JEWELRY WITH NON-PRECIOUS METALLIC CORE AND PROCESS FOR PRODUCING
20220125166 · 2022-04-28
Inventors
Cpc classification
B33Y80/00
PERFORMING OPERATIONS; TRANSPORTING
A44C5/022
HUMAN NECESSITIES
B33Y50/00
PERFORMING OPERATIONS; TRANSPORTING
B22C9/22
PERFORMING OPERATIONS; TRANSPORTING
International classification
B22C9/22
PERFORMING OPERATIONS; TRANSPORTING
B22D25/02
PERFORMING OPERATIONS; TRANSPORTING
Abstract
Jewelry with non-precious metallic core and process for producing, comprising an outer layer (10) and an inner core (50), a melting temperature of the inner core (50) is higher than that of the outer layer (10), consequent to a synchronous position of an outer markers (12a, 12b, 12c) and an inner markers (52a, 52b, 52c), the outer layer (10) engulfs the inner core (50) with a prescribed thickness dimension (44) all around; mechanically moving, flexing and load bearing part of an active jewelry are made of non-precious metal, the outer layer (10) is made of a precious metal like gold, silver, platinum and the like; while the inner core (50) is made of a non-precious metal like steel, titanium and the like, the jewelry article (100) is studded with diamonds and precious stones. The jewelry article (100) may be an array of closed links (110).
Claims
1. A jewelry article (100) comprising: an outer layer (10); and an inner core (50); wherein a melting temperature of the inner core (50) is higher than that of the outer layer (10); consequent to a synchronous position of an outer markers (12a, 12b, 12c) and an inner markers (52a, 52b, 52c), the outer layer (10) engulfs a part of the inner core (50) with a prescribed thickness dimension (44) all around; mechanically moving, flexing and load bearing part of an active jewelry (105) are made of the inner core (50).
2. The jewelry article (100) as claimed in claim 1, wherein each of the marker pairs (52a, 12a), (52b, 12b), (52c, 12c) of the inner markers (52a, 52b, 52c) and the corresponding outer markers (12a, 12b, 12c) are such differently shaped and oriented so as to completely overlap only in one situation.
3. The jewelry article (100) as claimed in claim 1, wherein the outer layer (10) is made of a precious metal like gold, silver, platinum and the like; while the inner core (50) is made of a non-precious metal like steel, titanium and the like.
4. The jewelry article (100) as claimed in claim 1, wherein the jewelry article (100) is studded with precious stones.
5. The jewelry article (100) as claimed in claim 1, wherein the jewelry article (100) is an array of closed links (110).
6. The jewelry article (100) as claimed in claim 1, wherein the prescribed thickness dimension (44) all around is non-uniform.
7. The jewelry article (100) as claimed in claim 1, wherein the prescribed thickness dimension (44) all around is uniform.
8. The jewelry article (100) as claimed in claim 1, wherein the inner core (50) integrally comprises mechanically moving, flexing and load bearing part of an active jewelry (105) including a hinge (112), a locking clasp (113).
9. The jewelry article (100) as claimed in claim 1, wherein the jewelry article (100) is of a non-symmetrical shape (101) and contour, with open ends (102) or without ends (103).
10. A process to produce a jewelry article (100) comprising an outer layer (10) and an inner core (50) wherein a melting temperature of the inner core (50) is higher than that of the outer layer (10), the process comprising the steps of: developing a computer aided design (CAD) model of an outer object (11) having a plurality of outer markers (12a, 12b and 12c) and dimensionally corresponding to the outer layer (10), developing a computer aided design (CAD) model of an inner object (51) having a plurality of inner markers (52a, 52b and 52c) and dimensionally corresponding to the inner core (50), ensuring that each inner markers (52a, 52b, 52c) is identical in dimension and orientation to corresponding outer markers (12a, 12b, 12c) respectively, the inner markers (52a, 52b, 52c) are located on the inner object (51) such that the outer markers (12a, 12b, 12c) as well as the inner markers (52a, 52b, 52c) are identically located with respect to a common reference coordinate (40). producing a master outer object (13) and a master inner object (53) in wax by 3D printing, producing the master outer object (13) and the master inner object (53) in a durable metal by a casting process, attaching a runner (30) to the master outer object (13) and the master inner object (53) to obtain an outer master (14) and an inner master (54) respectively, producing an outer object mold (15) and an inner object mold (55) using the outer master (14) and the inner master (54) respectively, as a pattern, producing an inner wax master (54w) by filling in wax in the inner object mold (55). producing an inner pre-core (50p) from the inner wax master (54w) by the casting process. trimming a runner (30) of the inner pre-core (54p) to obtain the inner core (50), placing the inner core (50) in the outer object mold (15), such that the plurality of inner markers (52a, 52b and 52c) occupy a synchronous marker position created in the outer object mold (15) by the outer markers (12a, 12b and 12c) of the outer master (14), filling the outer object mold (15) with wax to obtain a jewelry pre-article (100p), producing an unfinished article (100u) from the jewelry pre-article (100p) wherein the outer wax is replaced by precious metal using the casting process, removing from the unfinished article (100u) the runner (30) made of precious metal and the plurality of inner markers (52a, 52b, 52c), and touching up the unfinished article (100u) with the precious metal to obtain the jewelry article (100).
11. The process to produce the jewelry article (100) as claimed in claim 10, wherein the outer object mold (15) and the inner object mold (55) are made of synthetic rubber of durometer hardness 30 to 70.
