The Experts below are selected from a list of 327 Experts worldwide ranked by ideXlab platform

Zhiqing Zou - One of the best experts on this subject based on the ideXlab platform.

  • a silicon based micro direct methanol fuel cell stack with a serial Flow Path design
    International Journal of Energy Research, 2013
    Co-Authors: Jianyu Cao, Zhidong Chen, Wenchang Wang, Qinghong Huang, Zhiqing Zou
    Abstract:

    SUMMARY A 6-cell silicon-based micro direct methanol fuel cell (μDMFC) stack utilized the serial Flow Path design was developed. The effect of the structure of Flow Path on the performance of the stack was investigated using polarization characterization and electrochemical impedance analysis. Further, the voltage distribution for individual cells under different current density was discussed. The results indicated that the μDMFC stack with the serial Flow Path design exhibited better performance than that utilized the parallel Flow Path due to uniform mass transfer of methanol as a result of the use of the serial Flow Path. Such a μDMFC stack generates a peak output power of ca. 187 mW, corresponding to an average power density of ca. 21.7 mWcm-2, and exhibits a steady-state power output for more than 100 h. Copyright © 2011 John Wiley & Sons, Ltd.

  • A silicon‐based micro direct methanol fuel cell stack with a serial Flow Path design
    International Journal of Energy Research, 2011
    Co-Authors: Jianyu Cao, Zhidong Chen, Wenchang Wang, Qinghong Huang, Zhiqing Zou
    Abstract:

    SUMMARY A 6-cell silicon-based micro direct methanol fuel cell (μDMFC) stack utilized the serial Flow Path design was developed. The effect of the structure of Flow Path on the performance of the stack was investigated using polarization characterization and electrochemical impedance analysis. Further, the voltage distribution for individual cells under different current density was discussed. The results indicated that the μDMFC stack with the serial Flow Path design exhibited better performance than that utilized the parallel Flow Path due to uniform mass transfer of methanol as a result of the use of the serial Flow Path. Such a μDMFC stack generates a peak output power of ca. 187 mW, corresponding to an average power density of ca. 21.7 mWcm-2, and exhibits a steady-state power output for more than 100 h. Copyright © 2011 John Wiley & Sons, Ltd.

Jianyu Cao - One of the best experts on this subject based on the ideXlab platform.

  • a silicon based micro direct methanol fuel cell stack with a serial Flow Path design
    International Journal of Energy Research, 2013
    Co-Authors: Jianyu Cao, Zhidong Chen, Wenchang Wang, Qinghong Huang, Zhiqing Zou
    Abstract:

    SUMMARY A 6-cell silicon-based micro direct methanol fuel cell (μDMFC) stack utilized the serial Flow Path design was developed. The effect of the structure of Flow Path on the performance of the stack was investigated using polarization characterization and electrochemical impedance analysis. Further, the voltage distribution for individual cells under different current density was discussed. The results indicated that the μDMFC stack with the serial Flow Path design exhibited better performance than that utilized the parallel Flow Path due to uniform mass transfer of methanol as a result of the use of the serial Flow Path. Such a μDMFC stack generates a peak output power of ca. 187 mW, corresponding to an average power density of ca. 21.7 mWcm-2, and exhibits a steady-state power output for more than 100 h. Copyright © 2011 John Wiley & Sons, Ltd.

  • A silicon‐based micro direct methanol fuel cell stack with a serial Flow Path design
    International Journal of Energy Research, 2011
    Co-Authors: Jianyu Cao, Zhidong Chen, Wenchang Wang, Qinghong Huang, Zhiqing Zou
    Abstract:

    SUMMARY A 6-cell silicon-based micro direct methanol fuel cell (μDMFC) stack utilized the serial Flow Path design was developed. The effect of the structure of Flow Path on the performance of the stack was investigated using polarization characterization and electrochemical impedance analysis. Further, the voltage distribution for individual cells under different current density was discussed. The results indicated that the μDMFC stack with the serial Flow Path design exhibited better performance than that utilized the parallel Flow Path due to uniform mass transfer of methanol as a result of the use of the serial Flow Path. Such a μDMFC stack generates a peak output power of ca. 187 mW, corresponding to an average power density of ca. 21.7 mWcm-2, and exhibits a steady-state power output for more than 100 h. Copyright © 2011 John Wiley & Sons, Ltd.

Zhidong Chen - One of the best experts on this subject based on the ideXlab platform.

  • a silicon based micro direct methanol fuel cell stack with a serial Flow Path design
    International Journal of Energy Research, 2013
    Co-Authors: Jianyu Cao, Zhidong Chen, Wenchang Wang, Qinghong Huang, Zhiqing Zou
    Abstract:

    SUMMARY A 6-cell silicon-based micro direct methanol fuel cell (μDMFC) stack utilized the serial Flow Path design was developed. The effect of the structure of Flow Path on the performance of the stack was investigated using polarization characterization and electrochemical impedance analysis. Further, the voltage distribution for individual cells under different current density was discussed. The results indicated that the μDMFC stack with the serial Flow Path design exhibited better performance than that utilized the parallel Flow Path due to uniform mass transfer of methanol as a result of the use of the serial Flow Path. Such a μDMFC stack generates a peak output power of ca. 187 mW, corresponding to an average power density of ca. 21.7 mWcm-2, and exhibits a steady-state power output for more than 100 h. Copyright © 2011 John Wiley & Sons, Ltd.

