ABSTRACT

Although the use of recycled materials in civil engineering construction is a desirable option from a sustainability standpoint, the questionable long-term performance of these materials often hinders their widespread use in practice. The primary focus of this study was to perform accelerated aging and testing for estimating long-term properties of a roller-compacted concrete composed of crushed recycled aggregate, Type-I portland cement, and ASTM Class-F fly ash replacing up to 50 % of cement by weight. Accelerated aging was accomplished by curing cylindrical specimens at three different elevated temperature regimes for specific time durations. At the end of each time–temperature regime, the residual stiffness of the specimen was measured in a nondestructive fashion. Series of stiffness–time master curves were then constructed for each mix using the time–temperature superposition (TTS) technique and the stepped isothermal method (SIM). While the TTS method uses different sets of specimens for each elevated time–temperature regime, SIM uses a single set of specimens that are stepped up in temperature and held at each regime for a specified duration. Results indicated that for all mixes, the material stiffness degraded with time. Based on the Arrhenius equation, stiffness–equivalent age master curves were developed. Stiffness prediction was accomplished up to an equivalent age of almost 600 days, although the actual short-term test lasted only up to 6 days. It was also found that SIM and TTS provided comparable results, thus implying that the testing time and the number of specimens can be significantly reduced by using the SIM.

References

1.
Alwis
,
K. G. N. C.
and
C. J.
 
Burgoyne
.
2008
. “
Accelerated Creep Testing for Aramid Fibers Using the Stepped Isothermal Method
.”
Journal of Materials Science
43
, no. 
14
(July):
4789
4800
.
2.
American Concrete Institute
.
1994
. “
State-of-the-Art Report on Roller-Compacted Concrete Pavements
,”
ACI Materials Journal
91
, no. 
5
(September):
509
510
.
3.
American Concrete Pavement Association
.
2008
.
Recycled Concrete in Subbases: A Sustainable Choice, TS204
.
Washington, DC
:
American Concrete Pavement Association
.
4.
ASTM International
.
2019
.
Standard Practice for Estimating Concrete Strength by the Maturity Method
. ASTM C1074-19E01.
West Conshohocken, PA
:
ASTM International
, approved June 1,
2019
. https://doi.org/10.1520/C1074-19E01
5.
ASTM International
.
2021
.
Standard Test Methods for Laboratory Compaction Characteristics of Soil Using Modified Effort
. ASTM D1557-12R21.
West Conshohocken, PA
:
ASTM International
, approved July 1,
2021
. https://doi.org/10.1520/D1557-12
6.
Brooks
,
A. G.
,
A. K.
 
Schindler
, and
R. W.
 
Barnes
.
2007
. “
Maturity Method Evaluated for Various Cementitious Material
.”
Journal of Materials in Civil Engineering
19
, no. 
12
(December):
1017
1025
.
7.
Carino
,
N. J.
and
R. C.
 
Tank
.
1992
. “
Maturity Functions for Concretes Made with Various Cements and Admixtures
.”
ACI Materials Journal
89
, no. 
2
(March):
188
196
.
8.
Courard
,
L.
,
F.
 
Michel
, and
P.
 
Delhez
.
2010
. “
Use of Concrete Road Recycled Aggregates for Roller Compacted Concrete
.”
Construction and Building Materials
24
, no. 
3
(March):
390
395
.
9.
Del Rey
,
I.
,
J.
 
Ayuso
,
A.
 
Barbudo
,
A. P.
 
Galvín
,
F.
 
Agrela
, and
J.
 
de Brito
.
2016
. “
Feasibility Study of Cement-Treated 0–8 mm Recycled Aggregates from Construction and Demolition Waste as Road Base Layer
.”
Road Materials and Pavement Design
17
, no. 
3
:
678
692
.
10.
Eighmy
,
T. T.
,
R. A.
 
Cook
,
D. L.
 
Gress
,
A.
 
Coviello
,
J. C. M.
 
Spear
,
K.
 
Hover
,
R.
 
Pinto
, et al.
2002
. “
Use of Accelerated Aging to Predict Behavior of Recycled Materials in Concrete Pavements: Physical and Environmental Comparison of Laboratory-Aged Samples with Field Pavements
,”
Transportation Research Record
1792
, no. 
1
(January):
118
128
.
11.
Ferry
,
J. D.
1980
.
Viscoelastic Properties of Polymers
. 3rd ed.
Hoboken, NJ
:
Wiley
.
12.
Gonzalez
,
G. P.
and
H. K.
 
Moo-Young
.
2004
.
Transportation Applications of Recycled Concrete Aggregate, FHWA State of the Practice National Review
.
Washington, DC
:
Federal Highway Administration
.
13.
Lopez-Uceda
,
A.
,
J.
 
Ayuso
,
J. R.
 
Jiménez
,
A. P.
 
Galvín
, and
I.
 
Del Rey
.
2020
. “
Feasibility Study of Roller Compacted Concrete with Recycled Aggregates as Base Layer for Light-Traffic Roads
.”
Road Materials and Pavement Design
21
, no. 
1
:
276
288
.
14.
Maiti
,
A.
2016
. “
A Geometry-Based Approach to Determining Time-Temperature Superposition Shifts in Aging Experiments
.”
Rheologica Acta
55
, no. 
1
(January):
83
90
.
15.
Matias
,
D.
,
J.
 
de Brito
,
A.
 
