In this paper,the isogeometric analysis(IGA)method is employed to analyze the oscillation characteristics of functionally graded triply periodic minimal surface(FG-TPMS)curved-doubly shells integrated with magneto-ele...In this paper,the isogeometric analysis(IGA)method is employed to analyze the oscillation characteristics of functionally graded triply periodic minimal surface(FG-TPMS)curved-doubly shells integrated with magneto-electric surface layers(referred to as"FG-TPMS-MEE curved-doubly shells")subjected to low-velocity impact loads.This study presents low-velocity impact load model based on a single springmass(S-M)approach.The FG-TPMS-MEE curved-doubly shells are covered with two magneto-electric surface layers,while the core layer consists of three types:I-graph and Wrapped Package-graph(IWP),Gyroid(G),and Primitive(P),with various graded functions.These types are notable for their exceptional stiffness-to-weight ratios,enabling a wide range of potential applications.The Maxwell equations and electromagnetic boundary conditions are applied to compute the change in electric potentials and magnetic potentials.The equilibrium equations of the shell are derived from a refined higher-order shear deformation theory(HSDT),and the transient responses of the FG-TPMS-MEE curveddoubly shells are subsequently determined using Newmark's direct integration method.These results have applications in structural vibration control and the analysis of structures subjected to impact or explosive loads.Furthermore,this study provides a theoretical prediction of the low-velocity impact load and magneto-electric-elastic effects on the free vibration and transient response of FG-TPMS-MEE curved-doubly shells.展开更多
将跟踪微分器加入到无模型自适应控制器中,结合跟踪微分器与无模型自适应控制器的优点,设计出一种适合于诸如非线性、时滞、时变、强耦合等复杂系统的控制器。该控制器利用跟踪微分器安排过渡过程,实现了对强干扰、大时滞系统的快速、...将跟踪微分器加入到无模型自适应控制器中,结合跟踪微分器与无模型自适应控制器的优点,设计出一种适合于诸如非线性、时滞、时变、强耦合等复杂系统的控制器。该控制器利用跟踪微分器安排过渡过程,实现了对强干扰、大时滞系统的快速、无超调控制,并且进行了与非线性PID(proportional integral derivative)控制器的对比仿真研究。仿真结果表明:带有跟踪微分器的无模型自适应控制器具有的优点,适合于处理带有强干扰以及时滞系统的控制问题。展开更多
基于Nuvoton 0.5μm 5 V标准CMOS工艺,设计了一种高稳定性、高瞬态响应、无片外电容低压差线性稳压器(LDO)。电路中引入了过冲、欠冲电压改善模块,用来削减过/欠充电压,互不干扰。过冲电压改善电路将LDO输出电压与参考电压进行比较,过...基于Nuvoton 0.5μm 5 V标准CMOS工艺,设计了一种高稳定性、高瞬态响应、无片外电容低压差线性稳压器(LDO)。电路中引入了过冲、欠冲电压改善模块,用来削减过/欠充电压,互不干扰。过冲电压改善电路将LDO输出电压与参考电压进行比较,过冲状态下开启从LDO输出端到地的快速放电通路,欠冲电压改善电路通过电容耦合获得反映LDO输出电压瞬态变化的采样信号,经反向放大后加速功率管栅极电容放电,进而通过功率管对LDO输出电容充电。仿真结果表明,在TT工艺角下该低压差线性稳压器的空载相位裕度为64.57°,满载相位裕度为62.58°,过冲电压为40 m V,欠冲电压为97.6 m V,线性调整率为0.733‰;负载调整率19μV/m A;电源电压抑制比(PSRR)为-73 d B。展开更多
文摘In this paper,the isogeometric analysis(IGA)method is employed to analyze the oscillation characteristics of functionally graded triply periodic minimal surface(FG-TPMS)curved-doubly shells integrated with magneto-electric surface layers(referred to as"FG-TPMS-MEE curved-doubly shells")subjected to low-velocity impact loads.This study presents low-velocity impact load model based on a single springmass(S-M)approach.The FG-TPMS-MEE curved-doubly shells are covered with two magneto-electric surface layers,while the core layer consists of three types:I-graph and Wrapped Package-graph(IWP),Gyroid(G),and Primitive(P),with various graded functions.These types are notable for their exceptional stiffness-to-weight ratios,enabling a wide range of potential applications.The Maxwell equations and electromagnetic boundary conditions are applied to compute the change in electric potentials and magnetic potentials.The equilibrium equations of the shell are derived from a refined higher-order shear deformation theory(HSDT),and the transient responses of the FG-TPMS-MEE curveddoubly shells are subsequently determined using Newmark's direct integration method.These results have applications in structural vibration control and the analysis of structures subjected to impact or explosive loads.Furthermore,this study provides a theoretical prediction of the low-velocity impact load and magneto-electric-elastic effects on the free vibration and transient response of FG-TPMS-MEE curved-doubly shells.
文摘将跟踪微分器加入到无模型自适应控制器中,结合跟踪微分器与无模型自适应控制器的优点,设计出一种适合于诸如非线性、时滞、时变、强耦合等复杂系统的控制器。该控制器利用跟踪微分器安排过渡过程,实现了对强干扰、大时滞系统的快速、无超调控制,并且进行了与非线性PID(proportional integral derivative)控制器的对比仿真研究。仿真结果表明:带有跟踪微分器的无模型自适应控制器具有的优点,适合于处理带有强干扰以及时滞系统的控制问题。
文摘基于Nuvoton 0.5μm 5 V标准CMOS工艺,设计了一种高稳定性、高瞬态响应、无片外电容低压差线性稳压器(LDO)。电路中引入了过冲、欠冲电压改善模块,用来削减过/欠充电压,互不干扰。过冲电压改善电路将LDO输出电压与参考电压进行比较,过冲状态下开启从LDO输出端到地的快速放电通路,欠冲电压改善电路通过电容耦合获得反映LDO输出电压瞬态变化的采样信号,经反向放大后加速功率管栅极电容放电,进而通过功率管对LDO输出电容充电。仿真结果表明,在TT工艺角下该低压差线性稳压器的空载相位裕度为64.57°,满载相位裕度为62.58°,过冲电压为40 m V,欠冲电压为97.6 m V,线性调整率为0.733‰;负载调整率19μV/m A;电源电压抑制比(PSRR)为-73 d B。