ASTM vs ASME โ What Every Engineer Should Know ๐ฅ In engineering, materials, and construction, standards are the backbone of safety, quality, and reliability. Two globally recognized organizationsโASTM International and ASMEโplay a crucial role, but their focus and applications differ. ๐ History & Development: ASTM (Founded in 1898) โ Develops material standards and testing methods. ASME (Founded in 1880) โ Develops engineering codes for safe design & construction of boilers, pressure vessels, and pipelines. ๐ฏ Purpose: ASTM โ Standards & specifications for materials, testing, and products. ASME โ Codes & regulations for safe design, fabrication, and inspection. ๐ง Areas of Application: โ ASTM (Materials & Testing): Construction (steel, cement, concrete) Petroleum & chemicals (fuels, oils) Electronics & aerospace (metals, plastics, composites) Environment (air, water, soil monitoring) Global trade & manufacturing โ ASME (Design & Safety): Pressure vessels & boilers (rules for tanks, piping, pressure systems) Pipelines (B31 series) Power plants & energy systems Oil, gas & chemical plants Mechanical compliance & safety codes ๐ Types of Standards: ASTM Example: ASTM A106 (Seamless Carbon Steel Pipe) ASME Example: ASME Section VIII (Boiler & Pressure Vessel Code) ๐งญ How to Choose? Go with ASTM โ When your focus is on material composition, testing & product quality. Go with ASME โ When your focus is on engineering design, fabrication & compliance. โ๏ธ Challenges: Overlap & Misinterpretation โ Engineers often confuse which standard applies where. Global Compliance โ Aligning ASTM & ASME requirements across countries can be complex. Implementation Costs โ Testing, certification, and compliance can add significant project costs. Continuous Updates โ Both standards evolve, requiring professionals to stay up to date. ๐ก Key Takeaways: ASTM = โWhat material and how to test it.โ ASME = โHow to design, build, and inspect safely.โ Both are complementary โ ASTM defines the material & testing, ASME defines the design & safety framework. Right selection = Better compliance, reduced risks, and safer projects. ๐ Bottom Line: ASTM = โWhat material and how to test it.โ ASME = โHow to design, build, and inspect safely.โ ==== Follow me at Govind Tiwari,PhD #astm #asme #qms #iso9001 #quality #qa #qc
Structural Engineering Material Choices
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Drexel University researchers developed building materials inspired by elephant and jackrabbit ears that can passively regulate temperature. The concrete contains vascular networks filled with paraffin-based phase-change material that absorbs heat when warm and releases it when cool. Buildings consume nearly 40% of all energy, with half spent on temperature control. The most effective design uses diamond-shaped channel patterns that slow surface heating/cooling to 1-1.25ยฐC per hour while maintaining structural integrity. This biomimetic approach could significantly reduce HVAC energy demands, addressing the 63% of building energy loss through walls, floors, and ceilings.
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Glad to share our latest research on the design and fabrication of a cable-supported, unreinforced and re-assemblable 3D-printed concrete structure using multi-material topology optimization. The full paper has been published in the Additive Manufacturing journal and is available here: https://lnkd.in/grAViSCe Project team: Yu Li, Hao Wu, Xinjie Xie, Liming Zhang, Philip F. Yuan of Tongji University and Yi Min 'Mike' Xie of RMIT University Centre for Innovative Structures and Materials. #topologyoptimization #digitaldesign #generativedesign #computationaldesign #additivemanufacturing #3dprinting #3dcp #digitalfabrication #architecturedesign #structuraldesign #concrete #steel #cable #assembly Spatial Structures IASS 2023 IASS 2024