Rosa
, and
D.
 
Pedro
.
2014
. “
Durability of Concrete with Recycled Coarse Aggregate: Influence of Superplasticizers
.”
Journal of Materials in Civil Engineering
26
, no. 
7
(July):
06014011
.
16.
Miner
,
M. A.
1945
. “
Cumulative Damage in Fatigue
.”
Journal of Applied Mechanics
12
, no. 
3
(September):
A159
A164
.
17.
Naik
,
T. R.
,
Y.-M.
 
Chun
,
R. N.
 
Kraus
,
S. S.
 
Singh
,
L.-L. C.
 
Pennock
, and
B. W.
 
Ramme
.
2001
. “
Strength and Durability of Roller-Compacted HVFA Concrete Pavements
.”
Practice Periodical on Structural Design and Construction
6
, no. 
4
(November):
154
165
.
18.
National Cooperative Highway Research Program
.
2013
.
NCHRP Synthesis 435: Recycled Materials and Byproducts in Highway Applications—Reclaimed Asphalt Pavement, Recycled Concrete Aggregate, and Construction Demolition Wastes
, vol. 6.
Washington, DC
:
Transportation Research Board
.
19.
Pérez
,
P.
,
F.
 
Agrela
,
R.
 
Herrador
, and
J.
 
Ordoñez
.
2013
. “
Application of Cement-Treated Recycled Materials in the Construction of a Section of Road in Malaga, Spain
.”
Construction and Building Materials
44
(July):
593
599
.
20.
Pinto
,
R.
,
S.
 
Hobbs
, and
K.
 
Hover
.
2002
.
Accelerated Aging of Concrete: A Literature Review, FHWA-RD-01-073
.
Washington, DC
:
Federal Highway Administration
.
21.
Selvam
,
M.
,
S.
 
Debbarma
,
S.
 
Singh
, and
X.
 
Shi
.
2022
. “
Utilization of Alternative Aggregates for Roller Compacted Concrete Pavements – A State-of-the-Art Review
.”
Construction and Building Materials
317
(January):
125838
.
22.
Sobhan
,
K.
and
B. M.
 
Das
.
2007
. “
Durability of Soil-Cements against Fatigue Fracture
.”
Journal of Materials in Civil Engineering
19
, no. 
1
(January):
26
32
.
23.
Sobhan
,
K.
,
L.
 
Gonzalez
, and
D. V.
 
Reddy
.
2016
. “
Durability of a Pavement Foundation Made from Recycled Aggregate Concrete Subjected to Cyclic Wet–Dry Exposure and Fatigue Loading
.”
Materials and Structures
49
, no. 
6
(June):
2271
2284
.
24.
Thomas
,
C.
,
J.
 
Setién
,
J. A.
 
Polanco
,
I.
 
Lombillo
, and
A.
 
Cimentada
.
2014
. “
Fatigue Limit of Recycled Aggregate Concrete
.”
Construction and Building Materials
52
(February):
146
154
.
25.
Thornton
,
J. S.
,
J. N.
 
Paulson
, and
D.
 
Sandri
.
1998
. “
Conventional and Stepped Isothermal Methods for Characterizing Long Term Creep Strength of Polyester Geogrids
.” In
Sixth International Conference on Geosynthetics
,
691
698
.
Roseville, MN
:
Industrial Fabrics Association International
.
26.
Williams
,
M. L.
,
R. F.
 
Landel
, and
J. D.
 
Ferry
.
1955
. “
The Temperature Dependence of Relaxation Mechanisms in Amorphous Polymers and Other Glass-Forming Liquids
.”
Journal of the American Chemical Society
77
, no. 
14
(July):
3701
3707
.
27.
Xiao
,
J.
,
H.
 
Li
, and
Z.
 
Yang
.
2013
. “
Fatigue Behavior of Recycled Aggregate Concrete under Compression and Bending Cyclic Loadings
.”
Construction and Building Materials
38
(January):
681
688
.
28.
Yehia
,
S.
,
K.
 
Helal
,
A.
 
Abusharkh
,
A.
 
Zaher
, and
H.
 
Istaitiyeh
.
2015
. “
Strength and Durability Evaluation of Recycled Aggregate Concrete
.”
International Journal of Concrete Structures and Materials
9
, no. 
2
(June):
219
239
.
29.
Zhu
,
H. B.
and
X.
 
Li
.
2011
. “
Experimental Research on the Residual Strength of Recycled Aggregate Concrete under Compressive Fatigue Loading
.” In
Advances in Composites
, pt. 1, eds.
J. L.
 
Bu
,
Z. G.
 
Jiang
, and
S. H.
 
Jiao
,
1379
1382
.
Zurich, Switzerland
:
Trans Tech Publications
.
30.
Zornberg
,
J. G.
,
B. R.
 
Byler
, and
J. W.
 
Knudsen
.
2004
. “
Creep of Geotextiles Using Time–Temperature Superposition Methods
.”
Journal of Geotechnical and Geoenvironmental Engineering
130
, no. 
11
(November):
1158
1168
.
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