Stone cut and method of making
A stone cut and method for cutting a stone that increases the number of facets on the stone as well as the scintillation, brilliance, and light reflectivity of the stone. The stone cut and method includes cutting angles and increasing the number of facets that, either separately or together, manage the external and internal light flow dynamics of a round cut diamond to a higher level of efficiency, effectiveness, and performance.
The present application is a continuation of U.S. patent application Ser. No. 10/619,982, filed Jul. 14, 2003, which is incorporated herein by reference in its entirety.
FIELD OF THE INVENTIONGenerally, the present invention relates to a cut precious stone and a method for cutting a precious stone. More particularly, the method for cutting the precious stone and the cut of the precious stone of the present invention produces a precious stone with more brilliance, scintillation, and light dispersion.
BACKGROUND OF THE INVENTIONTraditionally, gemstones have been cut in many shapes and configurations. Typically, precious stones, such as diamonds, are cut to accent high coefficients of brilliancy, scintillation, and dispersion of light. In general, gemstones, particularly diamonds, are cut such that light entering upper portions of the stone are totally reflected and refracted within the stone, and light also emerges back through the top portion of the stone to the eye of the observer.
Many different stone cuts have attempted to bring out the greatest possible life of a diamond, i.e., give a diamond the most “fire” as possible. One such cut for diamonds that has received much glory and admiration is the round or “brilliant” cut. The round or brilliant cut is popular for diamonds gemstones as well. A brilliant-cut diamond is generally a round diamond with fifty-eight sides. A girdle (the outer edge of the gem) forms a junction between a pavilion (the lower section) and a crown (the upper section) of the gemstone. The crown typically includes many flat faces, or facets, the largest typically being the table, which is substantially parallel to the girdle. The pavilion includes many facets that cover the pavilion and can extend from a lower tip of the pavilion (the culet) to the girdle or some portion thereof. The crown of a typical brilliant-cut gemstone generally includes star facets, bezel or upper main facets, and upper girdle facets, while the pavilion generally includes pavilion main facets and lower girdle facets.
Many gemstone cuts vary with respect to which facets are cut onto the gemstone and which are emphasized on the particular gemstone cut. It has become generally accepted that the more facets a gemstone has, the more brilliance, scintillation, and light dispersion the gemstone will portray, up to a point where the gemstone becomes too busy. The goal of a gemstone cut is to prevent leakage of incident light through the bottom portion of the gemstone and to manage external and internal light flow to maximize the return of white and color through the top of the gemstone. The traditional round brilliant cut model, due to its unique faceting arrangements, has limited ability to return white light significantly. This results in the general observation of a dark tone appearance with the round brilliant cut diamond. The dark tone appears even with diamonds that are cut to very perfect proportions having very white body color. This observation becomes even more pronounced with round brilliant cut diamonds that are cut to less than ideal proportions where leakage of light is significant. The loss of light through the bottom of the diamond creates dead zones.
Furthermore, due to the light return and internal light flow efficiencies of the round brilliant cut model, the proportions that are necessary for this model to achieve optimal light performance requires extraordinary loss of rough diamond material during the cutting process. Although, at the optimal light performance level for the traditional model, the diamond appears more impressive than the poorly cut diamonds, the magnitude and quality of brilliance, dispersion and scintillation that a round shape diamond cut is capable of achieving is not maximized. Nonetheless, the current desire of many cutters to cut diamonds to the ideal cut proportions of the traditional round brilliant cut is discouraged by the requirements of significant weight loss of the rough diamond material. This provides one explanation for the high numbers of round brilliant diamonds with poorly cut proportions that are produced every year.
Therefore, it would be advantageous to cut a gemstone, such as a diamond, with proportions that prevent light leakage and with a faceting arrangement that is more efficient and effective in returning more white light, color light, and scintillation. Also, it would be more advantageous to provide a faceting arrangement that can harmonize and properly balance the gemstone's key components of light performance, its brilliance, dispersion, and scintillation. Thereby, a higher level of visual and aesthetic beauty would be provided to the gemstone. A faceting arrangement that improves the total light return efficiency of the diamond by changing the pathway which light travels within the diamond would also be advantageous. Thereby, the weight loss during cutting would be significantly reduced. Overall, it would be desirable to produce a gemstone with a faceting arrangement that returns more brilliance, fire (dispersion), and scintillation, and that appears lighter and that can be cut with less weight loss to achieve a greater light performance than the traditional model.
SUMMARY OF THE INVENTIONAn embodiment of the present invention provides a stone cut and a method for cutting a stone providing increased scintillation, brilliance, and dispersion of light. The cut, in accordance with one aspect of the invention, has a girdle, crown, and pavilion, and includes an increased number of facets on either or both the crown or the pavilion over the traditional number of facets. The increased number of facets may be obtained by providing additional upper girdle facets (over the traditional number) surrounding the perimeter of the stone above the girdle. According to an embodiment of the present invention, the upper girdle facets preferably extend from a lower side along the girdle of the stone to a common upper vertex located toward a table on the crown. Preferably, there are three upper girdle facets per side of the table.
