1. Technical Field
The present invention relates to a latching element for a battery pack of an electrical tool. More particularly, the present invention relates to engage a battery pack into a groove formed in a distal end of a handle of the electrical tool, and more particularly, to a latching element positioned in the groove of the battery pack, as well as to a button and a pushing element connected to the latching element.
2. Related Art
The latching mechanism of a battery pack in a conventional electrical tool, referring to U.S. Pat. No. 5,213,913 and U.S. Pat. No. 6,326,101, includes a groove formed on an end portion of the handle of the electrical tool and a resilient button respectively formed on two sides of the battery pack, and a latching element is positioned on a top of the button to allow the top of the battery pack to be received into the groove. The latching element is driven by a resilient member to hold on to the inner sidewall of the groove to position the battery pack to supply power to the electrical tool via the handle. By pressing the button, the latching element can be released from the inner sidewall to release the battery pack. However, the loss of elasticity of the resilient member motivating the button and the latching element often occurs after a long time use, which may cause the latching element to come loose from the groove; and as the button and the latching element do not have any specific axle or track, and therefore, operation thereof can be a problem.
Recently, U.S. Pat. No. 5,792,573 and US patent application No. 2008207026 disclose a latching mechanism for a battery pack of a electrical tool, which mainly comprises two corresponding open tracks formed on the inner sidewall of the groove and protruded strips positioned respectively on both sides of the battery pack for fitting into the tracks so that the battery pack can slide along the tracks in the groove. A resilient button is positioned on an end portion of the handle and a latching element is positioned on the button, the latching element is driven by a resilient member to hold a top of the battery pack for positioning the battery pack. By pressing the button, the latching element can be released to release the battery pack. However, the loss of elasticity of the resilient member motivating the button and the latching element often occurs after a long time use, which may cause the latching element to come loose from the groove.
U.S. Pat. No. 7,671,562 discloses another structure of a latching mechanism for the battery pack of the electrical tool, which is different from the two above mentioned U.S. Pat. No. 5,792,573 and US patent No. 2008207026. The battery pack has a latching element formed on a top thereof and a button formed on a side thereof. The latching element can be driven by the button used for holding an end of the handle to position the battery pack. By pressing the button, the end of the handle is released from the latching element to release the battery pack. However, the connection between the button and the latching element is not clearly and sufficiently disclosed in this patent.
The present invention provides a structure of a latching mechanism for the battery pack of an electrical tool. The battery pack can be positioned by restricting two corresponding positions of a resilient member, and thereby increase the lifespan of the resilient member and prevent the battery pack from coming loose. The structure of the latching mechanism is different compared to the above mentioned U.S. Pat. Nos. 5,213,913, 6,326,101, 5,792,573, 7,671,562 and US patent application No. 2008/0207026.
The latching mechanism for a battery pack of an electrical tool comprises a base formed in the battery pack and is received in a groove formed on a distal end of a handle of the electrical tool. The latching mechanism comprises: a button, slidingly positioned in the base in an elastic load fashion, wherein an inner portion and an outer portion are respectively formed on two sides of the button, and the button will move back and forth along a path within the base by a pressing force applied on the outer portion of the button; two latching elements, respectively slidingly positioned in the base along a moving path, and proximate to an inner portion, an inner sidewall of the base restricting the latching elements to move along the moving path in a vertical direction, thereby enabling the latching elements to move and protrude out of two sides of the base; and two elastic pushing elements, respectively positioned between the inner portion and the latching elements; the elastic pushing elements move back and forth along with the button, wherein by moving the latching elements back and forth, the latching elements can respectively buckle to two inner sidewalls of the groove or release therefrom.
Accordingly, the button and the latching element respectively carry the elasticity of a resilient element and the elastic force along a single direction, and thus make the button particularly drive the elastic pushing elements to move back and forth along the path. Accordingly, the elastic pushing element particularly drives the latching element to move back and forth along a vertical direction. The two latching elements are used to be restricted on the two sides of the base symmetrically in order to position the battery pack. Accordingly, in the principle of providing different technology compared to the prior arts, the present invention comprises two elastic elements positioned therein to increase the lifespan thereof, as well as increase the smoothness while pressing the button to release the battery pack from the latching element, and the stability of the latching element for the battery pack can be increased.
The present invention also comprises: two corresponding open tracks formed on two sides of the groove; a protruded strip is formed on each side of the base for being inlayed into the track, and thereby allows the base to slide within the groove along the tracks; and two sides of the inner sidewall of the groove have two corresponding open buckling grooves; the latching elements exposed out of the two sides of the base and inlayed into the buckling groove are buckled to the inner sidewalls of the groove.