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Glass Transition Temperature (Tg) - A Key to Material Behaviour! Ever noticed how a plastic component can become brittle in cold weather or more pliable when heated? This phenomenon is often governed by the Glass Transition Temperature (Tg), a key property for understanding amorphous materials, especially polymers. ๐ Deep Dive into Tg: Tg isn't a sharp melting point like in crystalline materials. Instead, it's a temperature range where an amorphous solid transitions from a rigid, glassy state (below Tg) to a more flexible, rubbery state (above Tg). This transition reflects the onset of cooperative molecular motion. Below Tg, polymer chains have limited movement, while above, they gain enough energy to slide past each other. ๐ฌ Why Tg Matters in Real-World Applications: Performance Optimization: Knowing Tg helps predict how materials will behave under varying temperatures, crucial for applications ranging from automotive parts to medical devices. Manufacturing Precision: Tg dictates processing conditions like molding temperatures and annealing cycles, ensuring product quality and consistency. Material Selection: Engineers use Tg to select materials that meet specific temperature requirements, preventing failures and enhancing product longevity. ๐ ๏ธ Advanced Techniques for Tg Determination: Differential Scanning Calorimetry (DSC): Measures heat flow differences, revealing the subtle energy changes associated with the glass transition. Itโs excellent for routine analysis and comparing materials. Dynamic Mechanical Analysis (DMA): Applies oscillating forces, measuring the materialโs viscoelastic response. This technique is highly sensitive to molecular relaxations and provides insights into storage and loss moduli. Thermomechanical Analysis (TMA): Tracks dimensional changes with temperature, revealing thermal expansion and contraction behaviour. This is valuable for predicting dimensional stability and identifying Tg through changes in the expansion coefficient. ๐ก Key Factors Influencing Tg: Polymer Architecture: Molecular weight, branching, and crosslinking density significantly impact chain mobility and, therefore, Tg. External Factors: Heating/cooling rates, plasticizers, and even ambient moisture can shift the observed Tg, highlighting the importance of controlled testing environments. Composition: In copolymers or blends, the relative amounts of different components will greatly affect the final Tg value. Understanding Tg is vital for engineers, material scientists, and anyone involved in product development. By mastering this concept, we can design more robust, reliable, and innovative products. #materialscience #polymerscience #polymercharacterization #viscoelasticity
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Hollow Slabs to reduce weight In construction, maximum weight of a structure is due to the slabs. There are various ways to reduce the weight of such concrete slabs. One such approach involves leaving the space between top layer and bottom layer of thr slab open that would normally be occupied by concrete, or filling it with a lighter material such as ceramic bricks or expanded polystyrene. Another approach, developed in the 1990s by Jorgen Bruenig in Denmark, is to use biaxial hollow slabs, which are now commonly known as BubbleDeck. This system is made up of hollow spheres made of plastic, which are inserted uniformly between upper and lower steel reinforcements. These spheres fill the space that would otherwise be occupied by concrete that serves little structural function but may add significant weight. By using this system, it is possible to reduce the weight of a slab by 25% to 35% compared to a solid slab of the same thickness. This reduction in weight allows for larger spans, reduces the cross- section of the columns, and decreases the overload on the building's foundations. It is estimated that using 1 kg of plastic for the spheres can save about 100 kg of concrete. However, thus system may increase the depth of slabs.
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Stronger Than Steel, Lighter Than Iron: Meet the Material That Could Reshape Construction Imagine a building material that doesnโt rust, weighs a fraction of traditional steel, and is twice as strong in tension. Itโs not science fiction โ itโs Glass Fiber Reinforced Polymer (GFRP), and it may just be the future of global construction. 4x lighter than iron 2x the tensile strength of steel Doesnโt corrode โ ever Non-conductive Up to 30% more cost-efficient in projects Used today in everything from roofs, columns, and slabs to marine ports and garages, GFRP is proving itself to be tough, versatile, and built to last. With only 130 kg of fiber replacing a full ton of steel, this innovation drastically reduces structural weight โ and boosts sustainability. Already backed by international certifications and Building Research Centre approvals, GFRP isnโt just a smart choice โ itโs a next-generation leap in engineering. The era of rust-proof, high-performance construction is here. And itโs lighter than you think.
