This application claims the benefit of provisional patent application 63/330,353 filed Apr. 13, 2022, titled Radius Adjustment Apparatus for Use with a Grinding Machine, the entirety of which is incorporated herein by reference.
This invention relates generally to machines for grinding and, more particularly, to a radius adjustment apparatus for selectively adjusting an arc of a bearing rail upon which a carriage reciprocates as a grinding machine grinds a workpiece. Accordingly, the workpiece may be grinded in a spherical or selected radius in correlation to an arc imparted on the bearing rail.
A grinding machine, often referred to simply as a grinder, is one of power tools or machine tools used for grinding. It is a type of machining using an abrasive wheel as the cutting tool. Grinding machines remove material from the workpiece by abrasion. Typical grinding devices simply remove irregularities, cracks, debris, and other abrasions from a planar surface and then leave a new and cleaner rectangular surface.
Although presumably effective for their intended purposes, the existing grinding devices are not conducive for grinding a workpiece to have a round or spherical configuration. Specifically, existing designs and products are not appropriate alone for reconditioning certain automotive components.
Therefore, it would be desirable to have a radius adjustment apparatus that may be coupled to and used with a traditional grinding machine such that a workpiece may be modified to have a round or spherical configuration.
Therefore, a general object of this invention is to provide a radius adjustment apparatus configured for selectively modifying a radius of a workpiece being grinded, sanded, or the like such as for grinding spherical, circular, or curved workpieces.
Another object of this invention is to provide a radius adjustment apparatus, as aforesaid, that may be connected to traditional grinding machines.
Still another object of this invention is to provide a radius adjustment apparatus, as aforesaid, that includes a yoke assembly having a pair of yoke arms that are configured to bend or flex a bearing rail as they are moved longitudinally rearward by a yoke adjuster knob operated by a user.
Yet another object of this invention is to provide a radius adjustment apparatus, as aforesaid, in which a carriage coupled to a grinding machine is moved slidably along the flexed bearing rail to facilitate a curved or spherical grinding of a workpiece held by the grinding machine.
Other objects and advantages of the present invention will become apparent from the following description taken in connection with the accompanying drawings, wherein is set forth by way of illustration and example, embodiments of this invention.
A radius adjustment apparatus according to a preferred embodiment of the present invention will now be described with reference to
The radius adjustment apparatus 10 configured to cause a workpiece to be grinded in a spherical or curved manner may be operatively coupled to a traditional grinding machine. Accordingly, it is important to describe and comprehend a traditional grinding or sanding machine. As shown particularly in
Further, the traditional grinding machine 100 may include a spindle motor 120 coupled to the spindle 110 such as by a series of wheels and belts 122 such that the spindle 110 may be rotated at a selected revolutions per minute (RPM) when the spindle motor 120 is electrically energized. Finally, the traditional grinding machine 100 and its spindle motor 120, spindle 110, and related components are mounted atop a grinder framework 104 such as a plate to which the radius adjustment apparatus 10 may be operatively coupled as will be described below.
The radius adjustment apparatus 10 according to the present invention may now be described in detail. Namely, the radius adjustment apparatus 10 may include a yoke assembly 20 that is configured to adjust the radius of the workpiece 102 being held and grinded by the grinding machine 100 described above. More particularly, the yoke assembly 20 may include a yoke body 22 defining an inner channel having a plurality of internal threads and a yoke adjuster rod 26 having a plurality of external threads 26a. Further, the yoke assembly 20 may include a pair of yoke arms 34 each having a linear configuration and being identical to the other. The yoke body 22 defines an inner channel 24 that extends longitudinally through the entire yoke body 22, i.e., the yoke body 22 has longitudinally opposed inlet and outlet openings providing access to the inner channel 24.
