Low-melting 18k gold material, manufacturing process and application thereof
By adjusting the composition and process of 18K gold, lowering the alloy's melting point and improving its performance, the high energy consumption and casting problems caused by high melting points have been solved, achieving environmentally friendly and efficient low-melting-point 18K gold manufacturing.
Patent Information
- Application Number
- CN202511302046.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-12
- Publication Date
- 2025-12-16
- Estimated Expiration
- 2045-09-12
AI Technical Summary
The high melting point of existing 18K gold alloys leads to high energy consumption, complex processes, and casting defects. At the same time, methods to lower the melting point often sacrifice alloy performance or are not environmentally friendly.
Using a composition of Au 75.0%, Ag 8.0% - 12.0%, Cu 4.5% - 6.5%, Pd 1.5% - 3.0%, Zn 2.0% - 4.0%, Si 0.1% - 0.5%, and C 0.1% - 0.3%, a carbon conversion material such as niobium pentoxide is added, and a eutectic mixture is formed by vacuum or protective atmosphere melting and homogenization heat treatment.
The alloy's melting point is reduced by 60°C, its mechanical strength and casting performance are improved, its fluidity is enhanced, and its environmental friendliness is strengthened, making it suitable for precision jewelry manufacturing.
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Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of alloy materials, in particular to a low-melting-point 18K gold material, a manufacturing process thereof and an application thereof. BACKGROUND
[0002] 18K gold is an alloy formed by smelting gold and other metals. Its core material is composed of 75 wt% pure alloy and 25 wt% other metals; its specific composition is composed according to color requirements, and common other metal elements include silver, copper, zinc, nickel, palladium, and per. Compared with pure gold, 18K gold can improve hardness, enhance ductility, and reduce cost by adding other metal elements.
[0003] 18K gold (gold content 75 wt%) has become one of the most mainstream materials in the jewelry manufacturing industry due to its good balance of color, hardness, and price. The melting point of traditional 18K gold alloy (such as 18K yellow gold, usually composed of 75% gold, 15% silver, and 10% copper) is usually between 880°C and 920°C. The high melting point brings a series of problems:
[0004] High energy consumption: higher temperature is required for smelting, increasing energy consumption and production cost.
[0005] Complex process: high temperature requires higher refractoriness of smelting crucible and casting mold, and is easy to cause oxidation and air absorption of the metal liquid, resulting in casting defects such as pores and shrinkage.
[0006] Currently, there have been some studies on reducing the melting point of gold alloy by adding low-melting-point metals (such as zinc, tin, and indium). However, these additions often come at the expense of other properties of the alloy, for example:
[0007] Excessive addition of zinc and tin will cause the alloy to become brittle and the processing performance to deteriorate.
[0008] Some elements (such as cadmium) can effectively reduce the melting point and improve the fluidity, but they are toxic to the human body and have been banned by the industry.
[0009] Some elements (such as indium) are high in cost and are not suitable for large-scale commercial application.
[0010] In order to increase the mechanical strength, hardness, and wear resistance of the alloy, carbon materials are often added during the smelting process, and the addition of carbon materials will cause the generation of CO during the smelting process, which does not meet the environmental protection requirements.
[0011] Therefore, it is a technical problem to be solved in the field to develop a new alloy that can significantly reduce the melting point while maintaining or even improving the casting performance, mechanical properties, and environmental protection of 18K gold alloy. SUMMARY
[0012] The present application aims to provide a low-melting-point 18K gold material, a manufacturing process thereof and an application thereof, and aims to solve the technical problem of reducing the melting point while reducing the mechanical strength of the alloy in the prior art.
[0013] The present application can achieve the above-mentioned purpose by the following technical solution: a low-melting-point 18K gold material, consisting of the following components in percentage by weight:
[0014] Au 75.0%;
[0015] Ag 8.0% - 12.0%;
[0016] Cu 4.5% - 6.5%;
[0017] Ge 2.0% - 3.0%;
[0018] Pd 1.5% - 3.0%;
[0019] Zn 2.0% - 4.0%;
[0020] Si 0.1% - 0.5%;
[0021] C 0.1% - 0.3%;
[0022] and unavoidable impurities in a total amount of not more than 0.2%;
[0023] The low-melting-point 18K gold material is added with a carbon conversion material in the smelting process, and the carbon conversion material is a metal oxide.
