以DSP为控制平台设计单相光伏并网系统,在改进型单纯型加速法的基础上设计新型光伏阵列最大跟踪控制优化算法,跟踪光伏阵列最大输出功率点,使负载获得最大功率。在线调节步长改变电压收敛速度,设计锁相控制电路,自动同步跟踪电网频率和...以DSP为控制平台设计单相光伏并网系统,在改进型单纯型加速法的基础上设计新型光伏阵列最大跟踪控制优化算法,跟踪光伏阵列最大输出功率点,使负载获得最大功率。在线调节步长改变电压收敛速度,设计锁相控制电路,自动同步跟踪电网频率和相位。测试数据表明,结合优化技术的变步长MPPT(Maximum Power Point Tracking)算法能快速准确跟踪最大功率点,系统波动小稳定性高,逆变器电流和电网电压同频同相,有效提高系统逆变效率及可靠性。展开更多
During the conventional continuous casting process of high-aluminum steels(w([Al])>0.5 wt.%),some components of slag,such as SiO_(2),B_(2)O_(3),and TiO_(2),could be reduced by aluminum in molten steel.Therefore,the...During the conventional continuous casting process of high-aluminum steels(w([Al])>0.5 wt.%),some components of slag,such as SiO_(2),B_(2)O_(3),and TiO_(2),could be reduced by aluminum in molten steel.Therefore,the CaO-BaO-Al_(2)O_(3)-CaF2-Li2O non-reactive mold fluxes were designed using the simplex grid method and molecular dynamics to mitigate the slag-metal interface reaction and stabilize the performance of mold fluxes.The results show that the components of nonreactive quinary system are 20-40 wt.% CaO,14-34 wt.% BaO,14-34 wt.% Al_(2)O_(3),4-12 wt.% F,and 4-8 wt.% Li_(2)O.Molecular dynamics simulation results show that[AlO_(4)]-tetrahedron acts as network formers and melt network structure is mainly chain and lamellar in the low-viscosity area.The cross sections of w(F)=8 wt.%,w(Li_(2)O)=8 wt.%and w(F)=12 wt.%,w(Li2O)=8 wt.% are important reference sections for the design of mold flux,with the compositions of 22-40 wt.%CaO,14-34 wt.% BaO,20-34 wt.%Al_(2)O_(3) and 23-40 wt.%CaO,14-34 wt.%BaO,20-28 wt.% Al_(2)O_(3),respectively.展开更多
文摘以DSP为控制平台设计单相光伏并网系统,在改进型单纯型加速法的基础上设计新型光伏阵列最大跟踪控制优化算法,跟踪光伏阵列最大输出功率点,使负载获得最大功率。在线调节步长改变电压收敛速度,设计锁相控制电路,自动同步跟踪电网频率和相位。测试数据表明,结合优化技术的变步长MPPT(Maximum Power Point Tracking)算法能快速准确跟踪最大功率点,系统波动小稳定性高,逆变器电流和电网电压同频同相,有效提高系统逆变效率及可靠性。
基金the fund support from the National Natural Science Foundation of China(Project Nos.U20A20270 and U1660204).
文摘During the conventional continuous casting process of high-aluminum steels(w([Al])>0.5 wt.%),some components of slag,such as SiO_(2),B_(2)O_(3),and TiO_(2),could be reduced by aluminum in molten steel.Therefore,the CaO-BaO-Al_(2)O_(3)-CaF2-Li2O non-reactive mold fluxes were designed using the simplex grid method and molecular dynamics to mitigate the slag-metal interface reaction and stabilize the performance of mold fluxes.The results show that the components of nonreactive quinary system are 20-40 wt.% CaO,14-34 wt.% BaO,14-34 wt.% Al_(2)O_(3),4-12 wt.% F,and 4-8 wt.% Li_(2)O.Molecular dynamics simulation results show that[AlO_(4)]-tetrahedron acts as network formers and melt network structure is mainly chain and lamellar in the low-viscosity area.The cross sections of w(F)=8 wt.%,w(Li_(2)O)=8 wt.%and w(F)=12 wt.%,w(Li2O)=8 wt.% are important reference sections for the design of mold flux,with the compositions of 22-40 wt.%CaO,14-34 wt.% BaO,20-34 wt.%Al_(2)O_(3) and 23-40 wt.%CaO,14-34 wt.%BaO,20-28 wt.% Al_(2)O_(3),respectively.