In use, a shaft portion of a chain binder can be positioned within the housing opening, in communication with the main gear assembly. The power tool can be operated to rotate the worm gear assembly, and thereby effectuate rotation of the main gear assembly to extend or retract the chain binder in communication therewith.
These and other features of the present invention will become readily apparent upon further review of the following specification and drawings.
Referring to
As illustrated in
A fifth side wall member 116 extends between the first and second wall members 104, 106, as well as the third and fourth side wall members 108, 110. The opening 114 is opposite the fifth side wall member 116, as shown in
The first and second side wall members, 104, 106 each have a generally arcuate-shaped groove, 118a and 118b respectively, at one end. The grooves 118a, 118b are in alignment with each other and are configured to provide a support surface for the shaft of the binder B. As illustrated, the housing member 102 may further include interior wall members, e.g., interior support wall members 126a, 126b, respectively, inside the housing member 102, generally parallel to the first side wall member 104 and second side wall member 106. The interior support wall members 126a, 126b may include respective grooves 118c, 118d, in alignment with grooves, 118a and 118b, to provide further support for the shaft of the binder B.
As shown in
As illustrated in
The worm gear 134 is positioned proximate the second gear assembly 132 such that the teeth 136 operatively engage the grooves 144 of the wheel 138. The wheel 138 is fixedly attached to the main shaft 140, such that rotation of the wheel 138 initiated by rotation of the worm gear 134 rotates the shaft member 140. Thus, as the worm gear assembly 130 is activated by the power tool PT, the worm gear assembly 130 operatively engages the main gear assembly 132 transferring rotational power from the power tool to the shaft member 134 and ultimately to the first gear member 142.
Referring to
It is to be understood that the present invention is not limited to the embodiments described above, but encompasses any and all embodiments within the scope of the following claims.