According to another embodiment of the present invention, the increased number of facets may be obtained by providing additional lower girdle facets (over the traditional number) on the pavilion of the stone. The increased number of facets on the pavilion portion results from an increase in the number of lower girdle facets. Preferably, the lower girdle facets are positioned between each pair of pavilion main facets and extend from an upper side along a girdle of the stone to a portion of the pavilion. Also preferably, there are three lower girdle facets between each pavilion main facet.
In accordance with another embodiment of the present invention, the pavilion main facets, on the pavilion of the stone extending upwards from the culet, vary in thickness. The pavilion main facets can alternate in thickness between thick and thin. In one embodiment of the present invention, the thick pavilion main facets are about 50 percent thicker than the thin pavilion main facets.
According to yet another embodiment of the present invention, one of the lower girdle facets is rotated about an axis.
These and other features and advantages of embodiments of the present invention will be readily apparent from the following detailed description of the invention, the scope of the invention being set out in the appended claims.
BRIEF DESCRIPTION OF THE DRAWINGSThe detailed description will be better understood in conjunction with the accompanying drawings, wherein like reference characters represent like elements, as follows:
According to
Each side of table 102 of
The remaining surface area of crown 40 is occupied by upper girdle facets 110, 112, and 114. Upper girdle facets 110, 112, and 114 are positioned around the periphery of crown 40 between the lower-most vertices V2 of adjacent bezel facets 106 and with a bottom side along girdle 60. Traditionally, there are two upper girdle facets positioned between each adjacent pair of bezel facets 106. However, in accordance with the principles of embodiments of the present invention, the embodiment of
Culet 20 can preferably be a point, as shown in the figures, or a planar polygonal surface with a number of sides equal to and determined by the number of pavilion main facets 202. A planar polygonal culet surface is preferably formed by providing a facet instead of a point for culet 20. The culet facet may also mimic the configuration of table 102, thereby taking on as many sides as that of table 102, only in a reduced size. Accordingly, in the embodiment of the present invention shown in
Lower girdle facets 220, 222, and 224 preferably have a top side along girdle 60 and a lower vertex extending toward culet 20. Although traditionally there are only two lower girdle facets between adjacent pavilion main facets 202 on a round diamond, in the embodiment of the present invention shown in
According to another embodiment of the present invention, a lower girdle facet is preferably rotated clockwise or counterclockwise about an axis extending from culet 20 to girdle 60 and preferably (though not necessarily) lying in the plane of the lower girdle facet such that the facet is not tangent to a common imaginary general circumference of stone 10 about which the other lower girdle facets lie and to which the other lower girdle facets are tangent. Therefore, generally a micro-facet (not shown) is created between the edges of the rotated lower girdle facet and its neighboring facets. According to a preferred embodiment of the present invention, the lower girdle facet is preferably rotated at least about 0 degrees and at most about 10 degrees. It is more preferred that the lower girdle facet be rotated at least about 0 degrees and at most about 4 degrees. However, as will be appreciated by one of ordinary skill in the art, the angle of rotation may vary from such preferred minimum and maximum values if the desired improved scintillation and light dispersion is nonetheless achieved.
For example, as shown in
Likewise, lower girdle facet 224 could be rotated counterclockwise about an axis extending from culet 20 to girdle 60 and preferably (though not necessarily) lying in the plane of the lower girdle facet 224, creating a micro-facet between the respective edges of lower girdle facet 224 and lower girdle facet 220. Furthermore, lower girdle facet 224 can be rotated clockwise or counterclockwise about an axis parallel to girdle 60. In this respect, rotating the lower girdle facet 224 clockwise about an axis that is parallel to girdle 60 and that extends from left to right causes a slight flattening of the corner of the lower girdle facet that intrudes into the general diameter of stone 10 along the left and right edges of lower girdle facet 224 with lower girdle facets 220 and 222, respectively. Moreover, lower girdle facet 224 may be rotated about an axis located at some point between adjoining edges of lower girdle facet 220 and lower girdle facet 224, and adjoining edges of lower girdle facet 222 and lower girdle facet 224, thereby creating micro-facets around the perimeter of lower girdle facet 224.
It will be appreciated by one of ordinary skill in the art that each lower girdle facet of stone 10 can be rotated in the same direction and at the same degree or each lower girdle facet of stone 10 can be rotated in different directions and/or degrees. Furthermore, the axis of rotation can be directed in any orientation.
