Study on high efficiency power supply with wide input voltage for stratospheric airships

The stratospheric airships for telecommunication relay station and ground observations at 20km altitude has been widely used in recent years. Energy recycling system is one of key technologies for the stratospheric airship, which includes solar arrays, storage batteries and power control unit. Both of the battery charge regulator and the battery discharge regulator of power control unit are DC power converters. A small bus voltage ripple, wide input voltage, input and output current continuity, high efficiency, and the high power are the most desired characteristics for DC power converters used in stratospheric airships. This paper presents a newly developed DC power converter, which features with coupling the SuperBuck circuit and the Push-Pull circuits. The DC converter consists of a SuperBuck circuit, a Push-Pull circuit, and a closed-loop control circuit. Its main circuit topology connection is that the positive output of the SuperBuck circuit is connected to the positive input of the Push-Pull circuit directly, the positive output of SuperBuck is connected with the negative output of the Push-Pull circuit through a diode cathode, the negative output of the SuperBuck is connected with the negative input of the Push-Pull circuit, which is used as the negative output of the DC power converter. The positive output of the Push-Pull circuit is used as the positive output of the DC converter. It is experimentally verified that the designed new DC power converter circuit has many advantages which include a good voltage output property for the Push-Pull circuit, a high efficiency and a small current pulse for the SuperBuck circuit. The converter current is continuous and the Step-up mode and Step-down mode can be automatically switched. It also overcomes the low efficiency shortage of a pure Push-Pull circuit and realizes a high efficient output with a constant voltage and current.

[1]  Zheng You,et al.  Tsinghua-1 Micro-satellite power system architecture and design , 2012 .

[2]  A. Capel,et al.  Comparative performance evaluation between the S4R and the S3R regulated bus topologies , 2001, 2001 IEEE 32nd Annual Power Electronics Specialists Conference (IEEE Cat. No.01CH37230).

[3]  Jung-Goo Cho,et al.  Novel zero-voltage and zero-current-switching full-bridge PWM converter using a simple auxiliary circuit , 1999 .

[4]  M. Obland,et al.  Power subsystem design for the Montana EaRth Orbiting Pico-Explorer (MEROPE) CubeSat-class satellite , 2002, Proceedings, IEEE Aerospace Conference.

[5]  J. Aroca,et al.  An efficient BDR topology, able to handle a large battery voltage range , 1998 .

[6]  J.B. Ejea,et al.  Small-signal modeling of a controlled transformer parallel regulator as a multiple output converter high efficient post-regulator , 2004, IEEE Transactions on Power Electronics.

[7]  N. H. Kutkut,et al.  Current mode control of a full bridge DC-to-DC converter with a two inductor rectifier , 1997, PESC97. Record 28th Annual IEEE Power Electronics Specialists Conference. Formerly Power Conditioning Specialists Conference 1970-71. Power Processing and Electronic Specialists Conference 1972.