And manufacture of an abrasive polishing tool
09849562 ยท 2017-12-26
Assignee
Inventors
- Jaehee Sweeney (Burlington, MA, US)
- ChunSeob Hwang (Seoul, KR)
- Michael Patrick Sweeney (Burlington, MA, US)
Cpc classification
International classification
B24B3/06
PERFORMING OPERATIONS; TRANSPORTING
Abstract
Methods and systems are provided for design and manufacture of a non-metallic polishing tool capable of polishing different surfaces and achieving a smooth and shiny finish. The polishing tool comprises an abrasive coated base surface, and a plurality of engravings in the base surface, forming cylindrical pillars. The pillars are arranged in concentric circular patterns to provide uniform polish and shine on a target material.
Claims
1. A polishing tool comprising: a base surface; and a plurality of engravings in the base surface; wherein the engravings form a plurality of pillars, the pillars arranged in concentric circular patterns forming repeating unit cells; wherein each of the pillars with diameters between 100 nm-500 m in the repeating unit cells includes a top surface with an abrasive material and a side face forming an angle with the top surface, the angle is between 75-90 degrees; wherein a pitch between consecutive pillars in the plurality of pillars remains constant in the repeating unit cells and is between 10 m and 700 m, the pitch defined as a distance between centers of two consecutive pillars; and wherein the pillars cover 40-70% of a total area of an abrasive layer of the polishing tool.
2. The tool of claim 1, wherein the base surface is coated with the abrasive layer.
3. The tool of claim 2, wherein the engravings are uniformly distributed on the base surface.
4. The tool of claim 3, wherein the engravings are repeated in horizontal and vertical directions at the constant pitch.
5. The tool of claim 4, wherein the repeating unit cells comprise one of exactly seven and exactly nineteen pillars.
6. The tool of claim 5, wherein the polishing tool consists essentially of a non-metallic material, the non-metallic material being one of safety glass and ceramic.
7. A polishing tool comprising: a repeated unit of a plurality of teeth forming repeating unit cells, each of the plurality of teeth including a flat top surface with an abrasive material and a side face forming an angle with the flat top surface, the angle being between 75-90 degrees, each and every cell being one of the repeating unit cells; wherein each of the plurality of teeth comprises a non-metallic material; and wherein a pitch between consecutive teeth in the plurality of teeth remains constant in the repeating unit cells and is between 10 m and 700 m, the pitch defined as a distance between centers of two consecutive teeth.
8. The tool of claim 7, wherein a diameter of the flat top surface of every one of the teeth is constant and planar with one another throughout the entire polishing tool.
9. The tool of claim 8, wherein the flat top surface includes an abrasive layer for polishing.
10. A method for operating a polishing tool, comprising: applying the same polishing tool for both grinding and buffering operations to a component, thereby providing a smooth and shiny finish on a target surface of a product, wherein edges of a uniformly engraved pattern on a polishing surface is utilized for grinding operation and a flat planar polishing surface provides a desired level of gloss on the surface of the component, the polishing surface comprising circularly positioned pillars forming repeating unit cells, each of the grinding and buffering operations moving the polishing tool in directions including forward/backward, left/right, angles therebetween, and circular rotation; wherein each of the circularly positioned pillars includes a top surface with an abrasive material and a side face forming an angle with the top surface, the angle being between 75-90 degrees; and wherein a pitch between consecutive pillars of the circularly positioned pillars remains constant in the repeating unit cells and is between 10 m and 700 m, the pitch defined as a distance between centers of two consecutive pillars.
11. The method of claim 10, wherein the polishing tool includes a coating on the top surface.
12. The method of claim 10, wherein the polishing tool consists essentially of non-metallic material.
13. The method of claim 10, wherein the polishing tool consists of metallic components.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
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DETAILED DESCRIPTION
(4) A polishing tool capable of effectively grinding and polishing a plurality of surfaces is shown in
(5) In
(6) As shown in
(7) The repeating pattern comprising pillars and engravings on a non-metallic surface may be achieved by a precisely controlled manufacturing technique such as microlithography, nanolithography and high precision coating, followed by multiple chemical etching processes. In this way it is possible to accurately fabricate polishing tool with feature sizes in the nanometer and micron range.
