Literature DB >> 9171504

Metallurgical structure and microhardness of four new palladium-based alloys.

S G Vermilyea1, Z Cai, W A Brantley, J C Mitchell.   

Abstract

PURPOSE: This investigation compared the Vickers hardness and microstructures of four recently marketed, palladium-based alloys for metal-ceramic restorations.
MATERIALS AND METHODS: Wax patterns simulating copings for maxillary central incisors were invested in a fine-grained, carbon-free, phosphate-bonded investment. Following burnout, the palladium alloys were fused with a gas-oxygen torch, centrifugally cast, and bench-cooled. Representative castings were embedded in transparent metallographic resin and sectioned to yield two mirror-image specimens. The specimens were evaluated in either the as-cast condition or following heat treatment simulating the firing cycles for Vita VMK porcelain. Vickers hardness measurements (n = 50) were made using a 1-kg load, and photomicrographs of polished and etched specimens were obtained with a scanning electron microscope.
RESULTS: The measured values of microhardness for the as-cast alloys were in excellent agreement with values reported by the manufacturer. The hardness in the as-cast condition was significantly greater for the Pd-Cu-Ga-In alloy, compared with the other three alloys, which did not contain copper. For the three high-palladium (> or = 75 wt%) alloys, there were small (4%-8%) decreases in hardness following heat treatment, whereas a larger decrease (13%) in hardness occurred for the Pd-Ag-In-Sn alloy after heat treatment. The porcelain firing cycles caused microstructural homogenization for all four alloys, and the relatively thick near-surface oxidation region in the Pd-Cu-Ga-In and Pd-Ag-In-Sn alloys was not observed in the two heat-treated Pd-Ga-Ag-In-Au alloys.
CONCLUSIONS: The multiphasic microstructures of these alloys may have some significance for the in vitro and clinical corrosion behavior and the metal-ceramic bond strength. The hardness for the three high-palladium alloys may be controlled by submicroscopic precipitates that remain unaltered by heat treatment. The significantly greater hardness for the Pd-Cu-Ga-In alloy may cause greater difficulty for finishing castings in the dental laboratory compared with the other three alloys studied. The strengthening mechanism for the Pd-Ag-In-Sn alloy has significant temperature dependence, which might be exploited to achieve optimum mechanical properties.

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Year:  1996        PMID: 9171504     DOI: 10.1111/j.1532-849x.1996.tb00513.x

Source DB:  PubMed          Journal:  J Prosthodont        ISSN: 1059-941X            Impact factor:   2.752


  5 in total

1.  Fatigue limits and SEM/TEM observations of fracture characteristics for three Pd-Ag dental casting alloys.

Authors:  Dongfa Li; William A Brantley; Wenhua Guo; William A T Clark; Satish B Alapati; Reza H Heshmati; Glenn S Daehn
Journal:  J Mater Sci Mater Med       Date:  2007-01       Impact factor: 3.896

2.  Annealing study of palladium-silver dental alloys: Vickers hardness measurements and SEM microstructural observations.

Authors:  W H Guo; W A Brantley; D Li; W A T Clark; P Monaghan; R H Heshmati
Journal:  J Mater Sci Mater Med       Date:  2007-01       Impact factor: 3.896

3.  Heat treatment effects on electrochemical corrosion parameters of high-Pd alloys.

Authors:  D W Berzins; I Kawashima; R Graves; N K Sarkar
Journal:  J Mater Sci Mater Med       Date:  2007-06-28       Impact factor: 3.896

4.  Study of Pd-Ag dental alloys: examination of effect of casting porosity on fatigue behavior and microstructural analysis.

Authors:  D Li; N Baba; W A Brantley; S B Alapati; R H Heshmati; G S Daehn
Journal:  J Mater Sci Mater Med       Date:  2010-07-10       Impact factor: 3.896

5.  A rational synthesis of ultrasmall palladium-based alloys with superhydrophilicity as biocompatible agents and recyclable catalysts.

Authors:  Shiyue Chen; Xiaoxiao He; Xulei Yuan; Zhenyu Wang; Teng Wang; Chengdian He; Ximu Zhang; Xiang Mao
Journal:  RSC Adv       Date:  2022-03-11       Impact factor: 3.361

  5 in total

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