Rocket Lab Jun 07, 2025
‘Global Auto Suppliers Katcon And Tata Establish Joint Venture In Monterrey – Mexico News Daily’
Mexico News Daily May 20, 2025
Katcon and Tata AutoComp will jointly manufacture advanced composites for the North American automotive and industrial markets.
‘A Double Act Of Advanced Nonwovens – Aerospace Manufacturing Magazine’
Aerospace Manufacturing magazine Jun 09, 2025
‘Continuous Composites And Aurora Flight Sciences Advance Launched Effect Structures Under U.S. Army SBIR – PR Newswire’
PR Newswire Jun 09, 2025
PRNewswire -- Continuous Composites CCI a leader in advanced composite manufacturing has been awarded a U.S. Army Small Business Innovation Research...
‘University Of Southern Queensland – Dassault Systèmes’
Dassault Systèmes Jun 04, 2025
The Centre for Future Materials at UniSQ is using the 3DEXPERIENCE platform in end-to-end composite repair processes for aircraft components.
‘US Hexcel Partners With NIAR To Advance Aerospace Composites – Fibre2Fashion’
Fibre2Fashion Jun 16, 2025
Hexcel Corporation and NIAR at Wichita State University signed an MoU to create the Hexcel Application Center at NIAR ATLAS in Kansas. Backed by over 10 million in advanced...
‘Dynamic Mechanical Response Evaluation Of Woven Carbon Fiber Reinforced Rubber Laminated Composites Under High Strain Rates – Nature’
Nature May 14, 2025
Woven carbon fiber reinforced rubber laminated composites WCRLC are increasingly adopted in impact-critical engineering applications such as marine fenders and aerospace buffers owing to their lightweight and energy absorptionreflection capabilities. However dynamic mechanical response evaluation of WCRLC under high strain rates remains inadequately characterized. In this study WCRLC was fabricated using silicon rubber and 2D woven carbon fiber WCF with the needled technique. Dynamic mechanical response and energy evolution of WCRLC were investigated using a split Hopkinson pressure bar SHPB. The results showed that the stress at both ends of the specimen was in a state of dynamic equilibrium. The peak compressive strength and toughness of WCRLC increased with an increase of strain rate. The energy analysis indicated that with the increase of the number of layers of WCF WCRLC demonstrated better impact resistance performance including the dynamic toughness the energy absorption specific energy absorption and dissipated to incident energy ratio. Transmitted energy ratio of the five types of WCRLC was less than 1. The WCRLC with 3 layers of WCF exhibited the highest transmission energy ratio due to balanced fiber-matrix interaction.
‘Additive Manufacturing Of Carbon Fiber-reinforced Thermoset Composites Via In-situ Thermal Curing – Nature’
Nature May 20, 2025
Fiber-reinforced polymer composites are lightweight structural materials widely used in the transportation and energy industries. Current approaches for the manufacture of composites require expensive tooling and long energy-intensive processing resulting in a high cost of manufacturing limited design complexity and low fabrication rates. Here we report rapid scalable and energy-efficient additive manufacturing of fiber-reinforced thermoset composites while eliminating the need for tooling or molds. Use of a thermoresponsive thermoset resin as the matrix of composites and localized remote heating of carbon fiber reinforcements via photothermal conversion enables rapid in-situ curing of composites without further post-processing. Rapid curing and phase transformation of the matrix thermoset from a liquid or viscous resin to a rigid polymer immediately upon deposition by a robotic platform allows for the high-fidelity freeform manufacturing of discontinuous and continuous fiber-reinforced composites without using sacrificial support materials. This method is applicable to a variety of industries and will enable rapid and scalable manufacture of composite parts and tooling as well as on-demand repair of composite structures. Fiber-reinforced polymer composites are lightweight structural materials used in a wide range of applications but manufacturing of composites requires expensive tooling and long energy-intensive processing. Here the authors report rapid scalable and energy-efficient additive manufacturing of fiber-reinforced thermoset composites while eliminating the need for tooling or support materials.
