Matsumura H, Tanoue N, Atsuta M, Kitazawa S
Department of Fixed Prosthodontics, Nagasaki University School of Dentistry, Japan.
J Dent Res. 1997 Feb;76(2):688-93. doi: 10.1177/00220345970760021001.
A high-intensity laboratory photo-curing unit has been developed with the aim of improving the post-curing properties of composite veneering materials. This study introduces the structure of the curing unit and examines the resulting properties of a representative composite material. The curing unit is equipped with two metal halide lamps that radiate both ultraviolet and visible light. Unlike conventional metal halide lamps for industrial use, these metal halide lamps radiate an increased intensity of visible radiation. Properties of a microfilled composite veneering material cured with the new metal halide unit were ascertained. A xenon photo-curing unit was also used as a control. The specimens cured with the metal halide unit exhibited greater Knoop hardness numbers and flexural moduli as compared with those cured with the xenon unit, and also showed reduced water solubility values. These results suggest that the metal halide light source is effective in curing composite materials within a shorter period of time and with improved conversion.
为了改善复合贴面材料的后固化性能,已研发出一种高强度实验室光固化装置。本研究介绍了该固化装置的结构,并检测了一种代表性复合材料的最终性能。该固化装置配备了两个能同时辐射紫外线和可见光的金属卤化物灯。与传统的工业用金属卤化物灯不同,这些金属卤化物灯辐射出强度更高的可见光。确定了用新型金属卤化物装置固化的微填料复合贴面材料的性能。还使用了氙光固化装置作为对照。与用氙气装置固化的试样相比,用金属卤化物装置固化的试样显示出更高的努氏硬度值和弯曲模量,并且水溶性值也更低。这些结果表明,金属卤化物光源能在更短的时间内有效固化复合材料,并提高转化率。