Patents Assigned to Sun Xing Chemical & Metallurgical Materials (Shenzhen) Co., Ltd.
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Publication number: 20120043050Abstract: The present invention relates to the field of magnesium and magnesium alloy processing, and discloses a use of aluminum-zirconium-carbon (Al—Zr—C) intermediate alloy in wrought processing of magnesium and magnesium alloys, wherein the aluminum-zirconium-carbon intermediate alloy has a chemical composition of: 0.01% to 10% Zr, 0.01% to 0.3% C, and Al in balance, based on weight percentage; the wrought processing is plastic molding; and the use is to refine the grains of magnesium or magnesium alloys. The present invention further discloses the method for using the aluminum-zirconium-carbon (Al—Zr—C) intermediate alloy in casting and rolling magnesium and magnesium alloys. The present invention provides an aluminum-zirconium-carbon (Al—Zr—C) intermediate alloy and the use thereof in the plastic wrought processing of magnesium or magnesium alloys as a grain refiner.Type: ApplicationFiled: April 22, 2011Publication date: February 23, 2012Applicant: Sun Xing Chemical & Metallurgical Materials (Shenzhen) Co., Ltd.Inventors: Xuemin Chen, Qingdong Ye, Yueming Yu, Jianguo Li
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Publication number: 20120039791Abstract: The invention provides a Potassium Fluotitanate (K2TIF6) manufacture process. The Potassium Fluotitanate (K2TIF6) manufacture process includes steps: A. providing titanium ferrum powder to a reaction furnace and adding HF and peroxide solution to react with the titanium ferrum powder sufficiently to manufacture H2TiF6, B. filtrating the sufficiently mixed solution of step A and adding it to another reaction furnace, and then after the H2TiF6 cools off, adding Potassium Chloride (KCl) solution to react with the mixed solution to manufacture Potassium Fluotitanate (K2TiF6); C. adding K2CO3 solution to the remaining solution of step B and react with the remaining solution and controlling the pH value, the element Fe is recycled by a form of Fe(OH)3 flocculent precipitate and the Potassium Chloride (KCl) and KF solution are recycled.Type: ApplicationFiled: July 29, 2010Publication date: February 16, 2012Applicant: Sun Xing Chemical & Metallurgical Materials (Shenzhen) Co., Ltd.Inventors: Xuemin Chen, Qingdong Ye, Jianguo Li, Chaowen Liu, Yueming Yu
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Publication number: 20120039746Abstract: The present invention pertains to the field of metal alloy, and discloses an aluminum-zirconium-titanium-carbon grain refiner for magnesium and magnesium alloys, having a chemical composition of: 0.01%˜10% Zr, 0.01%˜10% Ti, 0.01%˜0.3% C, and Al in balance, based on weight percentage. Also, the present invention discloses the method for preparing the grain refiner. The grain refiner according to the present invention is an Al—Zr—Ti—C intermediate alloy having great nucleation ability and in turn excellent grain refining performance for magnesium and magnesium alloys, and is industrially applicable in the casting and rolling of magnesium and magnesium alloy profiles, enabling the wide use of magnesium in industries.Type: ApplicationFiled: July 21, 2011Publication date: February 16, 2012Applicant: Sun Xing Chemical & Metallurgical Materials (Shenzhen) Co., Ltd.Inventors: Xuemin Chen, Qingdong Ye, Yueming Yu, Jianguo Li
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Publication number: 20120039745Abstract: The present invention pertains to the field of metal alloy, and relates a grain refiner for magnesium and magnesium alloys, which is an aluminum-zirconium-carbon (Al—Zr—C) intermediate alloy, having a chemical composition of: 0.01%˜10% Zr, 0.01%˜0.3% C, and Al in balance, based on weight percentage. Also, the present invention discloses the method for preparing the grain refiner. The grain refiner according to the present invention is an intermediate alloy having great nucleation ability and in turn excellent grain refining performance for magnesium and magnesium alloys, and is industrially applicable in the casting and rolling of magnesium and magnesium alloy profiles, enabling the wide use of magnesium in industries.Type: ApplicationFiled: April 22, 2011Publication date: February 16, 2012Applicant: Sun Xing Chemical & Metallurgical Materials (Shenzhen) Co., Ltd.Inventors: Xuemin Chen, Qingdong Ye, Yueming Yu, Jianguo Li
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Publication number: 20110308758Abstract: The present invention discloses a method for producing an aluminum-zirconium-carbon (Al—Zr—C) intermediate alloy; the Al—Zr—C intermediate alloy has a chemical composition of 0.01% to 10% Zr, 0.01% to 0.3% C, and Al in balance; the producing method comprising the steps of: producing commercially pure aluminum, zirconium metal, and graphite material according to the weight percentages of the aluminum-zirconium-carbon intermediate alloy; the graphite is graphite powder having an average particle size of 0.074 mm to 1 mm; and the graphite powder is subjected to the following treatments: being added to the aqueous solution of KF, NaF, K2ZrF6, K2TiF6 or the combination thereof, soaked for 12 to 72 hours, filtrated or centrifuged, and dried at 80° C. to 200° C. for 12 to 24 hours; melting the commercially pure aluminum and keeping it at 700° C. to 900° C.Type: ApplicationFiled: April 23, 2011Publication date: December 22, 2011Applicant: Sun Xing Chemical & Metallurgical Materials (Shenzhen) Co., Ltd.Inventors: Xuemin Chen, Qingdong Ye, Yueming Yu, Jianguo Li
