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Sustainable utilization of landfill mined soil like fraction in subbase layer for asphalt road applications
Cleaner Materials, 2024-03, Vol.11, p.100218, Article 100218
[Peer Reviewed Journal]
2024 The Author(s) ;ISSN: 2772-3976 ;EISSN: 2772-3976 ;DOI: 10.1016/j.clema.2024.100218
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Title:
Sustainable utilization of landfill mined soil like fraction in subbase layer for asphalt road applications
Author:
Sandeep Reddy, A.
;
Patil, Mahi
;
Dalal, Parishi H.
;
Iyer, Kannan K.R.
;
Dave, Trudeep N.
Subjects:
Environmental benefits
;
Landfill mined soil like fraction
;
Novel road subbase layer
;
Resilient road infrastructure
;
Sustainable
Is Part Of:
Cleaner Materials, 2024-03, Vol.11, p.100218, Article 100218
Description:
[Display omitted] The scarcity of natural resources, and energy demand/carbon footprints related to their processing and transportation, has led to the quest for alternate materials for road/pavement construction and other infrastructure development. On the other side, landfill mined soil like fraction (LMSF) forms significant proportion of mined legacy landfill waste that exists at different locations around the world; however, it has found limited applications. The present study explores the utilization of LMSF in development of novel asphalt road subbase layers for resilient road infrastructure. 30–60% of LMSF replacement has been studied, and findings based on gradation analysis, compaction tests and California bearing ratio (CBR) tests are quite encouraging. Most combinations of subbase layers studied exceed the design requirements for low volume roads in Indian scenario (rural and outer urban roads); while 30% LMSF in wet mix macadam satisfies the requirements of Indian and other international codes. The cost-benefit analysis shows significant saving in material cost due to utilization of LMSF in road subbase layer. The potential utilization of low cost and sustainable LMSF in asphalt road subbase layer would allow design of superior roads with CBR exceeding design values, resulting in better life cycle performance of road infrastructure with high resilience to fatigue effects, water inundation and overloading conditions.
Publisher:
Elsevier Ltd
Language:
English
Identifier:
ISSN: 2772-3976
EISSN: 2772-3976
DOI: 10.1016/j.clema.2024.100218
Source:
DOAJ Directory of Open Access Journals
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