(8) In
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(10) When the polishing tool is applied to a rough target surface, the angular part (edge) of the flat polishing surface may effectively grind the target surface while the non-engraved top abrasive part (the abrasive coated base material) may simultaneously provide high gloss polishing. The grinding and buffering operations include moving the tool in directions including forward/backward, left/right, angles therebetween, and circular rotation. In alternative embodiments any pattern of teeth any be formed and types of such patterns should not be limited to those mentioned herein.
(11)
(12) It will be appreciated that the configurations disclosed herein are exemplary in nature, and that these specific embodiments are not to be considered in a limiting sense, because numerous variations are possible. For example, while a flat planar base surface is described in the example, a curved base planar surface may be used, if desired. The subject matter of the present disclosure includes all novel and non-obvious combinations and sub-combinations of the various systems and configurations, and other features, functions, and/or properties disclosed herein.
(13) In one example, a polishing tool comprises a base surface, and a plurality of engravings in the base surface, wherein, the engravings form cylindrical pillars, the pillars arranged in concentric circular patterns. In the preceding example, additionally or optionally, the base surface is coated with an abrasive layer. In any or all of the preceding examples, additionally or optionally, the engravings are uniformly distributed on the base surface. In any or all of the preceding examples, additionally or optionally, the engraving is repeated in a horizontal and vertical direction at a constant pitch. In any or all of the preceding examples, additionally or optionally, a dimension of the pitch is higher than 100 nm. In any or all of the preceding examples, the concentric circular pattern, additionally or optionally, form repeating unit cells. In any or all of the preceding examples, additionally or optionally, the unit cells comprise one of exactly seven and exactly nineteen cylindrical pillars. In any or all of the preceding examples, the polishing tool additionally or optionally consists essentially of a non-metallic material, the non-metallic material being one of safety glass and ceramic.
(14) In another example, a polishing tool comprises a repeated unit of cylindrical teeth, wherein, a top surface of each of the teeth is flat, the polishing tool comprising a non-metallic material. In the preceding example, additionally or optionally, each of the cylindrical teeth includes a side wall making an angle with the top surface, wherein the angle is an acute angle, and wherein a distance between two consecutive teeth is equal throughout the polishing tool. In any or all of the preceding examples, additionally or optionally, a diameter of the top surface of every one of the teeth is constant and planar with one another throughout the entire polishing tool. In any or all of the preceding examples, additionally or optionally, the top surface includes an abrasive layer for polishing.
(15) In yet another example a method for operating a polishing tool comprises applying the same polishing tool for both grinding and buffering operations to a component, thereby providing a smooth and shiny finish on a target surface of the product, wherein a flat planar polishing surface of the tool is utilized for the grinding operation and edges of a uniformly engraved pattern on the polishing surface provides a desired level of gloss on the component's surface, the polishing surface comprising circularly positioned cylinders, each of the grinding and buffering operations moving the tool in directions including forward/backward, left/right, angles therebetween, and circular rotation. In the preceding example, additionally or optionally, the polishing tool includes a coating in its surface. In any or all of the preceding examples, additionally or optionally, the polishing tool consists essentially of non-metallic material. In any or all of the preceding examples, the polishing tool additionally or optionally consists of metallic components. In any or all of the preceding examples, the cylinders are additionally or optionally positioned with repeating patterns having a specified spacing.
(16) The following claims particularly point out certain combinations and sub-combinations regarded as novel and non-obvious. These claims may refer to an element or a first element or the equivalent thereof. Such claims should be understood to include incorporation of one or more such elements, neither requiring nor excluding two or more such elements. Other combinations and sub-combinations of the disclosed features, functions, elements, and/or properties may be claimed through amendment of the present claims or through presentation of new claims in this or a related application. Such claims, whether broader, narrower, equal, or different in scope to the original claims, also are regarded as included within the subject matter of the present disclosure.