[0024] The present application also provides a manufacturing process of a low-melting-point 18K gold material, comprising the following steps:
[0025] a) weighing gold, silver, copper and palladium raw materials in the formula mass percentage;
[0026] b) heating and melting the raw materials in step a) under vacuum or a protective atmosphere to form a mother alloy liquid;
[0027] c) adding zinc, silicon and germanium elements to the mother alloy liquid, stirring and mixing uniformly, then adding a carbon conversion material, stirring and mixing uniformly, and after the reaction is completed, filtering the carbon conversion material to obtain an alloy melt;
[0028] d) pouring the alloy melt into an ingot;
[0029] e) homogenizing heat treatment of the ingot.
[0030] Further, the protective atmosphere in step b) is argon, and the smelting temperature is 1000-1050℃.
[0031] Further, the zinc and silicon elements in step c) are added in the form of zinc-silicon intermediate alloy.
[0032] Further, the carbon and germanium in step c) are added in the form of germanium and reduced graphene oxide composite material, wherein the preparation method of the germanium and reduced graphene oxide composite material is as follows:
[0033] The germanium dioxide and graphene oxide dry powder are mechanically mixed at a molar ratio of 1:4 to obtain a dry powder mixture, the dry powder mixture is heated to 900℃ at a heating rate of 5℃ / min in a continuous argon stream and kept for 1 hour, and then cooled to room temperature at a cooling rate of 5℃ / min to obtain the germanium and reduced graphene oxide composite material.
[0034] Further, the carbon conversion material in step c) is niobium pentoxide.
[0035] Further, the pouring temperature in step d) is 880-920℃.
[0036] Further, the homogenization heat treatment condition in step e) is: keeping at 680-720℃ for 3-5 hours, and then cooling.
[0037] The present application has the following beneficial effects:
[0038] 1. The melting point of the alloy is generally lower than that of the constituent metal. The addition of other metal atoms increases the crystal lattice defects, thereby reducing the melting point. By introducing a metal with a lower melting point, a eutectic mixture or solid solution is formed.
[0039] 2. Through the synergistic melting reduction effect of Pd-Si-Zn, the solidus temperature of the 18K gold alloy of the present application can be reduced to 800-820℃, and the liquidus temperature can be reduced to 850-870℃, which is about 60℃ lower than that of the traditional 18K gold alloy.
[0040] 3. The addition of palladium effectively neutralizes the copper red color, and the obtained alloy is pure and meets the aesthetic demand of the market for gold jewelry.
[0041] 4. The lower melting point and the addition of silicon greatly improve the fluidity of the molten liquid and the mold filling ability of the casting, reduce casting defects, and have good surface finish, which is very suitable for precision jewelry casting.
[0042] 5. After the alloy is smelted and heat treated by adding graphene material, it has good strength and moderate toughness, which meets the requirements of jewelry processing (such as filing, sawing, and forging).
[0043] 6. During the smelting process, niobium pentoxide is added, which can oxidize carbon monoxide to carbon dioxide in the gold melt during smelting, reducing the emission of carbon monoxide and making the smelting process more environmentally friendly. DETAILED DESCRIPTION
[0044] The technical solutions of the present application will be described clearly and completely below in conjunction with the embodiments. Obviously, the described embodiments are only a part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all the other embodiments obtained by a person of ordinary skill in the art without creative work fall within the protection scope of the present application.
[0045] Embodiment 1
[0046] The present embodiment provides a manufacturing process of low-melting-point 18K gold material, comprising the following steps:
[0047] a) proportionally weighing gold 75%, silver 10.7%, copper 6%, palladium 2% raw materials according to the mass percentage of the formula;
[0048] b) under a nitrogen atmosphere, heating the raw materials of step a) to 1050℃ to melt and form a mother alloy liquid;
[0049] c) adding zinc 3%, silicon 0.3% zinc-silicon intermediate alloy and 3.0% germanium and reduced graphene oxide composite to the mother alloy liquid, stirring and mixing uniformly, then adding 1% niobium pentoxide of the added amount of germanium and reduced graphene oxide composite, stirring and mixing uniformly, continuing to react for 30 min, and filtering the niobium pentoxide to obtain an alloy melt;
[0050] d) pouring the alloy melt into an ingot, and the pouring temperature is 900℃;
[0051] e) subjecting the ingot to homogenization heat treatment, and the homogenization heat treatment conditions are: holding at 700℃ for 4 hours, and then cooling.
