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Temperature rise caused in the pulp chamber under simulated intrapulpal microcirculation with different light-curing
Sabri Ilhan Ramoglu1, Hilal Karamehmetoglu, Tugrul Sari
1a Associate Professor and Department Chair, Department of Orthodontics, Faculty of Dentistry, Bezmialem Vakif University, Istanbul, Turkey.
The Angle Orthodontist
|October 16, 2014
Summary
High-intensity light curing (3200 mW/cm(2) for 3 seconds) significantly reduced intrapulpal temperature rise compared to lower intensities. All tested light-curing modes remained below the critical 5.6°C threshold, ensuring pulpal safety.
Area of Science:
- Dental materials science
- Biomaterials engineering
- Conservative dentistry
Background:
- Intrapulpal temperature rise during light curing is a concern for dental pulp vitality.
- Simulating pulpal blood microcirculation is crucial for accurate temperature assessment.
Purpose of the Study:
- To compare intrapulpal temperature changes induced by different light-curing unit (LCU) modes.
- To evaluate the efficacy of high-intensity LCU in minimizing thermal stress on the dental pulp.
Main Methods:
- Extracted human incisors were used in a model simulating pulpal blood flow.
- J-type thermocouples measured temperature rise in the pulp chamber under varying LCU intensities and durations (1000-3200 mW/cm(2)).
- Light source was positioned 2 mm from the incisor's labial surface.
Main Results:
- The highest temperature rise was observed with 1000 mW/cm(2) for 15 seconds (2.6°C ± 0.54°C).
- The lowest temperature rise was recorded with 3200 mW/cm(2) for 3 seconds (1.74°C ± 0.52°C), significantly lower than other groups.
- All tested modes resulted in temperature increases below the critical 5.6°C threshold.
Conclusions:
- High-intensity light curing (3200 mW/cm(2) for 3 seconds) minimizes intrapulpal temperature rise.
- The study confirms that tested light-curing protocols are safe for dental pulp vitality.
- Optimizing light-curing parameters can mitigate risks associated with thermal damage to the pulp.