  • A silicon‐based micro direct methanol fuel cell stack with a serial Flow Path design
    International Journal of Energy Research, 2011
    Co-Authors: Jianyu Cao, Zhidong Chen, Wenchang Wang, Qinghong Huang, Zhiqing Zou
    Abstract:

    SUMMARY A 6-cell silicon-based micro direct methanol fuel cell (μDMFC) stack utilized the serial Flow Path design was developed. The effect of the structure of Flow Path on the performance of the stack was investigated using polarization characterization and electrochemical impedance analysis. Further, the voltage distribution for individual cells under different current density was discussed. The results indicated that the μDMFC stack with the serial Flow Path design exhibited better performance than that utilized the parallel Flow Path due to uniform mass transfer of methanol as a result of the use of the serial Flow Path. Such a μDMFC stack generates a peak output power of ca. 187 mW, corresponding to an average power density of ca. 21.7 mWcm-2, and exhibits a steady-state power output for more than 100 h. Copyright © 2011 John Wiley & Sons, Ltd.

Wenchang Wang - One of the best experts on this subject based on the ideXlab platform.

  • a silicon based micro direct methanol fuel cell stack with a serial Flow Path design
    International Journal of Energy Research, 2013
    Co-Authors: Jianyu Cao, Zhidong Chen, Wenchang Wang, Qinghong Huang, Zhiqing Zou
    Abstract:

    SUMMARY A 6-cell silicon-based micro direct methanol fuel cell (μDMFC) stack utilized the serial Flow Path design was developed. The effect of the structure of Flow Path on the performance of the stack was investigated using polarization characterization and electrochemical impedance analysis. Further, the voltage distribution for individual cells under different current density was discussed. The results indicated that the μDMFC stack with the serial Flow Path design exhibited better performance than that utilized the parallel Flow Path due to uniform mass transfer of methanol as a result of the use of the serial Flow Path. Such a μDMFC stack generates a peak output power of ca. 187 mW, corresponding to an average power density of ca. 21.7 mWcm-2, and exhibits a steady-state power output for more than 100 h. Copyright © 2011 John Wiley & Sons, Ltd.

  • A silicon‐based micro direct methanol fuel cell stack with a serial Flow Path design
    International Journal of Energy Research, 2011
    Co-Authors: Jianyu Cao, Zhidong Chen, Wenchang Wang, Qinghong Huang, Zhiqing Zou
    Abstract:

    SUMMARY A 6-cell silicon-based micro direct methanol fuel cell (μDMFC) stack utilized the serial Flow Path design was developed. The effect of the structure of Flow Path on the performance of the stack was investigated using polarization characterization and electrochemical impedance analysis. Further, the voltage distribution for individual cells under different current density was discussed. The results indicated that the μDMFC stack with the serial Flow Path design exhibited better performance than that utilized the parallel Flow Path due to uniform mass transfer of methanol as a result of the use of the serial Flow Path. Such a μDMFC stack generates a peak output power of ca. 187 mW, corresponding to an average power density of ca. 21.7 mWcm-2, and exhibits a steady-state power output for more than 100 h. Copyright © 2011 John Wiley & Sons, Ltd.

Qinghong Huang - One of the best experts on this subject based on the ideXlab platform.

  • a silicon based micro direct methanol fuel cell stack with a serial Flow Path design
    International Journal of Energy Research, 2013
    Co-Authors: Jianyu Cao, Zhidong Chen, Wenchang Wang, Qinghong Huang, Zhiqing Zou
    Abstract:

    SUMMARY A 6-cell silicon-based micro direct methanol fuel cell (μDMFC) stack utilized the serial Flow Path design was developed. The effect of the structure of Flow Path on the performance of the stack was investigated using polarization characterization and electrochemical impedance analysis. Further, the voltage distribution for individual cells under different current density was discussed. The results indicated that the μDMFC stack with the serial Flow Path design exhibited better performance than that utilized the parallel Flow Path due to uniform mass transfer of methanol as a result of the use of the serial Flow Path. Such a μDMFC stack generates a peak output power of ca. 187 mW, corresponding to an average power density of ca. 21.7 mWcm-2, and exhibits a steady-state power output for more than 100 h. Copyright © 2011 John Wiley & Sons, Ltd.

  • A silicon‐based micro direct methanol fuel cell stack with a serial Flow Path design
    International Journal of Energy Research, 2011
    Co-Authors: Jianyu Cao, Zhidong Chen, Wenchang Wang, Qinghong Huang, Zhiqing Zou
    Abstract:

    SUMMARY A 6-cell silicon-based micro direct methanol fuel cell (μDMFC) stack utilized the serial Flow Path design was developed. The effect of the structure of Flow Path on the performance of the stack was investigated using polarization characterization and electrochemical impedance analysis. Further, the voltage distribution for individual cells under different current density was discussed. The results indicated that the μDMFC stack with the serial Flow Path design exhibited better performance than that utilized the parallel Flow Path due to uniform mass transfer of methanol as a result of the use of the serial Flow Path. Such a μDMFC stack generates a peak output power of ca. 187 mW, corresponding to an average power density of ca. 21.7 mWcm-2, and exhibits a steady-state power output for more than 100 h. Copyright © 2011 John Wiley & Sons, Ltd.