Low-CO2 Optimization Design of Quaternary Binder Containing Calcined Clay, Slag, and Limestone

Author:

Lin Run-Sheng123,Liao Yongpang123,Han Yi4ORCID,Oh Seokhoon4ORCID,Park Ki-Bong5,Yang Hyun-Min6,Wang Xiao-Yong4ORCID,Yang Bo4,Meng Li-Yi4

Affiliation:

1. Faculty of Civil Engineering and Mechanics, Kunming University of Science and Technology, Kunming 650500, China

2. Yunnan Key Laboratory of Disaster Reduction in Civil Engineering, Kunming 650500, China

3. International Joint Laboratory for Green Construction and Intelligent Maintenance of Yunnan Province, Kunming 650500, China

4. Department of Integrated Energy and Infra System, Kangwon National University, Chuncheon-si 24341, Republic of Korea

5. Department of Architectural Engineering, Kangwon National University, Chuncheon-si 24341, Republic of Korea

6. Division of Smart Convergence Engineering, Hanyang University ERICA, 1271 Sa-3-dong, Sangnok-gu, Ansan 15588, Republic of Korea

Abstract

Blended cement is commonly used for producing sustainable concretes. This paper presents an experimental study and an optimization design of a low-CO2 quaternary binder containing calcined clay, slag, and limestone using the response surface method. First, a Box–Behnken design with three influencing factors and three levels was used for the combination design of the quaternary composite cement. The lower limit of the mineral admixtures was 0%. The upper limits of slag, calcined clay, and limestone powder were 30%, 20%, and 10%, respectively. The water-to-binder ratio (water/binder) was 0.5. Experimental works to examine workability and strength (at 3 and 28 days) were performed for the composite cement. The CO2 emissions were calculated considering binder compositions. A second-order polynomial regression was used to evaluate the experimental results. In addition, a low-CO2 optimization design was conducted for the composite cement using a composite desirability function. The objectives of the optimization design were the target 28-day strength (30, 35, 40, and 45 MPa), target workability (160 mm flow), and low CO2 emissions. The trends of the properties of optimal combinations were consistent with those in the test results. In summary, the proposed optimization design can be used for designing composite cement considering strength, workability, and ecological aspects.

Funder

Yunnan Fundamental Research Projects

National Research Foundation of Korea

Nuclear Safety Research Program through the Korea Foundation Of Nuclear Safety

Publisher

MDPI AG

Subject

General Materials Science

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