A stone in accordance with the principles of the present invention may have a crown 40 as in
From a side perspective view of a stone with additional upper girdle facets and lower girdle facets, such as in
Exemplary preferred measurements of a stone 10 cut as in
According to another embodiment of the present invention, as shown in
As will be appreciated by one of ordinary skill in the art, the number of sides of the polygon shape of the table of a stone cut in accordance with the principles of the embodiments of the present invention can be altered without changing the scope of the present invention. Generally, fewer than eight sides on the polygonal table does not provide the desired scintillation, and more than twelve sides on the polygonal table generally result in a diamond that is too busy. Similar principles are true for the associated crown and pavilion facets. However, depending on the size and quality of the initial stone, the number of polygonal sides of the table and other crown and pavilion facets may be altered. Thus, fewer or more sides on the table and/or facets on the stone are nonetheless within the scope of the present invention.
According to another embodiment of the present invention, as shown in
Alternating the width of the pavilion main facets 870 changes the internal symmetry of stone 800. Light that enters stone 800 is reflected differently from a traditional round cut stone because of the varying width of pavilion main facets 870. The altering width of pavilion main facets 870 produces five-fold symmetry in stone 800 with a ten-sided pavilion. A result of pavilion main facet width alteration is an increase in brilliance and scintillation and improved internal light flow.
According to another embodiment of the present invention, stone 800 can include three (rather than two, as in traditional round-cut stones) upper girdle facets 820, 822, and 824. Upper girdle facets 820, 822, and 824 are preferably positioned between adjacent bezel facets 806. Upper girdle facets 820, 822, and 824 preferably extend from girdle 860 and terminate at a common vertex at adjoining lateral vertices of bezel facets 806. Furthermore, according to yet another embodiment of the present invention, stone 800 can include three (rather than two, as in traditional round-cut stones) lower girdle facets 880, 882, and 884. Lower girdle facets 880, 882, and 884 are positioned between adjacent pavilion main facets 870. Lower girdle facets 880, 882, and 884 extend from a region on the pavilion to girdle 860. Lower girdle facets 880, 882, and 884 align with upper girdle facets 820, 822, and 824, respectively at girdle 860.
According to another embodiment of the present invention, lower girdle facets can be rotated such that the facet is not tangent to a common imaginary general circumference of stone 10 about which the other lower girdle facets lie and to which the other lower girdle facets are tangent. Lower girdle facets can be rotated counterclockwise or clockwise about an axis extending from culet 850 to girdle 860. A lower girdle facet may also be rotated about an axis parallel to girdle 860. Depending on the axis of rotation, rotation of a lower girdle facet generally generates a micro-facet (not shown) at the boundary between the rotated lower girdle facet and neighboring facets. The rotation of lower girdle facets is similar to rotation of lower girdle facets described above.
In yet another embodiment of the present invention, as shown in
It will be appreciated features described above with respect to one embodiment typically may be applied to another embodiment, whether or not explicitly indicated. The various features hereinafter described may be used singly or in any combination thereof. Therefore, the present invention is not limited to only the embodiments specifically describe herein. Furthermore, the principles of this invention can be applied to other gemstone cuts without exceeding the scope of the invention as contemplated by the inventor.
The present invention also contemplates methods for forming the embodiments of the stone as described above. According to one embodiment, the method preferably includes forming a pavilion portion having a culet and forming a crown portion having a table with a predetermined number of sides. The method also preferably includes forming a girdle which separates the pavilion portion from the crown portion. Additionally, the method preferably includes forming three upper girdle facets per side of the table where the upper girdle facets extend from the girdle to a vertex at the table. Pavilion main facets are also preferably formed with this method extending from the girdle region toward the culet region. The pavilion main facets preferably extend from near the culet toward the girdle on the pavilion portion of the stone. According to another method of the present invention, which may or may not be performed in conjunction with the above-described method, three lower girdle facets are preferably formed on the pavilion portion of the stone. The lower girdle facets are preferably positioned between adjacent pavilion main facets. According to another method of the present invention, which may or may not be performed in conjunction with either or both of the above-described methods, the thickness of the pavilion main facets may be varied in an alternating circumferential pattern. According to yet another method of the present invention, which may or may not be performed in conjunction with any, several, or all of the above-described methods, at least one lower girdle facet is preferably rotated such that the facet is not tangent to an imaginary general circumference of the stone. The method may further include forming multiple lower girdle facets on the pavilion portion of the stone where the lower girdle facets are at multiple angles not tangent to a common imaginary general circumference of the stone.
