Research on the time–temperature–damage superposition principle of NEPE propellant

被引:1
|
作者
Long Han
Xiong Chen
Jin-sheng Xu
Chang-sheng Zhou
Jia-quan Yu
机构
[1] Nanjing University of Science and Technology,School of Mechanical Engineering
来源
关键词
Viscoelasticity; NEPE propellant; Cumulative damage model; Time–temperature–damage superposition;
D O I
暂无
中图分类号
学科分类号
摘要
To describe the relaxation behavior of NEPE (Nitrate Ester Plasticized Polyether) propellant, we analyzed the equivalent relationships between time, temperature, and damage. We conducted a series of uniaxial tensile tests and employed a cumulative damage model to calculate the damage values for relaxation tests at different strain levels. The damage evolution curve of the tensile test at 100 mm/min was obtained through numerical analysis. Relaxation tests were conducted over a range of temperature and strain levels, and the equivalent relationship between time, temperature, and damage was deduced based on free volume theory. The equivalent relationship was then used to generate predictions of the long-term relaxation behavior of the NEPE propellant. Subsequently, the equivalent relationship between time and damage was introduced into the linear viscoelastic model to establish a nonlinear model which is capable of describing the mechanical behavior of composite propellants under a uniaxial tensile load. The comparison between model prediction and experimental data shows that the presented model provides a reliable forecast of the mechanical behavior of propellants.
引用
收藏
页码:581 / 599
页数:18
相关论文
共 50 条
  • [41] A LIFETIME PREDICTION OF PV ENCAPSULANT AND BACKSHEET VIA TIME TEMPERATURE SUPERPOSITION PRINCIPLE
    Xia, Zhiyong
    Wohlgemuth, John H.
    Cunningham, Daniel W.
    2009 34TH IEEE PHOTOVOLTAIC SPECIALISTS CONFERENCE, VOLS 1-3, 2009, : 1693 - 1696
  • [42] Time-temperature superposition principle for interlayer shear strength of bituminous pavements
    Graziani, Andrea
    Canestrari, Francesco
    Cardone, Fabrizio
    Ferrotti, Gilda
    ROAD MATERIALS AND PAVEMENT DESIGN, 2017, 18 : 12 - 25
  • [43] A Viscoelastic Model for Honeys Using the Time-Temperature Superposition Principle (TTSP)
    Oroian, Mircea
    Amariei, Sonia
    Escriche, Isabel
    Gutt, Gheorghe
    FOOD AND BIOPROCESS TECHNOLOGY, 2013, 6 (09) : 2251 - 2260
  • [44] Time-Temperature-Plasticization Superposition Principle: Predicting Creep of a Plasticized Epoxy
    Krauklis, Andrey E.
    Akulichev, Anton G.
    Gagani, Abedin I.
    Echtermeyer, Andreas T.
    POLYMERS, 2019, 11 (11)
  • [45] Validation of partial time-temperature superposition principle in thermorheologically complex asphalts
    Hernandez-Fernandez, Noe
    Ossa-Lopez, Alexandra
    CONSTRUCTION AND BUILDING MATERIALS, 2021, 276
  • [46] Applicability of the time-temperature superposition principle in modeling dynamic response of a polyurea
    Zhao, J.
    Knauss, W. G.
    Ravichandran, G.
    MECHANICS OF TIME-DEPENDENT MATERIALS, 2007, 11 (3-4) : 289 - 308
  • [47] TIME-TEMPERATURE SUPERPOSITION PRINCIPLE ON RELAXATIONAL BEHAVIOR OF WOOD AS A MULTIPHASE MATERIAL
    NAKANO, T
    HOLZ ALS ROH-UND WERKSTOFF, 1995, 53 (01) : 39 - 42
  • [48] Time Temperature Superposition Principle Validation for Bituminous Mixes in the Linear and Nonlinear Domains
    Quang Tuan Nguyen
    Di Benedetto, Herve
    Sauzeat, Cedric
    Tapsoba, Nouffou
    JOURNAL OF MATERIALS IN CIVIL ENGINEERING, 2013, 25 (09) : 1181 - 1188
  • [49] Application of time-temperature superposition principle to Chinese fir orthotropic creep
    Peng, Hui
    Jiang, Jiali
    Lu, Jianxiong
    Cao, Jinzhen
    JOURNAL OF WOOD SCIENCE, 2017, 63 (05) : 455 - 463
  • [50] Time-temperature superposition principle applicability for blends formed of immiscible polymers
    MacAúbas, PHP
    Demarquette, NR
    POLYMER ENGINEERING AND SCIENCE, 2002, 42 (07): : 1509 - 1519