12. The process to produce the jewelry article (100) as claimed in claim 10, wherein a plurality of jewelry pre-article (100p) are grouped together around a pillar (41) erected on a rigid base (25) for producing the jewelry article (100) in bulk.
13. The process to produce the jewelry article (100) as claimed in claim 10, wherein the jewelry article (100) is studded with a precious stone, by pushing the precious stones in wax/equivalent material of the jewelry pre-article (100p).
14. The process to produce the jewelry article (100) as claimed in claim 10, wherein the casting process comprises the steps of: installing a wax formation of the jewelry or object in a casting flask (40) of metal with big holes (45) all around, the holes (45) initially temporarily closed by wrapping a thin plastic film coated with adhesive; filling the casting flask (40) is filled with gypsum plaster, also known as plaster of Paris, lime plaster, or cement plaster or equivalent material which has refractory properties, the refractory material filled in low viscosity form; heating the casting flask (40) after the refractory material solidifies, melting away the wax or the equivalent material used for making solid model; and pouring metal in the molten form in the casting flask (40).
15. The process to produce the jewelry article (100) as claimed in claim 10, wherein the outer layer (10) is made of a precious metal including gold, silver, platinum; while the inner core (50) is made of a non-precious metal including steel.
16. The process to produce the jewelry article (100) as claimed in claim 10, wherein the jewelry article (100) is an array of closed links (110).
17. The process to produce the jewelry article (100) as claimed in claim 10, wherein the prescribed thickness dimension (44) all around is non-uniform.
18. The process to produce the jewelry article (100) as claimed in claim 10, wherein the prescribed thickness dimension (44) all around is uniform.
19. The process to produce the jewelry article (100) as claimed in claim 10, wherein the inner core (50) integrally comprises mechanically moving, flexing and load bearing part of an active jewelry including a hinge (112), a locking clasp (113).
20. The process to produce the jewelry article (100) as claimed in claim 10, wherein the jewelry article (100) is of a non-symmetrical shape (101) and contour, with open ends (102) or without ends (103).
Description
BRIEF DESCRIPTION OF DRAWINGS
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DETAILED DESCRIPTION OF INVENTION
[0044] The preferred embodiment of jewelry as per our invention and process thereof is now being described with the help of drawings. It is to be noted that virtually unlimited number of shapes can be created using the concept of this product and process invention and therefore no shape and material described here is to be misconstrued as limiting this process invention.
[0045] The present invention describes a dual metal jewelry and a process to make such a jewelry of precious metals having a core of non-precious material, preferably a metal or a metal alloy, within.
[0046]
[0047] The outer object (11) has a plurality of outer markers (12a, 12b and 12c). All markers may be identical and symmetrically located on the outer object (11). As a variation, the outer markers (12a, 12b, 12c) may be dimensionally different from one another and asymmetrically located.
[0048] The inner object (51) has a plurality of inner markers (52a, 52b and 52c). Each inner marker is identical in dimension and orientation to corresponding outer markers (12a, 12b, 12c) respectively. More specifically, the inner markers (52a, 52b, 52c) and the outer markers (12a, 12b, 12c) are constructed to form marker pairs (52a, 12a), (52b, 12b), (52c, 12c) and so on, such that the inner markers and the outer markers can completely overlap only in one situation. The inner markers (52a, 52b, 52c) are located on the inner object (51) such that the outer markers as well as the inner markers are identically located with respect to a common reference coordinate (40). For the preset embodiment, which is circular, the reference coordinate (40) may be a center of the inner object (51), which is also the center of the outer object (11).
[0049] The inner markers (52a, 52b, 52c) and which are identical to the outer markers (12a, 12b, 12c) are such differently shaped and oriented that they completely overlap only in one situation.
[0050]
[0051] The thickness dimension (44) of the outer object (11) is carefully and prudently decided based on precious metal selected and features/strength required. Hence a thickness dimension (44) of a silver jewelry may be higher than an identical jewelry made in gold. Whether or not precious stones are studded, and their size is also an important factor deciding the thickness dimension (44).
[0052] Available CAD systems are capable of producing output in different forms like print binary or drawing exchange format (DXF) or stereo lithographic format (STL). STL format is the format usable as an input to three-dimensional (3D) printing machines. There are several such design systems available, Rhino, ProE, CATIA, AutoCAD, Solidworks etc. are just to cite few.
[0053] 3D printing machines are known to “print” i.e., produce the CAD model using materials which have low melting point—like wax, polyethylene, Acrylonitrile butadiene styrene (ABS). Our inventive process also requires low surface hardness and therefore physical solid model is obtained by inputting wax or equivalent material.
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[0059] Jewelry articles producible by the present inventive process can be studded with diamonds and precious stones, by pushing them in wax/equivalent material of the jewelry pre-article (100p).
[0060]
[0061] Importantly, mechanically moving, flexing and load bearing part of an active jewelry are optionally made of non-precious metal as per present invention, giving a longer durability to such jewelry. The term “active jewelry” signifies that such jewelry has movable and or flexing parts which encounter varying mechanical parameters while in use.
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[0063] A preferred embodiment of the casting process referred to above is as follows:
[0064] Process Variations and Alternatives:
[0065] Use of CNC machining to produce models of wax, brass, bronze or silver.
[0066] Use of resins(s) instead of wax as a 3D print material