UNIFIED FIBER-REINFORCED POLYMER COMPOSITE SOLUTIONS FOR ENHANCING THE STRUCTURAL DURABILITY OF AGING CIVIL INFRASTRUCTURE
| dc.contributor.advisor | Vemuganti, Shreya | |
| dc.contributor.author | Akbarpour, Ali | |
| dc.contributor.committeeMember | Volz, Jeffery | |
| dc.contributor.committeeMember | Floyd, Royce | |
| dc.contributor.committeeMember | Bajpai, Vivek | |
| dc.date.accessioned | 2026-01-08T23:05:55Z | |
| dc.date.embargoExpiration | ||
| dc.date.issued | 2025 | |
| dc.date.proquestAvailable | 01/01/2025 | |
| dc.date.updated | 2026-01-08T23:05:55Z | |
| dc.description.abstract | U.S. transportation assets continue to operate at or beyond design life under corrosion, chemical attack, and cyclic environmental loading, driving strength and serviceability deficiencies that demand constructible, design-checkable rehabilitation. This dissertation advances the structural use of fiber-reinforced polymer (FRP) and polymer-based systems through five coordinated studies that span material, interface, member, and system scales with direct relevance to design, detailing, and quality assurance.Project 1 quantifies the flexural behavior and failure mechanisms of RC beams strengthened with combined CFRP systems. Across five configurations—control, U-wrap only, NSM-CFRP bars only, NSM+full U-wrap, and NSM+shear U-wrap—the strengthened beams achieved substantial capacity gains: +19% (U-only), +83% (NSM), +99% (NSM+full U-wrap), and +105% (NSM+shear U-wrap). The combined systems promoted bar strain development, mitigated debonding, and shifted failures toward CFRP rupture when confinement was effective. Project 2 evaluates polymer-concrete (PC) overlays modified with multi-walled carbon nanotubes (MWCNTs) using direct tensile pull-off (ASTM C1583). On normal substrates, neat PC provided the most reliable adhesion; on sulfate-deteriorated substrates, a 0.5 wt.% COOH-functionalized MWCNT mix increased interface tensile capacity by ~15%, establishing substrate-conditioned material selection and dispersion guidance for bonded overlay design. Project 3 establishes grout-dependent composite action in GFRP slip-lined corrugated metal pipe (CMP) culverts via circumferential ring testing. Polymeric annular grout produced stiffness factors ≈7× those of cementitious grout for uncorroded rings (≈6.8× for corroded), elevating grout modulus and bond to first-order design variables for circumferential stiffness, load rating, and service-load deformation in trenchless rehabilitation. Project 4 isolates matrix/interface durability of CFRP under 0–250 freeze–thaw cycles using off-axis tensile coupons (ASTM D3039). Neat laminates lost strength, modulus, and ultimate strain; on the other hand, CNT-modified laminates largely retained their strength, stiffness, and strain capacity after 250 freeze–thaw cycles. The mix with 1.0 wt.% COOH-functionalized CNTs showed the smallest change in properties. CNT-modified laminates largely retained properties, with ~1.0 wt.% COOH and ~1.5 wt.% pristine mixes most resilient. SEM showed crack-bridging and improved fiber–matrix adhesion, informing durability factors for cold-region design. Project 5 investigates 3D-printed thermoplastic CFRP lattices (cage/flat) as internal reinforcement in PCC, UHPC, and PC beams. Four-point bending benchmarks demonstrate displacement-ductility enhancement with matrix-dependent differences between observed and predicted nominal moments; performance is sensitive to lattice placement (cover, floating/tilt) and junction quality, motivating installation checks and matrix-appropriate stress-block adjustments. Collectively, the dissertation contributes: (i) validated strength and failure data for combined NSM-and-wrap CFRP schemes enabling more ductile design checks; (ii) a chemically informed route to preserve overlay bond on sulfate-damaged substrates with functionalized CNTs; (iii) quantitative stiffness factors that elevate grout selection to a codifiable parameter for GFRP slip-lining; (iv) durability evidence that CNT nanomodification can stabilize off-axis CFRP properties under long-term freeze–thaw; and (v) structural-scale benchmarks for thermoplastic CFRP lattice reinforcement across cementitious and polymer matrices. Together, these results guide the design of durable composite rehabilitation systems against the key deterioration mechanisms. | |
| dc.identifier.orcid | 0000-0002-1604-6981 | |
| dc.identifier.uri | https://shareok.org//handle/11244/341795 | |
| dc.language.iso | en | |
| dc.publisher | University of Oklahoma – Graduate College | |
| dc.subject | Civil engineering | |
| dc.subject | Carbon Fiber Reinforced Polymer | |
| dc.subject | Carbon Nanotubes | |
| dc.subject | Corrosion | |
| dc.subject | Fiber Reinforced Polymer | |
| dc.subject | Glass Fiber Reinforced Polymer | |
| dc.subject | Polymer Concrete | |
| dc.thesis.degree | D.Phil. | |
| dc.title | UNIFIED FIBER-REINFORCED POLYMER COMPOSITE SOLUTIONS FOR ENHANCING THE STRUCTURAL DURABILITY OF AGING CIVIL INFRASTRUCTURE | |
| ou.group | Civil Engr and Environmental: Engineering |