Further, the yoke assembly 20 includes a yoke adjuster rod 26 positioned in and extending along the inner channel 24 and configured for incremental movement therein. More particularly, the inner channel may include a plurality of inner threads whereas an outer surface of the yoke adjuster rod 26 includes a plurality of external threads 26a. It is understood that the yoke adjuster rod 26 has a dimension that is complementary to that of the inner channel (e.g., slightly smaller diameter) such that the internal and external threads 26, respectively, engage or mesh together to enable the yoke body 22 to move longitudinally when the yoke adjuster rod 26 is actuated, e.g., is rotated. Even more particularly, the yoke body 22 may be translated forwardly when the yoke adjuster rod 26 is rotated in a first direction (e.g., clockwise) whereas the yoke body 22 may be translated rearwardly when the yoke adjuster rod 26 is rotated in a second direction (e.g., counter-clockwise).
In a related aspect, each yoke arm 34 includes a proximal end 34a coupled to the yoke body 22, the proximal ends 34a being laterally displaced from one another such that the inner channel and yoke adjuster rod 26 is situated intermediate the proximal ends 34a. It is understood that this geographic relationship maintains smooth longitudinal movement of the yoke body 22 when the yoke adjuster rod 26 is rotated.
The yoke adjuster rod 26 is moved by manual and radial operation of a yoke adjuster knob 30. In a critical aspect, the yoke assembly 20 may include a yoke adjuster knob 30 coupled to an outer end of said yoke adjuster rod 26 and may include a handle 32 that enables a user to selectively actuate the yoke adjuster rod 26 to rotate with careful precision. Accordingly, the yoke body 22 may be slidably translated forwardly or rearwardly by radial operation of the yoke adjuster knob 30 in clockwise or counter-clockwise directions, respectively. The adjuster knob 30 may include indica 15 to enable a user to rotate the knob 30 according to numerical quantities corresponding to respective movements the yoke adjuster rod 26 and yoke arms 34. More particularly, the indicia 15 make it possible for a user to make rotations of the adjuster knob 30 that are selectively adjustable, are predictable, and may be accurately repeated on multiple workpieces if desired.
Now with further regard to the pair of yoke arms 34, each yoke arm 34 includes a proximal end 34a coupled to the yoke body 22 and each yoke arm 34 includes a distal end 34b opposite a proximal end 34a. Each distal end 34b may be coupled to first and second ends 39a, 39b of a bearing rail 38, respectively, the bearing rail 38 having a normally linear configuration extending between distal ends 34b of the pair of yoke arms 34. The bearing rail 38 includes a first end 39a and a second end 39b opposite the first end 39a, the bearing rail ends being coupled to the distal ends 34b, respectively (
In another critical aspect, a midpoint of the bearing rail 38 may be fixedly attached to a base frame member 104 (
In another aspect, a carriage 40 is slidably coupled to said bearing rail 38 using a plurality of bearings 42 and is slidable laterally between said second ends 39a, 39b of the pair of yoke arms 34. In an embodiment, the carriage is moved reciprocally along the bearing rail 38 manually by a user although programmed movement powered by electricity or a motor is contemplated in some embodiments. Further, the carriage 40 may have an upper surface referred to as a carriage plate 44 selectively coupled to the framework 104 of a grinding machine 100. Accordingly, a lateral movement of the carriage 40 along the bearing rail 38 causes a corresponding movement of the grinding machine 100 and, as a result, a lateral movement of the workpiece 102.
In addition, the radius adjustment assembly 10 may include an auxiliary adjustment wheel 50 configured for moving the entire yoke assembly 20 longitudinally, such as closer or further away from the grinding wheel shown in
In use, the radius adjustment apparatus 10 may be coupled to the traditional grinding machine 100 of a type having a grinding wheel 105 and a spindle 110 configured to hold a workpiece 102 in close proximity to the grinding wheel 105, the workpiece being, for instance, a valve lifter or the like. With the grinding wheel 105 is actuated and spinning, the user is free to operate the yoke adjuster knob 30 which axially rotates the yoke adjuster rod 26 which threadably moves the yoke body 22 rearwardly which, in turn, pulls the pair of yoke arms 34 which, in turn, puts a load on respective ends of the bearing rail 38 which, in turn causes the bearing rail 38 to bend or become arched as shown in
It is understood that while certain forms of this invention have been illustrated and described, it is not limited thereto except insofar as such limitations are included in the following claims and allowable functional equivalents thereof.
Number | Date | Country | |
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63330353 | Apr 2022 | US |