Rate-Type Age-Dependent Constitutive Formulation of Concrete Loaded at an Early Age
Abstract
:1. Introduction
2. Delayed Strain Concept of the Creep Model
3. General Framework for Age-Dependent Constitutive Formulation
4. Age-Dependent Constitutive Formulations
5. Numerical Applications and Observations
5.1. Creep on Unreinforced Cylindrical Concrete Specimens
5.2. Creep on Axially Reinforced Concrete Column
6. Conclusions
- Creep was divided into a delayed part of elastic deformation and an ageing part due to time-dependent chemical processes. This enabled incorporation of the ageing phenomenon in the conventional delayed strain concept by defining the ageing phenomenon in terms of the development of the elastic modulus. Furthermore, it ensured consistency in the two-fold formulation by allowing the use of the same time-varying elastic modulus in both the creep and constitutive formulation levels.
- Two types of creep concepts—with and without consideration of the development of the elastic modulus—were applied to time-dependent tests of unreinforced cylindrical specimens. The creep concept that considered the development of elastic modulus showed a good agreement with the experimental result while the concept that did not consider the development of elastic modulus underestimated it by 15%. This observation indicates that the elastic modulus development needs to be considered in the creep model.
- The presented formulation framework was used to derive six constitutive equations depending on the type of the creep concept and the condition based on which the elastic modulus development was considered as an expandable variable in a Taylor series expansion. The formulation process manifested an advantage of precisely figuring out the characters of the constitutive equation.
- The comparison between the presented formulation framework and the constitutive equation of AAEM derived based on the ageing creep method verified the equivalence between the two constitutive models. This showed that the presented formulation is a generalized formulation formwork of a rate-type, age-dependent, constitutive equation, and provides a mathematical background for the conventional delayed strain concept in defining creep strain.
- Numerical applications of the six constitutive equations to the RC column structure showed 4% difference in the time-dependent behavior of the particular RC column between the constitutive formulation cases with and without consideration of the development of elastic strain. This showed that the time-dependent behavior of the reinforced concrete structure was significantly dependent on the development of the elastic modulus.
Author Contributions
Funding
Conflicts of Interest
References
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Cases | Creep Models | ||
---|---|---|---|
Type of Creep Concept | Type of Creep Model | ||
-Based | -Based | ||
Case 1 | O | - | Basic form |
Case 2 | - | O | Basic form |
Case 3 | O | - | PCM |
Case 4 | - | O | PCM |
Case 5 | O | - | ACM |
Case 6 | - | O | ACM |
Case (Creep Strain) | Creep Strain Rate | Total Creep Strain |
---|---|---|
Case 1 | ||
Case 2 | ||
Case 3 | ||
Case 4 | ||
Case 5 | ||
Case 6 |
Cases | Types of Formulation (Age-Dependent Stress-Strain Law) | ||
---|---|---|---|
Creep Model Case | Series Expansion with Respect to Elastic Modulus | ||
Considered | Neglected | ||
Case 1 | Case 1 | O | - |
Case 2 | Case 2 | O | - |
Case 3 | Case 3 | O | - |
Case 4 | Case 4 | O | - |
Case 5 | Case 5 | O | - |
Case 6 | Case 6 | O | - |
Case 7 | Case 1 | - | O |
Case 8 | Case 3 | - | O |
Case 9 | Case 5 | - | O |
Cases | Time-Delay Modulus | Residual Stress due to Applied Loads | Residual Stress due to Mechanical Strain |
---|---|---|---|
Case 1 | |||
Case 2 | |||
Case 3 | |||
Case 4 | |||
Case 5 | |||
Case 6 | |||
Case 7 | - | ||
Case 8 | - | ||
Case 9 | - |
Test Series | Parameters | ||||||||||
---|---|---|---|---|---|---|---|---|---|---|---|
(Days) | (MPa) | (MPa) | (MPa) | ||||||||
A | 9.5 | 1.7 | 51 | 1.45 | 4 | 0.85 | 10 | 29,400 | 32,800 | 30 | |
B | 11.4 | 5.1 | 48.4 | 0.73 | 2.6 | 0.9 | 7 | 22,700 | 25,300 | 28 | |
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Kim, S.-G.; Park, Y.-S.; Lee, Y.-H. Rate-Type Age-Dependent Constitutive Formulation of Concrete Loaded at an Early Age. Materials 2019, 12, 514. https://doi.org/10.3390/ma12030514
Kim S-G, Park Y-S, Lee Y-H. Rate-Type Age-Dependent Constitutive Formulation of Concrete Loaded at an Early Age. Materials. 2019; 12(3):514. https://doi.org/10.3390/ma12030514
Chicago/Turabian StyleKim, Seung-Gyu, Yeong-Seong Park, and Yong-Hak Lee. 2019. "Rate-Type Age-Dependent Constitutive Formulation of Concrete Loaded at an Early Age" Materials 12, no. 3: 514. https://doi.org/10.3390/ma12030514
APA StyleKim, S. -G., Park, Y. -S., & Lee, Y. -H. (2019). Rate-Type Age-Dependent Constitutive Formulation of Concrete Loaded at an Early Age. Materials, 12(3), 514. https://doi.org/10.3390/ma12030514