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Here is a generalย overview of the key aspects of tank construction according to API 650: ๐๐ฒ๐๐ถ๐ด๐ป ๐๐ผ๐ป๐๐ถ๐ฑ๐ฒ๐ฟ๐ฎ๐๐ถ๐ผ๐ป๐: API 650 provides criteria for the design of welded steel tanks, including considerations such as tank dimensions, shellย thickness, roof design, bottom design, and reinforcement requirements. The design should account for factors such as the stored product,ย operating conditions, seismic loads, wind loads, and other relevant parameters. ๐ ๐ฎ๐๐ฒ๐ฟ๐ถ๐ฎ๐น ๐ฆ๐ฝ๐ฒ๐ฐ๐ถ๐ณ๐ถ๐ฐ๐ฎ๐๐ถ๐ผ๐ป๐: API 650 specifies the material requirements for tank construction. This includes the selection of appropriate steelย grades, plate thicknesses, welding consumables, and corrosion protection measures. The materials used must meet the specified mechanicalย and chemical properties to ensure the structural integrity and longevity of the tank. ๐ช๐ฒ๐น๐ฑ๐ถ๐ป๐ด ๐ฃ๐ฟ๐ผ๐ฐ๐ฒ๐ฑ๐๐ฟ๐ฒ๐: API 650 outlines the welding procedures and requirements for tank construction. This includes the qualification ofย welders, welding processes, preheating and post-weld heat treatment (PWHT) requirements, inspection methods, and acceptance criteria forย welded joints. The welding procedures must conform to industry best practices and ensure the integrity of the tank structure. ๐๐ฎ๐ฏ๐ฟ๐ถ๐ฐ๐ฎ๐๐ถ๐ผ๐ป ๐ฎ๐ป๐ฑ ๐๐ฟ๐ฒ๐ฐ๐๐ถ๐ผ๐ป: The fabrication of the tank components, such as the shell plates, roof, and bottom, should be carried out inย accordance with API 650 requirements. This involves cutting, forming, and welding the components to the specified dimensions and qualityย standards. The erection process includes aligning and assembling the tank components on the prepared foundation, ensuring proper fit-up andย dimensional accuracy. ๐ก๐ผ๐ป๐ฑ๐ฒ๐๐๐ฟ๐๐ฐ๐๐ถ๐๐ฒ ๐๐ ๐ฎ๐บ๐ถ๐ป๐ฎ๐๐ถ๐ผ๐ป (๐ก๐๐): API 650 mandates specific nondestructive examination methods to assess the quality of welded joints andย detect any potential defects or discontinuities. Common NDE techniques include radiographic testing (RT), ultrasonic testing (UT), magneticย particle testing (MT), and visual inspection. The extent and frequency of NDE depend on the tank size, operating conditions, and clientย requirements. ๐ง๐ฒ๐๐๐ถ๐ป๐ด ๐ฎ๐ป๐ฑ ๐๐ป๐๐ฝ๐ฒ๐ฐ๐๐ถ๐ผ๐ป: API 650 requires various tests and inspections to be conducted during tank construction. This includes hydrostaticย testing to verify the tank's structural integrity and leak tightness. Additionally, visual inspections, dimensional checks, and other quality controlย measures are performed to ensure compliance with API 650 and project specifications. ๐๐ผ๐ฟ๐ฟ๐ผ๐๐ถ๐ผ๐ป ๐ฃ๐ฟ๐ผ๐๐ฒ๐ฐ๐๐ถ๐ผ๐ป: API 650 provides recommendations for corrosion protection measures, such as coatings, cathodic protection, or otherย methods to mitigate corrosion on the tank's interior and exterior surfaces. These measures help extend the tank's service life and maintain theย integrity of the stored product. ... #API650 #Tank #Construction