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Publication number: 20110192253Abstract: A method for purifying Al-Ti-B) alloy melt includes putting and melting industrial aluminum ingot in an electromagnetic induction smelting furnace, the melt of Al being covered by a high-temperature covering agent, and its temperature up to at about 670˜90° C.; adding material of K2TiF6 and KBF4 into the smelting furnace and then stirring the compounds therein to react; adding compound comprising Mg, L, Na and F to the evenly stirred K2TiF6 and KBF4, the compound having an amount about 0.01%˜1% of a sum weight of total K2TiF6 and KBF4, and uniformly stirring for about 15-60 minutes under a reaction temperature being constantly at about 670˜900° C., the dregs being removed, the Al alloy being casting molded.Type: ApplicationFiled: May 10, 2010Publication date: August 11, 2011Applicant: Sun Xing Chemical & Metallurgical Materials (Shenzhen) Co., Ltd.Inventors: Xuemin Chen, Qingdong Ye, Jianguo LI, Chaowen Liu, Yueming Yu
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Publication number: 20110192208Abstract: A method for controlling variations of Al—Ti—B alloy crystal grain refinement ability through controlling a compression ratio of sectional area of Al—Ti—B alloy including: A. establishing a relationship between variations of refinement ability of Al—Ti—B alloy crystal grain and parameters of press process of the Al—Ti—B alloy; setting the parameters of press process and controlling the variation of the refinement ability of the Al—Ti—B alloy crystal grain through controlling a value of the compression ratio.Type: ApplicationFiled: May 10, 2010Publication date: August 11, 2011Applicant: Sun Xing Chemical & Metallurgical Materials (Shenzhen) Co., Ltd.Inventors: Xuemin Chen, Qingdong Ye, Jianguo Li, Chaowen Liu, Yueming Yu
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Publication number: 20110192503Abstract: A method for controlling variations of Al—Ti—C alloy crystal grain refinement ability through controlling a compression ratio of sectional area of Al—Ti—C alloy including: A. establishing a relationship between variations of refinement ability of Al—Ti—C alloy crystal grain and parameters of press process of the Al—Ti—C alloy; setting the parameters of press process and controlling the variation of the refinement ability of the Al—Ti—C alloy crystal grain through controlling a value of the compression ratio.Type: ApplicationFiled: May 10, 2010Publication date: August 11, 2011Applicant: Sun Xing Chemical & Metallurgical Materials (Shenzhen) Co., Ltd.Inventors: Xuemin Chen, Qingdong Ye, Jianguo Li, Chaowen Liu, Yueming Yu
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Publication number: 20110194584Abstract: An electromagnetic induction melting furnace to control an average nominal diameter of the TiC cluster of the Al—Ti—C alloy includes a main body containing the melted alloy; and a multi-layer coil disposed on the main body, wherein a frequency of the alternative current of each coil of the multi-layer coil is different, and the alloy is heated by inducing a magnetic field generated by the alternative currents. The selection of the frequency and the changeable magnetic field may reduce the cohesion force between the TiC grains of the Al—Ti—C alloy to control the average nominal diameter of the TiC cluster.Type: ApplicationFiled: May 11, 2010Publication date: August 11, 2011Applicant: Sun Xing Chemical & Metallurgical Materials (Shenzhen) Co., Ltd.Inventors: Xuemin Chen, Qingdong Ye, Jianguo Li, Chaowen Liu, Yueming Yu
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Publication number: 20110164650Abstract: An electromagnetic induction melting furnace to control an average nominal diameter of the TiB2 cluster of the Al—Ti—B alloy includes a main body containing the melted alloy; and a multi-layer coil disposed on the main body, wherein a frequency of the alternative current of each coil of the multi-layer coil is different, and the alloy is heated by inducing a magnetic field generated by the alternative currents. The selection of the frequency and the changeable magnetic field may reduce the cohesion force between the TiB2 grains of the Al—Ti—B alloy to control the average nominal diameter of the TiB2 cluster.Type: ApplicationFiled: May 11, 2010Publication date: July 7, 2011Applicant: Sun Xing Chemical & Metallurgical Materials (Shenzhen) Co., Ltd.Inventors: Xuemin Chen, Qingdong Ye, Jianguo Li, Chaowen Liu, Yueming Yu