[0052] Embodiment 2
[0053] The present embodiment provides a manufacturing process of low-melting-point 18K gold material, comprising the following steps:
[0054] a) proportionally weighing gold 75%, silver 11%, copper 6%, palladium 2.2% raw materials according to the mass percentage of the formula;
[0055] b) under a nitrogen atmosphere, heating the raw materials of step a) to 1050℃ to melt and form a mother alloy liquid;
[0056] c) adding zinc 3%, silicon 0.3% zinc-silicon intermediate alloy and 2.5% germanium and reduced graphene oxide composite to the mother alloy liquid, stirring and mixing uniformly, then adding 1% niobium pentoxide of the added amount of germanium and reduced graphene oxide composite, stirring and mixing uniformly, continuing to react for 30 min, and filtering the niobium pentoxide to obtain an alloy melt;
[0057] d) pouring the alloy melt into an ingot, the pouring temperature being 900°C;
[0058] e) subjecting the ingot to homogenization heat treatment, the homogenization heat treatment conditions being: holding at 700°C for 4 hours, followed by cooling.
[0059] Example 3
[0060] The present example provides a manufacturing process of a low melting point 18K gold material, comprising the following steps:
[0061] a) weighing the raw materials of gold 75%, silver 10%, copper 6.7%, palladium 2% according to the formula mass percentage;
[0062] b) heating the raw materials of step a) to 1050°C under a nitrogen atmosphere to form a master alloy liquid;
[0063] c) adding 3% zinc and 0.3% silicon intermediate alloy of zinc and silicon and 3.0% germanium and reduced graphene oxide composite to the master alloy liquid, stirring and mixing uniformly, then adding 1% niobium pentoxide of the added amount of germanium and reduced graphene oxide composite, stirring and mixing uniformly, continuing to react for 30 min, and filtering the niobium pentoxide to obtain an alloy melt;
[0064] d) pouring the alloy melt into an ingot, the pouring temperature being 900°C;
[0065] e) subjecting the ingot to homogenization heat treatment, the homogenization heat treatment conditions being: holding at 700°C for 4 hours, followed by cooling.
[0066] Comparative Example 1
[0067] The difference between this comparative example and Example 1 is that no carbon conversion material is added in step c).
[0068] Comparative Example 2
[0069] The difference between this comparative example and Example 1 is that the germanium is added in the form of germanium alloy in step c), and no carbon element is added.
[0070] Performance test:
[0071] The performance of the alloys of Example 1 and Comparative Example was tested, I. Hardness test: equipment (name: microhardness tester; model: HV-1000Z).
[0072] Detection method: 1. The sample was made into a sample size of 0.5*0.5*1mm; 2. The sample was inlaid and molded; 3. The sample was polished with 1000, 2000, 3000 and 5000 mesh sandpaper in turn; 4. The sample hardness was detected by a microhardness tester; the equipment parameter settings were: test force 50g; magnification 40X; holding time 10s; measurement scale HV.
[0073] II. Tensile strength test: equipment (name: desktop tensile testing machine; model: HD-601).
[0074] Detection method: 1. The sample was made into a sample size of 4*4*30mm; 2. The sample was clamped into the equipment clamp; 3. The value was recorded by the testing machine; the equipment parameter settings were: test speed 0.1-1mm / min (displacement speed); the stop condition was to be pulled apart.
[0075] The results are shown in Table 1 below:
[0076] Table 1
[0077]
[0078] The melting point (liquid / solidus) of the alloy of Example 1 is significantly lower than that of Comparative Example 3, with a decrease of more than 60℃.
[0079] The mechanical strength is higher than that of traditional 18K gold, and although the elongation rate decreases slightly, it is still at an excellent level (20%), fully meeting the requirements of all jewelry manufacturing processes. The casting fluidity is increased by 20%, which means that more complex structures and finer details of jewelry can be produced.
[0080] The CO oxidation catalysis test was carried out in a fixed-bed glass reactor loaded with 0.15 g of carbon conversion material sample (weight hourly space velocity (WHSV) = 20000 mL h -1 g -1 ), and the reaction gas containing 1vol% CO in air was directly sent from a steel cylinder without purification. In all cases, pretreatment was carried out at 250℃ for 1 hour in a dry air stream at a flow rate of 50mL / min. After pretreatment, the carbon conversion material sample was cooled to room temperature, and then the raw material gas was converted to the reaction gas at various temperatures under a total pressure of 0.1MPa. The inlet and outlet gases were analyzed by online gas chromatography (Shimadzu GC-8A equipped with TCD and molecular sieve 13X chromatographic column) to obtain the conversion rate of CO, which was calculated to be 34%, which means that the carbon conversion material prepared in the present application has a certain effect in the oxidation of CO.