While the foregoing description and drawings represent the preferred embodiments of the present invention, it will be understood that various additions, modifications and substitutions may be made therein without departing from the spirit and scope of the present invention as defined in the accompanying claims. In particular, it will be clear to those skilled in the art that the present invention may be embodied in other specific forms, structures, arrangements, proportions, and with other elements, materials, and components, without departing from the spirit or essential characteristics thereof. One skilled in the art will appreciate that the invention may be used with many modifications of structure, arrangement, proportions, materials, and components and otherwise, used in the practice of the invention, which are particularly adapted to specific environments and operative requirements without departing from the principles of the present invention. The presently disclosed embodiments are therefore to be considered in all respects as illustrative and not restrictive, the scope of the invention being indicated by the appended claims, and not limited to the foregoing description.
Claims
1. A stone, comprising:
- a pavilion portion having a culet;
- a crown portion having a table;
- a girdle separating said pavilion portion from said crown portion;
- a plurality of pavilion main facets extending between said girdle and said culet;
- at least three lower girdle facets positioned between adjacent pavilion main facets, each of said at least three lower girdle facets having a top side along said girdle, wherein only two of said at least three lower girdle facets have a common lower vertex extending towards said culet and a third lower girdle facet of said at least three lower girdle facets has a separate lower vertex extending towards said culet;
- a plurality of bezel facets extending between said girdle and said table; and
- at least three upper girdle facets positioned between adjacent bezel facets, each of said at least three upper girdle facets having a common upper vertex extending towards said table, wherein each of said at least three upper girdle facets has a bottom side along said girdle.
2. The stone of claim 1, wherein said crown includes a plurality of star facets encircling said table, and a bezel facet positioned between adjacent star facets and said girdle.
3. A stone, comprising:
- a pavilion portion having a culet;
- a crown portion;
- a girdle separating said pavilion portion from said crown portion;
- a plurality of pavilion main facets extending between said girdle and said culet; and
- at least three lower girdle facets between each adjacent pair of said pavilion main facets, wherein at least one of said at least three lower girdle facets is rotated so that said at least one of said at least three lower girdle facets is not tangent to a circumference about said stone.
4. The stone of claim 3, wherein a middle of said three lower girdle facets is rotated.
5. A stone, comprising:
- a pavilion portion having a culet;
- a crown portion having a table with a predetermined number of sides;
- a girdle separating said pavilion portion from said crown portion; and
- at least three lower girdle facets for each side of said table, each of said at least three lower girdle facets having a top side along said girdle, wherein only two of said at least three lower girdle facets have a common lower vertex extending towards said culet; and
- at least three upper girdle facets for each side of said table, each of said at least three upper girdle facets having a bottom side along said girdle, wherein said at least three upper girdle facets have a common upper vertex extending toward said table.
6. A method for cutting a stone, said method comprising:
- forming a pavilion portion having a culet;
- forming a crown portion having a table with a predetermined number of sides;
- forming a girdle separating said pavilion portion and said crown portion; and
- forming at least three lower girdle facets between pairs of pavilion main facets, each of said at least three lower girdle facets having a top side along said girdle, wherein only two of the at least three lower girdle facets have a common lower vertex extending towards said culet; and
- forming at least three upper girdle facets for each side of said table, each of said at least three upper girdle facets having a bottom side along said girdle, wherein said at least three upper girdle facets have a common upper vertex extending toward said table.
7. A method for cutting a stone, said method comprising:
- forming a crown portion having a table;
- forming a pavilion portion having a culet;
- forming a girdle separating said crown portion from said pavilion portion;
- forming a plurality of bezel facets extending between said girdle and said table;
- forming a plurality of pavilion main facets extending between said culet and said girdle;
- forming at least three upper girdle facets between adjacent bezel facets, said at least three upper girdle facets having a common upper vertex extending towards said table, wherein each of said at least three upper girdle facets has a bottom side along said girdle; and
- forming at least three lower girdle facets between adjacent pavilion main facets, each of said at least three lower girdle facets having a top side along said girdle, wherein only two of said at least three lower girdle facets have a common lower vertex extending towards said culet and a third lower girdle facet of the at least three lower girdle facets having a separate lower vertex extending toward said culet.
8. The method of claim 7, further comprising:
- forming said table on said crown with a plurality of sides;
- forming a star facet extending from each side of said table;
- forming bezel facets between said star facets, said bezel facets each extending from a lower vertex at said girdle to an upper vertex at said table.
9. A method for cutting a stone, said method comprising:
- forming a crown portion;
- forming a pavilion portion including a culet;
- forming a girdle separating said crown portion from said pavilion portion; and
- forming a lower girdle facet on said pavilion portion rotated not to be tangent to a general circumference of said stone.
10. The method of claim 9, further comprising forming multiple lower girdle facets on said pavilion portion rotated to not be tangent to the general circumference of said stone.
Type: Application
Filed: Oct 17, 2005
Publication Date: Feb 23, 2006
Inventor: David So (Staten Island, NY)
Application Number: 11/253,163
International Classification: A44C 17/00 (20060101);