This paper studies the achievable spectral efficiency(SE)of downlink multiuser multiple-input-multiple-output(MIMO)system,where the base station(BS)is deployed an arbitrary finite antenna number and communicates simul...This paper studies the achievable spectral efficiency(SE)of downlink multiuser multiple-input-multiple-output(MIMO)system,where the base station(BS)is deployed an arbitrary finite antenna number and communicates simultaneously with many users. We assume that the BS has accurate channel state information(CSI)and adopt maximum ratio transmission(MRT)precoding. An accurate analytical result for the achievable SE is obtained. Based on the analytical result on the achievable SE,we further study the achievable energy efficiency(EE)of multiuser MIMO system by considering an energy consumption model. Results indicate that the increasing number of BS antennas can boost the achievable SE of system,whilst the achievable SE tends to a saturated rate in the high signal-tonoise ratios(SNR)regime. Furthermore,an important conclusion is that the increasing number of users is beneficial for the achievable EE and there is an optimal antenna number to maximize the EE of system.展开更多
One performance measure of in-air ultrasonic radiators, such as wireless power transmission, is the power efficiency of the transducers. The efficiency of most in-air acoustic radiators is low, even at ultrasonic freq...One performance measure of in-air ultrasonic radiators, such as wireless power transmission, is the power efficiency of the transducers. The efficiency of most in-air acoustic radiators is low, even at ultrasonic frequencies;however, a large radiating plate with steps introduced by Gallego-Juarez et al., can provide efficient radiation. Their in-air acoustic radiator consists of a Langevin transducer for wave excitation, a mechanical amplifier, and a stepped plate with a large radiating area. This study describes a design processing technique for a stepped-plate radiator developed for optimum energy transmission at the target point in air. The total efficiency required to transfer the acoustic energy was divided into three categories, and the design parameters of each category were calculated to maximize the efficiency. This design technique allows optimum acoustic radiation efficiency and maximum acoustic energy transmission depending on various acoustic energy transfer conditions.展开更多
讨论利用加权最大功率传输效率法(Weighted method of maximum power transmission efficiency,WMMPTE)实现多波束阵列天线的稀疏化,使得天线单元数目小于天线波束数数目。待设计天线与置于波束方向的测试天线形成无线功率传输系统,再利...讨论利用加权最大功率传输效率法(Weighted method of maximum power transmission efficiency,WMMPTE)实现多波束阵列天线的稀疏化,使得天线单元数目小于天线波束数数目。待设计天线与置于波束方向的测试天线形成无线功率传输系统,再利用WMMPTE优化可得到多波束阵列天线的最优激励分布。根据最优激励分布可进行阵列单元的稀疏化。通过工作频率为5.8 GHz的一维直线阵列和二维平面阵列为例介绍了稀疏化设计过程。模拟和实验表明,经WMMPTE优化后,利用3单元天线阵列可以实现4个波束、8单元天线阵列可以实现9个波束。展开更多
基金supported by the National Natural Science Foundation of China under Grants 61531011 and 61450110445the International Science and Technology Cooperation Program of China under Grant 2014DFT10300 and China Scholarship Council
文摘This paper studies the achievable spectral efficiency(SE)of downlink multiuser multiple-input-multiple-output(MIMO)system,where the base station(BS)is deployed an arbitrary finite antenna number and communicates simultaneously with many users. We assume that the BS has accurate channel state information(CSI)and adopt maximum ratio transmission(MRT)precoding. An accurate analytical result for the achievable SE is obtained. Based on the analytical result on the achievable SE,we further study the achievable energy efficiency(EE)of multiuser MIMO system by considering an energy consumption model. Results indicate that the increasing number of BS antennas can boost the achievable SE of system,whilst the achievable SE tends to a saturated rate in the high signal-tonoise ratios(SNR)regime. Furthermore,an important conclusion is that the increasing number of users is beneficial for the achievable EE and there is an optimal antenna number to maximize the EE of system.
文摘One performance measure of in-air ultrasonic radiators, such as wireless power transmission, is the power efficiency of the transducers. The efficiency of most in-air acoustic radiators is low, even at ultrasonic frequencies;however, a large radiating plate with steps introduced by Gallego-Juarez et al., can provide efficient radiation. Their in-air acoustic radiator consists of a Langevin transducer for wave excitation, a mechanical amplifier, and a stepped plate with a large radiating area. This study describes a design processing technique for a stepped-plate radiator developed for optimum energy transmission at the target point in air. The total efficiency required to transfer the acoustic energy was divided into three categories, and the design parameters of each category were calculated to maximize the efficiency. This design technique allows optimum acoustic radiation efficiency and maximum acoustic energy transmission depending on various acoustic energy transfer conditions.
文摘讨论利用加权最大功率传输效率法(Weighted method of maximum power transmission efficiency,WMMPTE)实现多波束阵列天线的稀疏化,使得天线单元数目小于天线波束数数目。待设计天线与置于波束方向的测试天线形成无线功率传输系统,再利用WMMPTE优化可得到多波束阵列天线的最优激励分布。根据最优激励分布可进行阵列单元的稀疏化。通过工作频率为5.8 GHz的一维直线阵列和二维平面阵列为例介绍了稀疏化设计过程。模拟和实验表明,经WMMPTE优化后,利用3单元天线阵列可以实现4个波束、8单元天线阵列可以实现9个波束。