4.7 Article

High temperature and high strength Y2Zr2O7 flexible fibrous membrane for efficient heat insulation and acoustic absorption

Journal

CHEMICAL ENGINEERING JOURNAL
Volume 416, Issue -, Pages -

Publisher

ELSEVIER SCIENCE SA
DOI: 10.1016/j.cej.2021.128994

Keywords

Y2Zr2O7; Fibrous membrane; High temperature flexible; Heat insulation; Acoustic absorption

Funding

  1. National Natural Science Foundation of China [51472144]
  2. Shandong University Young Scholars Program [2016WLJH27]
  3. Fundamental Research Funds for the Central Universities [2082019014]
  4. Shandong Provincial Natural Science Foundation [ZR2020ME023]

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The research team has developed a novel material with excellent thermal stability and flexibility, making it suitable for high-temperature environments with various stringent requirements. This material's unique structure, low density, high porosity, and outstanding thermal insulation performance set it apart from conventional materials.
At high temperatures, lightweight ceramic and aerogel materials have serious problems such as volume shrinkage, increased density, loss of flexibility, and decreased thermal insulation performances. The research on high-performance, lightweight, and flexible materials, which can meet the requirements of high-temperature applications, is a challenging topic in the industry. In this work, we developed a defective fluorite phase Y2Zr2O7 flexible fibrous membrane (Y2Zr2O7) material which has excellent thermal stability, no phase change until 1200 degrees C, and excellent flexibility until 1200 degrees C. The dense single fiber structure results in the tensile strength of the YZFM as high as 8.27 MPa. The low density (44 mg/cm(3)), high porosity (99.2%), and excellent heat radiation reflectivity (750-2500 nm: Avg. 96.34%) endow the YZFM with outstanding thermal insulation performance (the thermal conductivity: 38 mW m(-1) K-1). The 30 mm thick YZFM can reduce the high temperature of 1260 degrees C to 185 degrees C. The anisotropic layered structure makes YZFM have better acoustic absorption performance than commercial materials. These robust performances make our YZFM suitable for fields with strict requirements on material usage conditions, such as aerospace and cutting-edge industries.

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