The invention relates to vertically mounted battery terminal mounting structures for attaching to a battery terminal.
Current prior art battery connections may include various layouts or structures to attach to a battery terminal post. For example, horizontal and diagonal bolt assemblies may be coupled to a clamp to tighten the clamp about the terminal post. Such structures may have the problem of uneven attachment forces being applied to the clamp allowing the connection to come loose from a battery post. Further, such prior art battery connections may have limitations due to the shape of the structures. For example, batteries may include various walls, covers or other surfaces in proximity to the battery post that limit the accessibility of a tool to tighten the bolt of prior art structures.
Additionally, battery type connections may include vertical bolt assembly type mechanisms. In such assemblies, a clamping band may be positioned about the battery post with one side of the band being fixed relative to a component and the other side being movable by translation of a nut or post to apply a clamping force about the band. Such assemblies are complicated and do not adequately transfer an equal force about the band attached to the battery post.
Further designs may include multiple wedge blocks that are translated against each other to apply a clamping force about a clamp which is positioned around the terminal post. Again, such designs may lead to inadequate translation of a force from the nut torque to the clamping mechanism positioned around the battery post such that an inadequate amount of clamping force is provided. Further, such mechanisms may include multiple components resulting in a complicated assembly process and an increased part cost.
There is therefore a need in the art for an improved battery terminal connection assembly that may be mounted vertically and may attach additional components to the battery post. There is also a need in the art for an improved vertically mounted terminal mounting assembly that has a limited number of components and is easy to assemble for various types of batteries. There is also a need in the art for a vertically mounted battery terminal mounting assembly that has a small footprint and does not block easy connection of the component to a battery post for various types of batteries including batteries positioned in a relatively restricted space.
In one aspect there is disclosed a vertical mounted battery terminal mounting assembly that includes a battery having a terminal post. A post attachment structure including a contact portion is formed with a wedge translation portion. The contact portion is shaped to surround the terminal of the battery. The wedge translation portion includes opposing walls joined at an angled slide surface. An internal wedge is positioned within the terminal post structure. The internal wedge includes an u-shaped body having opposing side walls coupled by an angled wall. The opposing walls include terminal contacts extending therefrom. A core bolt is rotationally fixed and extends through the post attachment structure and extends in a cavity defined by the separated opposing side walls of the internal wedge. A nut is threaded on the core bolt and contacts an upper edge of the internal wedge. The angled wall of the internal wedge engages the angled slide surface of the post attachment structure wherein rotation of the nut imparts a downward force on the internal wedge wherein contact of the angled wall and the slide surface evenly translates the downward force to a horizontal force moving the terminal contacts into engagement with the terminal post.
In another aspect, there is disclosed a vertical mounted battery terminal mounting assembly including a battery having a terminal post. The mounting structure includes a post attachment structure including a contact portion shaped to engage the terminal post of the battery. The post attachment structure includes a wedge translation portion having an angled slide surface. An internal wedge is positioned within the post attachment structure. The internal wedge includes an angled wall and terminal contacts. A core bolt is rotationally fixed and extends through the post attachment structure and the internal wedge. A nut is threaded on the core bolt and contacts an upper edge of the internal wedge wherein the angled wall of the internal wedge engages the angled slide surface of the post attachment structure. Rotation of the nut imparts a downward force on the internal wedge wherein contact of the angled wall and the slide surface evenly translates the downward force to a horizontal force wherein the terminal contacts and the contact portion engage the battery terminal post.
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In one aspect, the contact portion 28 may include a ring shaped wall 36 having an open top and bottom 38, 40. The ring shaped wall 36 may include a neck 42 that transitions to the wedge translation portion 30. The neck 42 may include cut out slots 44 formed therein that accommodate terminal contacts 46, as will be discussed in more detail below.
The mounting assembly 20 also includes an internal wedge 48 that is positioned within the post attachment structure 26. The internal wedge 48 includes an u-shaped body 50 having opposing side walls 52 coupled by an angled wall 54. The opposing side walls 52 include terminal contacts 46 extending therefrom. The mounting assembly 20 also includes a core bolt 56 that is rotationally fixed and extends through the post attachment structure 26 and into a cavity 58 defined by the separated opposing side walls 52 of the internal wedge 48. In one aspect, the core bolt 56 may be rotationally fixed by securing a head 60 of the core bolt 56 such that it cannot spin or rotate, as will be discussed in more detail below.
A nut 62 is threaded on the core bolt 56 and may contact an upper edge 64 of the internal wedge 48. A washer 66 may be positioned about the core bolt 56 with the nut 62 contacting the washer 66 which in turn contacts the upper edge 64 of the internal wedge 48. The outer surface of the angled wall 54 of the internal wedge 48 engages the angled slide surface 34 of the post attachment structure 26 such that rotation of the nut 62 imparts a downward force 70 on the internal wedge 48 wherein contact of the angled wall 54 and the slide surface 34 evenly translates the downward force 70 to a horizontal force 72 moving the terminal contacts 46 into engagement with the terminal post 24.
In one aspect, the angle of the angled wall 54 of the internal wedge 48 and the angled slide surface 34 may be from 15 to 25 degrees as measured from a vertical axis. The angle of the components when in the unengaged state may allow for a vertical translation of the nut resulting in a horizontal translation of the contacts such that they securely and evenly engage the terminal post 24.
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