Archive for July 2026
Download the SENSE 600® TrenchMesh™ Product Guide
The SENSE 600® Welding Guidelines deliver AS/NZS-compliant, CodeMark-aligned welding protocols including consumables, splice dimensions, and qualification tests for 600 MPa reinforcement.
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The InfraBuild EPD delivers verified carbon and sustainability performance data for reinforcing rod, bar, wire, and SENSE 600® products – ideal for IS®, Green Star, and NCC-aligned low-carbon design.
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This Environmental Product Declaration (EPD) covers the environmental impacts of InfraBuild’s SENSE 600® reinforcing bars manufactured by InfraBuild to AS/NZS 4671 (Steel for the reinforcement of concrete).
Read MoreEnvironmental Product Declaration (EPD) for SENSE 600® Reinforcing Bar
This Environmental Product Declaration (EPD) covers the environmental impacts of InfraBuild’s SENSE 600® reinforcing bars manufactured by InfraBuild to AS/NZS 4671 (Steel for the reinforcement of concrete).
Read MoreHigh Strength Reinforcing Steels: The Benefits and How They Are Delivered (Nov 2020)
Higher strength reinforcing steel is delivering practical benefits across design, construction and sustainability. This paper outlines how recent changes to Australian Standards have enabled the use of higher strength steels, and how these materials can be applied in real projects. It highlights the ability to substitute higher strength bars for traditional 500 MPa reinforcement without…
Read MoreStrength and Ductility of High-Strength Concrete Columns Confined with High-Strength Steel Ties (Oct 2017)
Confinement plays a critical role in the performance of high-strength concrete columns. This research investigates how high strength steel ties improve the strength and ductility of concrete columns by providing more effective confinement of the concrete core. It shows that using higher strength ties can reduce reinforcement congestion while maintaining structural performance. The findings support…
Read MoreStrength and Ductility of High-Strength Concrete Columns Reinforced with High-Strength Steel (Oct 2018)
High strength materials are changing how reinforced concrete columns are designed and built. This research examines the structural performance of concrete columns reinforced with high strength steel, including behaviour under different loading conditions. It shows how higher strength reinforcement can reduce steel volumes while maintaining strength and ductility. The findings support more efficient column design,…
Read MoreChanges to Australian Standards to Better Utilise Higher Strength Reinforcing Steels (Sep 2021)
This paper outlines how updates to AS 3600 and AS/NZS 4671 now support the design and specification of steels above 500 MPa. These changes reflect advances in material performance and respond to the need for more efficient, lower embodied carbon construction. By allowing higher strength steels to be used more effectively, the revised Standards support…
Read MoreEvaluation of Existing Crack Width Prediction Models for RC Panels with HSS Transverse Reinforcement (Sep 2025)
Serviceability requirements can influence the adoption of higher strength steel. This research evaluates existing crack width prediction models for reinforced concrete panels using high strength steel. It shows that current models can overestimate crack widths, which may limit the use of more efficient materials. By improving prediction accuracy, the study supports broader adoption of 600…
Read MoreDesign of 600 MPa Steel Using CodeMark Certificates of Conformity (Sep 2025)
Innovation in materials requires clear pathways to compliance. This paper explains how CodeMark certification enables the use of 600 MPa reinforcing steel in designs that meet the National Construction Code. It outlines how engineers can apply certified solutions to incorporate higher strength steel without relying solely on traditional standards. By simplifying compliance, CodeMark supports the…
Read MoreEmbodied Emissions Study plus Sustainability and Durability Optimised Materials Specification and Design on an Australian Transport Infrastructure Project (Sep 2025)
Reducing embodied carbon starts in the design phase. This study examines how early-stage material selection and design decisions can significantly reduce emissions on a major Australian transport infrastructure project. It evaluates a range of lower embodied carbon materials, including high strength reinforcing steel, to determine their impact on performance, constructability and supply. The findings show…
Read MoreInvestigating the most sustainable concrete bridge (Sep 2025)
Material selection and design approach have a major impact on the embodied carbon of bridge structures. This paper compares different bridge construction methods to identify which options deliver the lowest carbon outcomes. It highlights how structural form and material efficiency influence overall emissions, not just material choice alone. The findings reinforce the importance of early…
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