‘Damage Morphology Of Unvented Honeycomb Sandwich Panels Subjected To Flatwise. – ResearchGate’
ResearchGate May 11, 2025
‘Teamwork For Lightweight, Durable Aluminium Honeycomb Panels – Cision News’
Cision News May 14, 2025
Potma develops innovative honeycomb-structured construction materials for demanding industries. An
‘3D Printing Of Short Fiber Reinforced Polymers: A Review Of The Materials, 3D Printers, Lattice Structures And Pre-/post-treatment Impact On The Mechanical Characteristics | Request PDF – ResearchGate’
ResearchGate May 06, 2025
‘Types Of Glass Fibers: Continuously Long Threaded (a), Woven And Random… – ResearchGate’
ResearchGate May 04, 2025
‘Novel Method For Manufacturing Complex Carbon Fiber-reinforced Polymer (CFRP) Parts. – ResearchGate’
ResearchGate May 07, 2025
‘Dynamic Mechanical Response Evaluation Of Woven Carbon Fiber Reinforced Rubber Laminated Composites Under High Strain Rates – Nature’
Nature May 14, 2025
Woven carbon fiber reinforced rubber laminated composites WCRLC are increasingly adopted in impact-critical engineering applications such as marine fenders and aerospace buffers owing to their lightweight and energy absorptionreflection capabilities. However dynamic mechanical response evaluation of WCRLC under high strain rates remains inadequately characterized. In this study WCRLC was fabricated using silicon rubber and 2D woven carbon fiber WCF with the needled technique. Dynamic mechanical response and energy evolution of WCRLC were investigated using a split Hopkinson pressure bar SHPB. The results showed that the stress at both ends of the specimen was in a state of dynamic equilibrium. The peak compressive strength and toughness of WCRLC increased with an increase of strain rate. The energy analysis indicated that with the increase of the number of layers of WCF WCRLC demonstrated better impact resistance performance including the dynamic toughness the energy absorption specific energy absorption and dissipated to incident energy ratio. Transmitted energy ratio of the five types of WCRLC was less than 1. The WCRLC with 3 layers of WCF exhibited the highest transmission energy ratio due to balanced fiber-matrix interaction.
‘Additive Manufacturing Of Carbon Fiber-reinforced Thermoset Composites Via In-situ Thermal Curing – Nature’
Nature May 20, 2025
Fiber-reinforced polymer composites are lightweight structural materials widely used in the transportation and energy industries. Current approaches for the manufacture of composites require expensive tooling and long energy-intensive processing resulting in a high cost of manufacturing limited design complexity and low fabrication rates. Here we report rapid scalable and energy-efficient additive manufacturing of fiber-reinforced thermoset composites while eliminating the need for tooling or molds. Use of a thermoresponsive thermoset resin as the matrix of composites and localized remote heating of carbon fiber reinforcements via photothermal conversion enables rapid in-situ curing of composites without further post-processing. Rapid curing and phase transformation of the matrix thermoset from a liquid or viscous resin to a rigid polymer immediately upon deposition by a robotic platform allows for the high-fidelity freeform manufacturing of discontinuous and continuous fiber-reinforced composites without using sacrificial support materials. This method is applicable to a variety of industries and will enable rapid and scalable manufacture of composite parts and tooling as well as on-demand repair of composite structures. Fiber-reinforced polymer composites are lightweight structural materials used in a wide range of applications but manufacturing of composites requires expensive tooling and long energy-intensive processing. Here the authors report rapid scalable and energy-efficient additive manufacturing of fiber-reinforced thermoset composites while eliminating the need for tooling or support materials.
‘Fiber Reinforced Polymer Composite Tensile Test Specimen Geometry As Per ASTM D3039. – ResearchGate’
ResearchGate May 28, 2025
‘New Technology Coming To Black Rock Lock: Fiber Reinforced Polymer Bulkheads – Army.mil’
army.mil May 14, 2025
The U.S. Army Corps of Engineers Buffalo District and the Inland Navigation Design Center are introducing new technology to the Black Rock Lock Buffa...
‘Prepreg Compression Molding Supports Higher-rate Propeller Manufacturing – CompositesWorld’
CompositesWorld May 30, 2025
To meet increasing UAV market demands Mejzlik Propellers has added a higher-rate compression molding line to its custom CFRP propeller capabilities.
‘Xenia Presents Xeramic Ceramic Thermoplastic Fillers – CompositesWorld’
CompositesWorld May 30, 2025
Compounds range available in the Pure version and the fiber-reinforced Core version feature high thermal conductivity and heat dissipation.
‘GVP Tanks Pass Extreme Fire Tests, Confirm Market Readiness – CompositesWorld’
CompositesWorld May 30, 2025
Full-size high-pressure Type 3 compositexA0tank test results conclude safe containment during severe fire scenarios.
‘JEC Group To Launch Series Of Composites Events In The Middle East – CompositesWorld’
CompositesWorld May 30, 2025
A 3-year strategic agreement with the region targets the organization of a one-day JEC Talks in June 2025 and a JEC Forum Middle East in 2026.
