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Fiberglass, a composite material made from tiny glass fibers embedded in a resin, offers several advantages over traditional materials such as metal or concrete. It is lightweight, resistant to corrosion, and can handle extreme temperatures without compromising its structural integrity. When manufactured into pipes of large diameters, these properties make fiberglass conduits suitable for transporting water, wastewater, chemicals, and even petroleum products.

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The polymerization of resin monomers was initiated in the presence of nanofibers as structural templates to prepare a hydrogel with nanofibrous networks, followed by the drying and pyrolysis to get hard carbon aerogel. During polymerization, the monomers deposit on templates and weld the fiber-fiber joints, leaving a random network structure with massive robust joints. Moreover, physical properties (such as diameters of nanofiber, densities of aerogels, and mechanical properties) can be controlled by simply tuning templates and the amount of raw materials.

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