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1)  physiologically limiting strain
生理限定应变
2)  Physiologically limiting stress
生理限定应力
3)  finite strain theory
有限应变理论
1.
Steinberg-Cochran-Guinan (SCG) model, the corrected SCG model and the finite strain theory were reviewed with respect to the basic assumptions and applicability, and the shear modulus data of aluminum under shock compression predicted by these models were compared with the available data obtained in one-dimensional plate impact experiments.
分别用Steinberg-Cochran-Guinan(SCG)模型、修正的SCG模型和有限应变理论对材料的剪切模量做了数值计算,并与一维平面应变加载下铝的实验结果进行了比较。
2.
We obtained G″ P \-0=-0 033?GPa -1 for 93 tungsten alloy,and applied this result in the finite strain theory of Birch-Murnaghan,when comparing the calculated results of G″ P \-0=-0 033?GPa -1 with the results of G″ P =0, we find the results of G″ P =0 are greater than that of the res.
0 33GPa-1,把这一结果用于Birch Murnaghan有限应变理论的计算 ,并与G″P=0的计算结果进行了比较 。
4)  theorem of minium strain energy
最小应变能定理
5)  limited hoop strain design criteria
限定环向应变准则
6)  Eulerian finite strain theory
欧拉有限应变理论
1.
K 0S and K′ 0S ,the zero pressure adiabatic bulk modulus and its first pressure derivative of Birch Murnaghan EOS(isentrope) for halloysite,are obtained in terms of shock Hugoniot data by using the Eulerian finite strain theory.
用欧拉有限应变理论分析了埃洛石的冲击 Hugoniot 实验数据,得到了其低压相和高压相的等熵体积模量 K0 S 及其对压力的一阶导数 K′0 S。
补充资料:几何限定茂金属催化剂
分子式:
CAS号:

性质:由一种独特的带单环戊二烯基环配位的含氮的过渡元素金属络合物和助活化剂(主要为甲基铝氧烷或硼化合物)组成的一类茂金属催化剂。典型结构为:其中环上之取代基(R为烷基等)存在使Ti原子和配体构成的离域π键与Ti—N键间之夹角θ,受到限制(束缚),小于不带取代基者(上图中θ<155°)因而得名。在乙烯共聚时,活性高,共聚物分子量分布窄。含有很长侧链。加工性能好。用于烯烃聚合。

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