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PDX is now the world's largest mass-timber airport. Mass timber as a sustainable building material is definitely not a silver bullet. It's a challenging space given supply chains, and professionals familiar with mass timber are limited by geography. Given that this is in Portland, it makes a ton of sense: Wood is obviously evocative of the Pacific Northwest, and ZGF Architects sourced all of the wood from within 300 miles of the airport. From an embodied carbon standpoint, this design is a big win versus an all-concrete or steel superstructure. Plus, a successful mass timber project could unlock more down the road. The 9-acre, all-wood roof is a feat of engineering. It's beautiful. Timber isn't for everywhere and everyone, but I hope we'll see it more prevalent in more major projects. #realestate #climate #masstimber
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Turning apple waste into furniture? Material innovation is being redefined with a groundbreaking vegan-certified leather alternative crafted from upcycled agricultural waste. This innovative material offers a premium, bio-based option that seamlessly blends environmental responsibility with practical versatility. Manufactured on wide rolls, it provides a luxurious, durable alternative to traditional leather while addressing the urgent need for eco-friendly solutions. By utilising by-products of agricultural processes, this innovation exemplifies how waste can become a cornerstone for transformative design, challenging industry norms and fostering a more circular economy. Recently, this material has been introduced in the furniture sector, demonstrating its versatility and effectiveness in reducing carbon footprints. For example, when used in furniture, it achieves significant reductions in carbon emissions compared to traditional materials. This measurable impact highlights the potential of sustainable materials to advance both environmental and business objectives. Key Features of Bio-Based Materials โTransformative Origins: Converts agricultural by-products into high-quality materials. โCross-Industry Applications: Ideal for furniture, fashion, and automotive sectors. โDesign Customisation: Supports diverse finishes and textures, meeting unique design needs. โSupply Chain Transparency: Offers full traceability, ensuring ethical production and enhancing storytelling. Business Impact and ROI โSustainability Leadership: Collaborating with material innovators demonstrates a commitment to Environmental, Social, and Governance (ESG) goals. โCost Optimisation: By utilising waste-based inputs, businesses can reduce dependence on costly, resource-intensive materials. โMarket Differentiation: Offering products made with innovative materials positions companies as leaders in sustainability, appealing to a conscientious consumer base. โCarbon Reduction: Bio-based materials deliver tangible emissions savings, supporting corporate decarbonisation objectives. This innovation exemplifies how rethinking waste can drive sustainability and profitability, empowering businesses to lead in the era of bio-based innovation. Link for more info: https://lnkd.in/dmtMrnP3 #sustainability #esg #biomaterials #decarbonisation #wasteupcycling #innovation #bioeconomy #climateaction #circularity #greendesign