[0081] In summary, the low-melting-point 18K gold material with excellent comprehensive performance is successfully provided, which has great application potential and market prospect in the field of jewelry manufacturing.
[0082] The above is only an example and description of the structure of the present application, and those skilled in the art can make various modifications or supplements to the described specific embodiments or replace them with similar ways, as long as they do not deviate from the structure of the application or exceed the scope defined by the claims.
[0083] In the description of the present application, the description of the terms "one embodiment", "example", "specific example" and the like means that the specific features, structures, materials or characteristics described in conjunction with the embodiment or example are contained in at least one embodiment or example of the present application. In the present application, the illustrative description of the above terms does not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described can be combined in any one or more embodiments or examples in a suitable manner.
[0084] The preferred embodiments of the present application disclosed above are only used to help explain the present application. The preferred embodiments do not describe all the details and limit the present application to the specific embodiments. Obviously, many modifications and changes can be made according to the content of the present application. The present application selects and describes these embodiments in order to better explain the principles and practical applications of the present application, so that those skilled in the art can well understand and utilize the present application. The present application is limited only by the claims and their full scope and equivalents.
Claims
1. A low melting point 18K gold material, characterized by, The low-melting 18K gold material consists of the following components in percentage by weight: Au 75.0%; Ag 8.0% - 12.0%; Cu 4.5% - 6.5%; Ge 2.0% - 3.0%; Pd 1.5% - 3.0%; Zn 2.0% - 4.0%; Si 0.1% - 0.5%; C 0.1% - 0.3%; and unavoidable impurities in a total amount of not more than 0.2%; The low-melting 18K gold material is added with a carbon conversion material during smelting, and the carbon conversion material is a metal oxide.
2. The manufacturing process of low melting point 18K gold material according to claim 1, characterized in that, The method comprises the following steps: a) weighing gold, silver, copper and palladium raw materials in proportion according to the mass percentage of the formula; b) heating and melting the raw materials in step a) under vacuum or a protective atmosphere to form a mother alloy liquid; c) adding zinc, silicon and carbon, germanium elements to the mother alloy liquid, stirring and mixing uniformly, then adding a carbon conversion material, stirring and mixing uniformly, filtering the carbon conversion material after the reaction to obtain an alloy melt; d) pouring the alloy melt into an ingot; e) subjecting the ingot to homogenization heat treatment.
3. The manufacturing process of low melting point 18K gold material according to claim 2, characterized in that, The protective atmosphere in step b) is argon, and the smelting temperature is 1000-1050℃.
4. The manufacturing process of low melting point 18K gold material according to claim 2, wherein, The zinc and silicon elements in step c) are added in the form of a zinc-silicon intermediate alloy.
5. The manufacturing process of low melting point 18K gold material according to claim 2, wherein, The carbon and germanium in step c) are added in the form of a germanium and reduced graphene oxide composite material, and the preparation method of the germanium and reduced graphene oxide composite material is as follows: GeO2 and graphene oxide dry powder are mechanically mixed at a molar ratio of 1:4 to obtain a dry powder mixture, the dry powder mixture is heated to 900℃ at a heating rate of 5℃ / min in a continuous argon stream and kept for 1 hour, then cooled to room temperature at a cooling rate of 5℃ / min to obtain the germanium and reduced graphene oxide composite material.
6. The manufacturing process of low melting point 18K gold material according to claim 2, wherein, The carbon conversion material in step c) is niobium pentoxide.
7. The manufacturing process of low melting point 18K gold material according to claim 2, wherein, The pouring temperature in step d) is 880-920℃.
8. The manufacturing process of low melting point 18K gold material according to claim 2, wherein, The homogenization heat treatment conditions in step e) are: holding at 680-720℃ for 3-5 hours, and then cooling.
9. A jewelry article, characterized by Made of the low-melting 18K gold material of claim 1 or 2.
Citation Information
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18K rose gold alloy with excellent elasticity performance
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