MX365570B - Process for producing porous metal composites with hydroxyapatite for implants and the metal-hydroxyapatite composite. - Google Patents

Process for producing porous metal composites with hydroxyapatite for implants and the metal-hydroxyapatite composite.

Info

Publication number
MX365570B
MX365570B MX2015001840A MX2015001840A MX365570B MX 365570 B MX365570 B MX 365570B MX 2015001840 A MX2015001840 A MX 2015001840A MX 2015001840 A MX2015001840 A MX 2015001840A MX 365570 B MX365570 B MX 365570B
Authority
MX
Mexico
Prior art keywords
hydroxyapatite
implants
metal
precursor
high purity
Prior art date
Application number
MX2015001840A
Other languages
Spanish (es)
Other versions
MX2015001840A (en
Inventor
DÍAZ DE LA TORRE Sebastián
CASAS LUNA Mariano
Jaramillo Vigueras David
Del Rocio De La Torre Aguilar María
Cristina Piña Barba María
CELKO Ladislav
Benjamín Montúfar Jiménez Edgar
Original Assignee
Inst Politecnico Nacional
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Inst Politecnico Nacional filed Critical Inst Politecnico Nacional
Priority to MX2015001840A priority Critical patent/MX365570B/en
Publication of MX2015001840A publication Critical patent/MX2015001840A/en
Publication of MX365570B publication Critical patent/MX365570B/en

Links

Abstract

The present disclosure is related to the preparation, conditioning and consolidation of a mixture of ceramic and metallic powders processed in the right proportions, at precise temperatures and pressure, for making densified/sintered pieces with optimal mechanical and chemical properties. Once approved by the national and/or international health guidelines and after being machined for the necessary geometries, said pieces can be used as implants/prosthesis in the human body. The precursor/reactive materials are, for example, high purity HA hydroxyapatite powders, which can be purchased commercially and/or synthesized from precursor/reactive chemical liquids, and other metal powders; for example, high purity titanium (Ti or Ta), or a Ti6AI4V (biocompatible) alloy, or of other biodegradable metals/alloys.
MX2015001840A 2015-02-10 2015-02-10 Process for producing porous metal composites with hydroxyapatite for implants and the metal-hydroxyapatite composite. MX365570B (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
MX2015001840A MX365570B (en) 2015-02-10 2015-02-10 Process for producing porous metal composites with hydroxyapatite for implants and the metal-hydroxyapatite composite.

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
MX2015001840A MX365570B (en) 2015-02-10 2015-02-10 Process for producing porous metal composites with hydroxyapatite for implants and the metal-hydroxyapatite composite.

Publications (2)

Publication Number Publication Date
MX2015001840A MX2015001840A (en) 2016-08-11
MX365570B true MX365570B (en) 2019-05-17

Family

ID=58160011

Family Applications (1)

Application Number Title Priority Date Filing Date
MX2015001840A MX365570B (en) 2015-02-10 2015-02-10 Process for producing porous metal composites with hydroxyapatite for implants and the metal-hydroxyapatite composite.

Country Status (1)

Country Link
MX (1) MX365570B (en)

Families Citing this family (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN106670464B (en) * 2017-01-13 2019-06-11 哈尔滨工业大学 A kind of doubly-linked leads to the preparation method of reticular structure titanium-magnesium double metallic composite material

Also Published As

Publication number Publication date
MX2015001840A (en) 2016-08-11

Similar Documents

Publication Publication Date Title
Attar et al. Mechanical behavior of porous commercially pure Ti and Ti–TiB composite materials manufactured by selective laser melting
Yang et al. Mechanical properties of porous Ti-Mo and Ti-Nb alloys for biomedical application by gelcasting
Ibrahim et al. Powder metallurgy fabrication of porous 51 (at.%) Ni–Ti shape memory alloys for biomedical applications
CN105349833A (en) Preparation method for medical false tooth
JP2012192016A (en) Titanium-magnesium material having high strength and low elasticity
MX365570B (en) Process for producing porous metal composites with hydroxyapatite for implants and the metal-hydroxyapatite composite.
Kim et al. Shape memory characteristics of Ti–Ni–Mo alloys sintered by sparks plasma sintering
Gupta et al. Sintering of biomaterials for arthroplasty: A comparative study of microwave and conventional sintering techniques
Balog et al. CP TI fabricated by low temperature extrusion of HDH powder: Application in dentistry
Kim Mechanical properties of highly porous Ti49. 5Ni50. 5 biomaterials
Scharvogel et al. Metal injection molding of titanium for medical and aerospace applications
He et al. Characterizations on Mechanical Properties and In Vitro Bioactivity of Biomedical Ti–Nb–Zr–CPP Composites Fabricated by Spark Plasma Sintering
WO2017170964A1 (en) Calcium-base metal glass alloy molded body for medical use, and production method thereof
Adamek Mechanical Alloying of Ti-20Ta-20Nb-(10÷ 20) Mg Alloys
JP4122423B2 (en) Titanium matrix composite and implant using the same
UA92714C2 (en) METHOD FOR PRODUCing articles FROM TITANIUM ALLOYS
Aslam et al. Effects of admixed titanium on densification of 316L stainless steel powder during sintering
Ibrahim et al. Influence of Ce addition on biomedical porous Ti-51 atomic percentage (at.%) Ni shape memory alloy fabricated by microwave sintering
CN105349830A (en) Material used for preparing medical false tooth
Choy et al. Effect of porosity on compressive yield strength of microwave sintered titanium components
Shao et al. Low temperature spark plasma sintering of TC4/HA composites
ZHAO et al. Effects of hot isostatic pressing treatment parameters on mechanical properties of ZTC4 casting titanium alloy
Biesiekierski et al. A brief review of biomedical shape memory alloys by powder metallurgy
Jian et al. Titanium foam for cancellous bone implant prepared by space holder technique
Yang et al. Methods of Porous Biomedical Material Fabrication

Legal Events

Date Code Title Description
FG Grant or registration