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๐ฆ๐๐ฒ๐ฒ๐น ๐๐ ๐๐น๐๐บ๐ถ๐ป๐ถ๐๐บ: ๐ช๐ต๐ฒ๐ป ๐๐ผ ๐ฃ๐ถ๐ฐ๐ธ ๐ช๐ต๐ถ๐ฐ๐ต ๐ฎ๐ป๐ฑ ๐ช๐ต๐ ๐๐ ๐ ๐ฎ๐๐๐ฒ๐ฟ๐ -- 1๏ธโฃ ๐ ๐ฎ๐๐ฒ๐ฟ๐ถ๐ฎ๐น-๐ฆ๐ฒ๐น๐ฒ๐ฐ๐๐ถ๐ผ๐ป ๐๐ต๐ฒ๐ฎ๐ ๐ฆ๐ต๐ฒ๐ฒ๐ 1. ๐ฆ๐๐ฟ๐ฒ๐ป๐ด๐๐ต-๐๐ผ-๐ช๐ฒ๐ถ๐ด๐ต๐ ๐ฅ๐ฎ๐๐ถ๐ผย Aluminiumโs 3ร higher specific strength lets you shave kilograms where mass = money (fuel, launch, shipping). 2. ๐ฆ๐๐ถ๐ณ๐ณ๐ป๐ฒ๐๐ (๐ ๐ผ๐ฑ๐๐น๐๐ ๐ผ๐ณ ๐๐น๐ฎ๐๐๐ถ๐ฐ๐ถ๐๐) Steel is ~3ร stiffer, critical for keeping deflections small in thin sections. 3. ๐๐ฎ๐๐ถ๐ด๐๐ฒ & ๐๐บ๐ฝ๐ฎ๐ฐ๐ High-strength steels excel in crack-growth resistance; aluminium needs larger radii, anodising or shot-peen to match. 4. ๐๐ผ๐ฟ๐ฟ๐ผ๐๐ถ๐ผ๐ป ๐๐ฒ๐ต๐ฎ๐๐ถ๐ผ๐๐ฟ Aluminium self-passivates; steel demands coatings or stainless grades if you hate rust budgets. 5. ๐ง๐ต๐ฒ๐ฟ๐บ๐ฎ๐น ๐๐ผ๐ป๐ฑ๐๐ฐ๐๐ถ๐๐ถ๐๐ Aluminium spreads heat 4โ5ร faster - gold for heat sinks, battery trays, cookware. 6. ๐๐ผ๐ฟ๐บ๐ฎ๐ฏ๐ถ๐น๐ถ๐๐ & ๐๐ผ๐ถ๐ป๐ฎ๐ฏ๐ถ๐น๐ถ๐๐ Steel bends deeper without spring-back; aluminium welds easily but hates gallingโdesign around it. 7. ๐ฅ๐ฒ๐ฐ๐๐ฐ๐น๐ฎ๐ฏ๐ถ๐น๐ถ๐๐ & ๐๐ข๐ฎ ๐๐ผ๐ผ๐๐ฝ๐ฟ๐ถ๐ป๐ Both loop well, but recycling aluminium saves โ 95 % of primary energy, helping ESG scorecards. 8. ๐๐ผ๐๐ & ๐๐๐ฎ๐ถ๐น๐ฎ๐ฏ๐ถ๐น๐ถ๐๐ Raw steel (mild) sits ~โน70โ80 /kg; automotive aluminium sheet ~โน240โ300 /kg in India (June 2025). Aluminium cuts quicker, needs less tooling wear. -- 2๏ธโฃ ๐ฅ๐ฒ๐ฎ๐น-๐ช๐ผ๐ฟ๐น๐ฑ ๐๐ฎ๐น๐น๐ ๐ฌ๐ผ๐โ๐น๐น ๐ฅ๐ฒ๐ฐ๐ผ๐ด๐ป๐ถ๐๐ฒ ๐ ๐๐๐๐ผ๐บ๐ผ๐๐ถ๐๐ฒ ย โข ๐๐ฟ๐ฎ๐๐ต ๐ฟ๐ฎ๐ถ๐น๐: 6000-series aluminium extrusions absorb energy while slashing 30 % weight. ย โข ๐๐ต๐ฎ๐๐๐ถ๐ ๐ฐ๐ฟ๐ผ๐๐-๐บ๐ฒ๐บ๐ฏ๐ฒ๐ฟ๐: high-strength low-alloy (HSLA) steel keeps stiffness for NVH control. โ๏ธ ๐๐ฒ๐ฟ๐ผ๐๐ฝ๐ฎ๐ฐ๐ฒ ย โข ๐๐๐๐ฒ๐น๐ฎ๐ด๐ฒ ๐๐ธ๐ถ๐ป๐: 2024-T3 and 7075-T6 aluminium alloys dominate for fatigue and weight. ๐ ๐๐ผ๐บ๐ฒ ๐๐ฝ๐ฝ๐น๐ถ๐ฎ๐ป๐ฐ๐ฒ๐ ย โข ๐ฅ๐ฒ๐ณ๐ฟ๐ถ๐ด๐ฒ๐ฟ๐ฎ๐๐ผ๐ฟ ๐น๐ถ๐ป๐ฒ๐ฟ๐: galvanised or coated steel for dent resistance. ย โข ๐ฃ๐ฟ๐ฒ๐บ๐ถ๐๐บ ๐๐ฎ๐๐ต๐ถ๐ป๐ด-๐บ๐ฎ๐ฐ๐ต๐ถ๐ป๐ฒ ๐ฑ๐ฟ๐๐บ๐: spun aluminium for quieter cycles and rust-proof longevity. -- 3๏ธโฃ ๐๐ผ๐๐ ๐๐ป๐๐ถ๐ด๐ต๐๐ ๐ง๐ต๐ฎ๐ ๐ง๐ฟ๐ถ๐ฝ ๐๐ฒ๐๐ถ๐ด๐ป๐ฒ๐ฟ๐ ๐ง๐ผ๐๐ฎ๐น-๐น๐ฎ๐ป๐ฑ๐ฒ๐ฑ ๐ฐ๐ผ๐๐ = ๐ฟ๐ฎ๐ ๐ฝ๐ฟ๐ถ๐ฐ๐ฒ: die cast Al housing can beat welded steel + paint after you tally machining, corrosion coating, and logistics. ๐ฆ๐ฐ๐ฟ๐ฎ๐ฝ ๐๐ฎ๐น๐๐ฒ: Aluminium chips fetch ~โน145 /kg; steel turnings ~โน25 /kg- recycling rebates can tilt the ROI. ๐ฉ๐ผ๐น๐๐บ๐ฒ ๐ฝ๐ฒ๐ป๐ฎ๐น๐๐: Steelโs higher density means bigger shipping weight, but aluminiumโs 30โ40 % material surcharge looms in low-volume runs. Run that spreadsheet! -- ๐ฏ ๐ง๐ฎ๐ธ๐ฒ๐ฎ๐๐ฎ๐ ๐ฃ๐ถ๐ฐ๐ธ ๐๐๐ฒ๐ฒ๐น when you need ultimate stiffness, dent resistance, or budget simplicity. ๐๐ต๐ผ๐ผ๐๐ฒ ๐ฎ๐น๐๐บ๐ถ๐ป๐ถ๐๐บ when every gram hurts or heat must flow freely. Mix intelligentlyโsmart multi-material design often beats โeither-or.โ -- #engineering #ProductDesign #mechanical #design #sheetmetal #caddesign #automotive #aerospace
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