語系:
繁體中文
English
說明(常見問題)
登入
回首頁
切換:
標籤
|
MARC模式
|
ISBD
Low-carbon cementitious materials with 100% solid wastes
紀錄類型:
書目-語言資料,印刷品 : Monograph/item
正題名/作者:
Low-carbon cementitious materials with 100% solid wastes/ by Changwang Yan, Ru Bai, Ju Zhang.
作者:
Yan, Changwang.
其他作者:
Bai, Ru.
出版者:
Singapore :Springer Nature Singapore : : 2025.,
面頁冊數:
xvii, 340 p. :ill. (chiefly col.), digital ; : 24 cm.;
Contained By:
Springer Nature eBook
標題:
Cement composites. -
電子資源:
https://doi.org/10.1007/978-981-96-8742-8
ISBN:
9789819687428
Low-carbon cementitious materials with 100% solid wastes
Yan, Changwang.
Low-carbon cementitious materials with 100% solid wastes
[electronic resource] /by Changwang Yan, Ru Bai, Ju Zhang. - Singapore :Springer Nature Singapore :2025. - xvii, 340 p. :ill. (chiefly col.), digital ;24 cm.
Introduction -- Characterization of aluminosilicate minerals in low-carbon cementitious materials -- Hydration characteristics of low-carbon cementitious material -- AC impedance spectrum of low-carbon cementitious materials during the hydration process -- Desulfurization gypsum regulates hydration process of low-carbon cementitious material -- Mechanical properties of hardened pastes of seawater-mixed low-carbon cementitious materials -- Mechanical properties of grouting materials prepared by low-carbon cementitious materials -- Natural curing properties of concrete containing low-carbon cementitious materials -- Impact properties of concrete containing low-carbon cementitious materials -- Environmental impact assessment of low-carbon cementitious materials.
This book presents an innovative paradigm for synthesizing low-carbon cementitious materials through 100% utilization of industrial solid wastes, incorporating calcium sulphoaluminate and dicalcium silicate, which simultaneously addresses the dual challenges of bulk solid waste disposal and CO2 emission reduction in conventional cement production. The subject of this book is civil engineering material and industrial solid waste management. The research systematically explores the phase reconstruction mechanisms of multi-component solid wastes under controlled calcination conditions, hydration behavior evolution across curing ages with characterization of reaction products and pore structure development, and AC impedance spectroscopy-based hydration monitoring enhanced by ARIMA modeling. It further investigates the regulatory effects of desulfurization gypsum on hydration kinetics and microstructure, seawater-activated hydration pathways yielding hardened pastes with compressive strength, and machine learning-driven performance prediction. Engineering applications are demonstrated through optimized grouting materials exhibiting tailored flowability and interfacial bonding strength, concrete formulations with early-age strength development, and impact-resistant composites capable of absorbing energy. Environmental validation via life-cycle assessment confirms reduced resource and CO2 emissions, establishing a comprehensive framework for sustainable cementitious material development from waste valorization to engineered applications. Given its scope, the book is a valuable reference book for research students and reference resources for researchers, academics, and industrial scientists working in the field of civil engineering material and industrial solid waste management.
ISBN: 9789819687428
Standard No.: 10.1007/978-981-96-8742-8doiSubjects--Topical Terms:
808941
Cement composites.
LC Class. No.: TA438
Dewey Class. No.: 620.135
Low-carbon cementitious materials with 100% solid wastes
LDR
:03583nam a2200325 a 4500
001
1166650
003
DE-He213
005
20250723130256.0
006
m d
007
cr nn 008maaau
008
251217s2025 si s 0 eng d
020
$a
9789819687428
$q
(electronic bk.)
020
$a
9789819687411
$q
(paper)
024
7
$a
10.1007/978-981-96-8742-8
$2
doi
035
$a
978-981-96-8742-8
040
$a
GP
$c
GP
041
0
$a
eng
050
4
$a
TA438
072
7
$a
TNK
$2
bicssc
072
7
$a
TEC009020
$2
bisacsh
072
7
$a
TNK
$2
thema
082
0 4
$a
620.135
$2
23
090
$a
TA438
$b
.Y21 2025
100
1
$a
Yan, Changwang.
$3
1495483
245
1 0
$a
Low-carbon cementitious materials with 100% solid wastes
$h
[electronic resource] /
$c
by Changwang Yan, Ru Bai, Ju Zhang.
260
$a
Singapore :
$c
2025.
$b
Springer Nature Singapore :
$b
Imprint: Springer,
300
$a
xvii, 340 p. :
$b
ill. (chiefly col.), digital ;
$c
24 cm.
505
0
$a
Introduction -- Characterization of aluminosilicate minerals in low-carbon cementitious materials -- Hydration characteristics of low-carbon cementitious material -- AC impedance spectrum of low-carbon cementitious materials during the hydration process -- Desulfurization gypsum regulates hydration process of low-carbon cementitious material -- Mechanical properties of hardened pastes of seawater-mixed low-carbon cementitious materials -- Mechanical properties of grouting materials prepared by low-carbon cementitious materials -- Natural curing properties of concrete containing low-carbon cementitious materials -- Impact properties of concrete containing low-carbon cementitious materials -- Environmental impact assessment of low-carbon cementitious materials.
520
$a
This book presents an innovative paradigm for synthesizing low-carbon cementitious materials through 100% utilization of industrial solid wastes, incorporating calcium sulphoaluminate and dicalcium silicate, which simultaneously addresses the dual challenges of bulk solid waste disposal and CO2 emission reduction in conventional cement production. The subject of this book is civil engineering material and industrial solid waste management. The research systematically explores the phase reconstruction mechanisms of multi-component solid wastes under controlled calcination conditions, hydration behavior evolution across curing ages with characterization of reaction products and pore structure development, and AC impedance spectroscopy-based hydration monitoring enhanced by ARIMA modeling. It further investigates the regulatory effects of desulfurization gypsum on hydration kinetics and microstructure, seawater-activated hydration pathways yielding hardened pastes with compressive strength, and machine learning-driven performance prediction. Engineering applications are demonstrated through optimized grouting materials exhibiting tailored flowability and interfacial bonding strength, concrete formulations with early-age strength development, and impact-resistant composites capable of absorbing energy. Environmental validation via life-cycle assessment confirms reduced resource and CO2 emissions, establishing a comprehensive framework for sustainable cementitious material development from waste valorization to engineered applications. Given its scope, the book is a valuable reference book for research students and reference resources for researchers, academics, and industrial scientists working in the field of civil engineering material and industrial solid waste management.
650
0
$a
Cement composites.
$3
808941
650
0
$a
Factory and trade waste.
$3
655635
650
0
$a
Recycled products.
$3
715029
650
1 4
$a
Building Materials.
$3
671098
650
2 4
$a
Structural Materials.
$3
677176
650
2 4
$a
Characterization and Analytical Technique.
$3
1366464
650
2 4
$a
Waste Management/Waste Technology.
$3
670403
700
1
$a
Bai, Ru.
$3
1495484
700
1
$a
Zhang, Ju.
$e
author.
$3
1313823
710
2
$a
SpringerLink (Online service)
$3
593884
773
0
$t
Springer Nature eBook
856
4 0
$u
https://doi.org/10.1007/978-981-96-8742-8
950
$a
Chemistry and Materials Science (SpringerNature-11644)
筆 0 讀者評論
多媒體
評論
新增評論
分享你的心得
Export
取書館別
處理中
...
變更密碼[密碼必須為2種組合(英文和數字)及長度為10碼以上]
登入