TY - GEN
T1 - Studies on ablation-resistant properties of inorganic nano-particles hybrid phenolic resin
AU - Liu, Nai Liang
AU - Huang, Ying
AU - Li, Chun Hua
AU - Shi, Yan Mei
PY - 2010
Y1 - 2010
N2 - Ablative thermal protection is a common thermal protection technology for recoverable spacecraft, which makes use of the decomposition, depolymerization, melting, evaporation, gasification or ionization of materials to transfer a large quantity of heat in order to ensure the safety of the internal device. The ablation-resistant properties of hybrid phenolic materials with 5 wt% SiC, SiO2 and Al2O3 inorganic nano-particles were studied in this paper. Glass transition temperature (Tg) of hybrid phenolic materials with SiC, SiO2 and Al2O3 inorganic nano-particles which studied by differential scanning calorimetry (DSC) increased by 6.31°C, 1.35°C and 4.93°C separately. This indicated that adding inorganic nano-particles hindered movement of molecular chain. Moreover the Tg values were also raised. Activation energies of thermal decomposition of different kinds of materials were calculated by Kissinger and Flynn-Wall-Ozawa method. It was found that after adding inorganic particles activation energy of thermal decomposition in the first stage decreased slightly, which made post-curing reaction easier. The degree of decreasing was: SiO2>Al2O3>SiC. While in the third stage activation energy of thermal decomposition increased to improve heat resistance of materials at high temperatures. The degree of increasing was: Al 2O3>SiC>SiO2. The average linear ablation rate of glass fiber reinforced pure phenolic, phenolic with SiC hybrid, phenolic with SiO2-hybrid and phenolic with Al2O 3-hybrid tested by oxygen-acetylene ablation were 0.210 mm/s, 0.178 mm/s, 0.194 mm/s and 0.166 mm/s separately. The morphologies of composite materials observed by scanning electron microscopy (SEM) after ablation showed that glass fiber were melted during ablation, which formed a compact insulating layer at the surface. The carbon layer ablated beside the decomposed area kept the porous structure caused by ablation, which reduced thermal conduction.
AB - Ablative thermal protection is a common thermal protection technology for recoverable spacecraft, which makes use of the decomposition, depolymerization, melting, evaporation, gasification or ionization of materials to transfer a large quantity of heat in order to ensure the safety of the internal device. The ablation-resistant properties of hybrid phenolic materials with 5 wt% SiC, SiO2 and Al2O3 inorganic nano-particles were studied in this paper. Glass transition temperature (Tg) of hybrid phenolic materials with SiC, SiO2 and Al2O3 inorganic nano-particles which studied by differential scanning calorimetry (DSC) increased by 6.31°C, 1.35°C and 4.93°C separately. This indicated that adding inorganic nano-particles hindered movement of molecular chain. Moreover the Tg values were also raised. Activation energies of thermal decomposition of different kinds of materials were calculated by Kissinger and Flynn-Wall-Ozawa method. It was found that after adding inorganic particles activation energy of thermal decomposition in the first stage decreased slightly, which made post-curing reaction easier. The degree of decreasing was: SiO2>Al2O3>SiC. While in the third stage activation energy of thermal decomposition increased to improve heat resistance of materials at high temperatures. The degree of increasing was: Al 2O3>SiC>SiO2. The average linear ablation rate of glass fiber reinforced pure phenolic, phenolic with SiC hybrid, phenolic with SiO2-hybrid and phenolic with Al2O 3-hybrid tested by oxygen-acetylene ablation were 0.210 mm/s, 0.178 mm/s, 0.194 mm/s and 0.166 mm/s separately. The morphologies of composite materials observed by scanning electron microscopy (SEM) after ablation showed that glass fiber were melted during ablation, which formed a compact insulating layer at the surface. The carbon layer ablated beside the decomposed area kept the porous structure caused by ablation, which reduced thermal conduction.
KW - Ablation resistance
KW - Inorganic hybrid
KW - Phenolic resin
UR - http://www.scopus.com/inward/record.url?scp=79959425733&partnerID=8YFLogxK
M3 - 会议稿件
AN - SCOPUS:79959425733
SN - 9781617823688
T3 - 61st International Astronautical Congress 2010, IAC 2010
SP - 4823
EP - 4828
BT - 61st International Astronautical Congress 2010, IAC 2010
T2 - 61st International Astronautical Congress 2010, IAC 2010
Y2 - 27 September 2010 through 1 October 2010
ER -