The base comprises an opening on a bottom portion exposed out of the groove, and a path is formed between a top and a bottom of base to allow the button slide up and down within the base. The inner portion is positioned on a top of the button and the outer portion is positioned on a bottom of the button and exposed out of the base through the opening.
A spring is positioned between the button and the inner sidewall of the base, and the button has elasticity provided by the spring. The button has a positioning groove formed on a top thereof, and the spring is positioned between the positioning groove and the inner sidewall of the base to drive the button to move downwards.
Along the path on the two sides of the inner sidewall of the base, a sliding track is vertically formed, and a through opening is formed on the two sides of the base connecting to the sliding track; and the latching element is positioned to slide within the sliding track and restricted by the inner sidewall of the base.
The latching element has a guiding groove formed vertically along the path. A track is formed vertically along the path respectively on the two sides of the inner sidewall of the base. The latching element is positioned on the track through the guiding groove, and thereby enable to slide along the path back and forth vertically.
A diagonal through hole is formed on the latching element to provide the latching element movably concealing onto the pushing element.
The latching element has a buckling portion extending along the path vertically, and the buckling portion can move to the outer part of the base along with the latching element. The buckling portion has a slope facing upwards and a back facing the button.
The pushing element is positioned in the inner portion and extends along the path respectively and declining towards two sides of the base. The pushing elements are positioned in a V shape.
The pushing element comprises more than one bent portion capable of accumulating elasticity in order to increase the elasticity of the pushing element.
The pushing element is formed as a one-piece element and positioned on two distal ends of a resilient element, which is bent in a V shape. The button has a space inlayed with the resilient element.
The electrical tool can be an electrical screw gun, an electrical staple gun, an electrical screw driver, an electrical driller or an electrical impact wrench.
These and other features and advantages of the various embodiments disclosed herein will be better understood with respect to the following description and drawings, in which like numbers refer to like parts throughout, and in which:
According to the above depiction, the latching mechanism comprises a button 3, two latching elements 5 and two elastic pushing elements 41. The button 3 has elasticity to position and slide in the chamber 22 of the base 20 (referring to
The groove 12 comprises two corresponding open buckling grooves 122 formed on two inner sidewalls, and the buckling grooves 122 are connected to the buckling track 121. The latching elements 5 are respectively positioned in the chamber 22 of the base 20 positioned on the two sides of the path 30 close to the inner portion 31. The chamber 22 of the base 20 restricts the latching element 5 from moving along a direction perpendicular to the path 30 thus moving the latching element 5 towards the outer portion of the two sides of the base 20 (as shown in
The pushing elements 41 are respectively positioned between the inner portion 31 and the latching element 5 (referring to
More specifically, the latching element 5 can have a diagonal through hole 52 connecting the top and the bottom of the latching element 5. The latching elements 5 can respectively movably conceal onto the pushing element 41 through the through hole 52. Thus, the pushing element 41 can move back and forth along the button 3 (as shown in
The above elements in the embodiment of the present invention, when base 20 is received into the groove 12 without touching the button 3 (as shown in
To change the battery pack 2, the button 3 is pressed (referring to
To reload the battery pack 2, the button 3 is pressed upwards (as shown in
Accordingly, the button 3 and the latching element 5 respectively carry the elasticity of the spring and the V shape element, as well as carry the elasticity along a single direction, and make the button 3 drive the pushing element 41 move back and forth along the path 30, and to make the pushing element 41 drive the latching element 5 move back and forth vertically along the path 30, and use the two latching elements 5 to restrict the two corresponding positions of the two sides of the base 20 to position the battery pack 2. Therefore, the spring and the other resilient element in the present invention substantially increase the lifespan thereof, and increase the smoothness of pressing the button 3 to release the battery pack 2 from the latching element 5, and as well as increase the stability of the buckling state of the latching element 5 to the battery pack 2 to effectively prevent the battery pack 2 from coming loose.
The above description is given by way of example, and not limitation. Given the above disclosure, one skilled in the art could devise variations that are within the scope and spirit of the invention disclosed herein, including configurations ways of the recessed portions and materials and/or designs of the attaching structures. Further, the various features of the embodiments disclosed herein can be used alone, or in varying combinations with each other and are not intended to be limited to the specific combination described herein. Thus, the scope of the claims is not to be limited by the illustrated embodiments.