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Investment strength as a function of time and temperature.

C L Chew1, M F Land, C C Thomas

  • 1University of Singapore, School of Dentistry.

Journal of Dentistry
|April 8, 1999
PubMed
Summary

This study compared how two types of dental investment materials—phosphate-bonded and gypsum-bonded—change in strength when heated. Researchers tested samples at different times and temperatures to see how they performed. They found that phosphate-bonded materials became much stronger at high temperatures, while gypsum-bonded materials stayed about the same. The strongest point for all materials came around two hours after mixing. This suggests that phosphate-bonded investments may be better for high-temperature dental casting processes.

Keywords:
dental investment materialsthermal behavior analysisphosphate-bonded investmentscompressive strength testing

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Area of Science:

  • Dental materials science
  • Materials thermal behavior analysis
  • Compressive strength testing in dentistry

Background:

Prior research has shown that investment materials used in dental casting can vary in performance under heat. Established knowledge includes baseline compressive strength measurements at room temperature. No prior work had resolved how these materials behave when exposed to high temperatures over time. This gap motivated an investigation into how compressive strength changes with time and temperature. The study aimed to clarify if phosphate-bonded and gypsum-bonded investments respond similarly to thermal exposure. It was already known that phosphate-based materials are commonly used in dental applications. However, uncertainty remained about their behavior at elevated temperatures. This paper’s contribution is to provide data on strength changes under controlled thermal conditions.

Purpose Of The Study:

The study aimed to evaluate compressive strength changes in selected investment materials. It focused on how these changes occur as a function of time and temperature after mixing. The motivation was to determine if phosphate-bonded and gypsum-bonded investments behave differently under heat. Researchers tested specimens at multiple time points and temperatures to capture these variations. The goal was to establish baseline values at room temperature and compare them with high-temperature results. The study also sought to determine peak strength timing for each material. By analyzing strength at 700°C and 872°C, the team aimed to identify temperature-dependent behavior. The findings could inform dental casting practices and material selection.

Main Methods:

Three types of investment materials were selected for the study. A total of 288 cylindrical specimens were fabricated for testing. Each material was tested at four time points after mixing: 2, 6, 12, and 24 hours. Specimens were heated at a rate of 15°C per minute in a burnout oven. After reaching the target temperature, they were soaked for five minutes. The samples were then transferred to a preheated chamber on an Instron testing machine. Compressive load was applied at a crosshead speed of 2 mm/min until failure. Strength measurements were recorded in MN/m² for each specimen and material combination.

Main Results:

The gypsum-bonded investment showed minimal variation in strength at different temperatures and times. In contrast, phosphate-bonded investments exhibited significant changes in compressive strength. At 700°C and 872°C, phosphate-bonded materials demonstrated marked differences in strength. Peak strength for all materials occurred approximately two hours after mixing at elevated temperatures. At room temperature, phosphate-bonded materials were not significantly stronger than gypsum-bonded ones. However, they showed increased strength as time and temperature increased. The highest compressive strength values were observed at 872°C for phosphate-bonded investments. These results suggest that phosphate-bonded materials respond more dynamically to thermal exposure.

Conclusions:

The authors found that phosphate-bonded investments showed greater variability in compressive strength with time and temperature. Gypsum-bonded investments remained relatively stable under the same conditions. At elevated temperatures, all materials reached peak strength around two hours post-mixing. The phosphate-bonded materials exhibited higher strength increases compared to gypsum-bonded ones. These findings suggest that phosphate-bonded investments may be more suitable for high-temperature applications. The study also highlights the importance of timing when handling investment materials. The results may inform dental professionals about optimal working conditions for these materials. The authors propose that further research could explore long-term thermal effects.

Phosphate-bonded investments showed higher compressive strength increases with time and temperature compared to gypsum-bonded ones.

Phosphate-bonded investments were tested at 700°C and 872°C, while gypsum-bonded were tested only at 700°C.

All materials reached peak compressive strength at 2 hours after mixing when exposed to elevated temperatures.

The Instron machine applied compressive load at 2 mm/min until failure to measure strength in MN/m².

A total of 288 specimens were fabricated, with 9 samples per condition.

The authors propose that phosphate-bonded investments may be more suitable for high-temperature dental applications.