Chemical vs. Physical Acceleration of Cement Hydration.

Dale P Bentz, Franco Zunino, Didier Lootens
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Abstract

Cold weather concreting often requires the use of chemical accelerators to speed up the hydration reactions of the cement, so that setting and early-age strength development will occur in a timely manner. While calcium chloride (dihydrate - CaCl2·2H2O) is the most commonly used chemical accelerator, recent research using fine limestone powders has indicated their high proficiency for physically accelerating early-age hydration and reducing setting times. This paper presents a comparative study of the efficiency of these two approaches in accelerating hydration (as assessed via isothermal calorimetry), reducing setting times (Vicat needle), and increasing early-age mortar cube strength (1 d and 7 d). Both the CaCl2 and the fine limestone powder are used to replace a portion of the finest sand in the mortar mixtures, while keeping both the water-to-cement ratio and volume fractions of water and cement constant. Studies are conducted at 73.4 °F (23°C) and 50 °F (10 °C), so that activation energies can be estimated for the hydration and setting processes. Because the mechanisms of acceleration of the CaCl2 and limestone powder are different, a hybrid mixture with 1 % CaCl2 and 20 % limestone powder (by mass of cement) is also investigated. Both technologies are found to be viable options for reducing setting times and increasing early-age strengths, and it is hoped that concrete producers and contractors will consider the addition of fine limestone powder to their toolbox of techniques for assuring performance in cold weather and other concreting conditions where acceleration may be needed.

水泥水化的化学加速与物理加速。
寒冷天气混凝土往往需要使用化学促进剂来加速水泥的水化反应,使凝结和早龄期强度发展及时发生。虽然氯化钙(二水合物- CaCl2·2H2O)是最常用的化学促进剂,但最近使用细石灰石粉末的研究表明,它们在物理上加速早期水化和减少凝结时间方面非常有效。本文对这两种方法在加速水化(通过等温量热法评估)、减少凝结时间(维卡针)和增加早期砂浆立方体强度(1天和7天)方面的效率进行了比较研究。在保持水灰比和水灰体积分数不变的情况下,用CaCl2和细石灰石粉末代替砂浆混合物中的部分细砂。研究在73.4°F(23°C)和50°F(10°C)下进行,因此可以估计水化和凝固过程的活化能。由于CaCl2和石灰石粉的加速机理不同,本文还对CaCl2和石灰石粉(按水泥质量计)掺量为1%的混合料进行了研究。这两种技术都是减少凝结时间和提高早期强度的可行选择,希望混凝土生产商和承包商能够考虑在他们的技术工具箱中添加细石灰石粉末,以确保在寒冷天气和其他可能需要加速的混凝土条件下的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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