3D Printed Concrete
Curing Regimes, Environmental Stressors, and Sustainable Performance
- 1 Edición - 23 de noviembre de 2026
- Última edición
- Autores: Bochao Sun, Dianchao Wang, Hailong Wang
- Idioma: Inglés
3D Printed Concrete: Curing Regimes, Environmental Stressors, and Sustainable Performance offers a concise and practical synthesis of emerging innovations in 3D printed concre… Leer más
Descripción
Descripción
3D Printed Concrete: Curing Regimes, Environmental Stressors, and Sustainable Performance offers a concise and practical synthesis of emerging innovations in 3D printed concrete, covering its thermal degradation, early-age strength prediction, CO2 curing, and recycled material utilization. The book provides a fundamental understanding of the material and its manufacturing process, as well as insight into optimizing 3D printed concrete for sustainability and durability under real world conditions. Uniquely focusing on the integration of mechanical performance, environmental exposure, and carbon reduction strategies, readers will come away with a better understanding of the physical and chemical mechanisms affecting printed concrete under heat and moisture exposure, the ability to implement maturity models and predictive tools for early-age strength and printing schedule control, and the knowledge to apply CO2 curing and recycled fine aggregates in order to reduce emissions and enhance structural performance. Materials and mix-design requirements and the effects of printing parameters on quality are each covered as well.
Puntos claves
Puntos claves
- Provides a concise, practical synthesis of 3D printed concrete, covering its thermal degradation, early-age strength prediction, CO2 curing, and recycled material utilization
- Presents simplified maturity models and regression-based strength prediction equations for application in design, quality control, and digital construction workflows
- Covers mechanics-based insight into environmental effects, including high-temperature degradation, anisotropic behavior, and moisture temperature coupled strength development
- Outlines sustainability-driven design solutions, such as approaches for using CO2 curing and pretreated recycled fine aggregates to enhance strength and reduce the carbon footprint
De interès para
De interès para
Researchers in materials science, structural engineering, mechanical engineering, and additive manufacturing
Índice
Índice
1. Elastic Deformation
2. Plastic Deformation of Single Crystals
3. Tensile Behavior of Metallic Materials
4. Creep Behavior of Metallic Materials
5. Fatigue Behavior of Materials
6. Fracture Behavior and Fracture Mechanics
7. Impact Behavior of Materials
8. Wear Behavior of Materials
2. Plastic Deformation of Single Crystals
3. Tensile Behavior of Metallic Materials
4. Creep Behavior of Metallic Materials
5. Fatigue Behavior of Materials
6. Fracture Behavior and Fracture Mechanics
7. Impact Behavior of Materials
8. Wear Behavior of Materials
Detalles del producto
Detalles del producto
- Edición: 1
- Última edición
- Publicado: 23 de noviembre de 2026
- Idioma: Inglés
Sobre los autores
Sobre los autores
BS
Bochao Sun
Professor Sun specializes in the field of smart construction technologies, with a particular focus on 3D printed concrete structures. His research explores advanced manufacturing techniques, material properties, and automation in construction, contributing to sustainable and efficient building processes.
Afiliaciones y experiencia
Professor, Zhejiang University, ChinaDW
Dianchao Wang
Dr Dianchao Wang is a Project Assistant Professor in the Department of Architecture at the University of Tokyo in Japan. His research interests include: multi-functional materials; LCA evaluation; recycled aggregates; CO2 sequestration; accelerated carbonation; cement-based materials
Afiliaciones y experiencia
Project Assistant Professor, Department of Architecture, University of Tokyo, JapanHW
Hailong Wang
Hailong Wang is a Professor and doctoral supervisor at Zhejiang University, where he serves as Director of the Institute of Intelligent Construction and Engineering Management. His research focuses on 3D printing and intelligent construction technologies, construction robotics, high-performance concrete materials and structures, and long-service-life concrete structures. He has led more than 50 research projects, including grants from the National 863 Program, the National Natural Science Foundation of China, and the National Key R&D Program. His work has received a Second Prize of the National Science and Technology Progress Award, and he holds over 30 granted Chinese and international invention patents.
Afiliaciones y experiencia
Zhejiang University, Hangzhou, China