Flame-retardant mechanism and mechanical property of flame-retardant corn straw brick (FRCSB)

被引:1
|
作者
Lu, Yao [1 ]
Zhang, Tingting [2 ]
Lu, Zeguang [1 ]
机构
[1] Shandong Agr Univ, Coll Forestry, 61 Daizong Rd, Tai An 271018, Shandong, Peoples R China
[2] Shandong Agr Univ, Coll Mech & Elect Engn, 61 Daizong Rd, Tai An 271018, Shandong, Peoples R China
关键词
Flame retardancy; Heat treatment; Calcium carbonate barrier; Decomposition rates; Compressive strength; MAIZE;
D O I
10.1016/j.indcrop.2024.119852
中图分类号
S2 [农业工程];
学科分类号
0828 ;
摘要
In this paper, the pyrolysis characteristics of flame-retardant corn straw brick (FRCSB) and the changes in weights, dimensions, colors, mechanical properties, and micromorphology after high temperature treatment were studied. The results indicate that FRCSB demonstrates excellent flame retardancy. The evaporation process of water in FRCSB is delayed, completing only at a heat treatment temperature of 300 degrees C, whereas the evaporation processes for Ca(OH)2 and corn straw fiber are completed at 200 degrees C and 100 degrees C, respectively. The decomposition process of corn straw fiber and Ca(OH)2 in FRCSB is also delayed and slowed compared to their individual decomposition rates. This delay occurs because the calcium carbonate (CaCO3) formed from the reaction between Ca(OH)2 and CO2 creates a barrier on the surface of FRCSB, preventing heat exchange. The observed changes in color and weight of FRCSB during heat treatment support these findings. Furthermore, a specific range of heat treatment reduces the moisture content of FRCSB and increases its compressive strength up to 18.86 MPa at 200 degrees C. However, the compressive strength decreases rapidly due to the decomposition of corn straw fiber within FRCSB. Therefore, the key to enhancing the mechanical properties of FRCSB at high temperatures lies in preventing the decomposition of corn straw fiber in the brick. The strongly alkaline environment provided by Ca(OH)2 allows corn straw fiber to retain its properties during heat treatment, thereby improving the performance of FRCSB by serving as a support and connector.
引用
收藏
页数:12
相关论文
共 50 条
  • [21] FLAME-RETARDANT RAYON
    MOHONEY, WK
    CHEMICAL ENGINEERING, 1974, 81 (02) : 5 - 5
  • [22] FLAME-RETARDANT FABRICS
    MARLAND, RE
    ARCHIVES OF ENVIRONMENTAL HEALTH, 1967, 15 (04): : 409 - &
  • [23] Flame-retardant ABS
    Modern Plastics, 1993, 70 (09):
  • [24] Characterization of flame-retardant performance of polyester/flame-retardant viscose blended yarn
    Zhao Zhou
    Di Youbo
    Gao Libin
    Wang Wei
    Wu Xing
    JOURNAL OF INDUSTRIAL TEXTILES, 2020, 49 (10) : 1304 - 1316
  • [25] FLAME-RETARDANT PROPERTIES AND THERMAL BEHAVIOR OF SELECTED FLAME-RETARDANT COTTON FABRICS
    GILLILAND, BF
    SMITH, BF
    JOURNAL OF APPLIED POLYMER SCIENCE, 1972, 16 (07) : 1801 - +
  • [26] Polylactic acid flame-retardant composite preparation and investigation of flame-retardant characteristics
    Pei, Meng
    Wei, Ke
    Zhang, Daohai
    Qin, Shuhao
    POLYMER ENGINEERING AND SCIENCE, 2023, 63 (03): : 880 - 894
  • [27] Synergistic Flame-Retardant Effect of Aluminum Diethyl Phosphinate in PP/IFR System and the Flame-Retardant Mechanism
    Li, J. -L.
    Gao, C. -T.
    Sun, X.
    Peng, S. -G.
    Wang, Y. -W.
    Qin, S. -H.
    INTERNATIONAL POLYMER PROCESSING, 2021, 36 (05) : 519 - 528
  • [28] FLAME-RETARDANT CHEMICAL MECHANISMS OF FLAME-RETARDANT VISCOSE FIBERS AND BLENDS WITH POLYESTER
    NOUSIAINEN, P
    HEIDARI, S
    MAKROMOLEKULARE CHEMIE-MACROMOLECULAR SYMPOSIA, 1993, 74 : 41 - 57
  • [29] Flame retardant effect and mechanism of benzoxazine as synergist in intumescent flame-retardant polyoxymethylene
    Lu, Zhehong
    Feng, Weili
    Kang, Xinglong
    Wang, Junliang
    Xu, Hao
    Li, Jiantong
    Wang, Yanpeng
    Liu, Baoying
    Fang, Xiaomin
    POLYMERS FOR ADVANCED TECHNOLOGIES, 2020, 31 (11) : 2512 - 2525
  • [30] A flame-retardant PET fabric coating: Flammability, anti-dripping properties, and flame-retardant mechanism
    Tao, Ye
    Liu, Chang
    Li, Ping
    Wang, Bin
    Xu, Ying-Jun
    Jiang, Zhi-Ming
    Liu, Yun
    Zhu, Ping
    PROGRESS IN ORGANIC COATINGS, 2021, 150