The Experts below are selected from a list of 42 Experts worldwide ranked by ideXlab platform

Wenli Zhang - One of the best experts on this subject based on the ideXlab platform.

  • effect of polyvinyl alcohol nano Carbon Colloid on the electrochemical performance of negative plates of lead acid battery
    Journal of Electroanalytical Chemistry, 2019
    Co-Authors: Can Wang, Wenli Zhang
    Abstract:

    Abstract Polyvinyl alcohol/nano-Carbon Colloid (PCC) was prepared through a simple physical mixture process. Both fully charge-discharge and insufficient charge tests were carried out to demonstrate the positive effects of PCC on the electrical storage capability of the negative electrode of lead acid battery. Cyclic voltammetry, steady polarization and electrochemical impedance spectroscopy were used to characterize the influences of PCC on the electrochemical behaviors of negative electrode in the lead acid battery. Experiment results demonstrate that PCC has positive effect on inhibiting PbSO4 growth and increasing the HER overpotential, thus the lead acid battery with PCC shows the enhanced charge acceptance and stable discharge capacities under insufficient charge test. This paper opens a new way for enhancing the performance of lead acid battery without changing the traditional structure and design of lead acid battery.

  • Effect of polyvinyl alcohol/nano-Carbon Colloid on the electrochemical performance of negative plates of lead acid battery
    Journal of Electroanalytical Chemistry, 2018
    Co-Authors: Can Wang, Wenli Zhang
    Abstract:

    Abstract Polyvinyl alcohol/nano-Carbon Colloid (PCC) was prepared through a simple physical mixture process. Both fully charge-discharge and insufficient charge tests were carried out to demonstrate the positive effects of PCC on the electrical storage capability of the negative electrode of lead acid battery. Cyclic voltammetry, steady polarization and electrochemical impedance spectroscopy were used to characterize the influences of PCC on the electrochemical behaviors of negative electrode in the lead acid battery. Experiment results demonstrate that PCC has positive effect on inhibiting PbSO4 growth and increasing the HER overpotential, thus the lead acid battery with PCC shows the enhanced charge acceptance and stable discharge capacities under insufficient charge test. This paper opens a new way for enhancing the performance of lead acid battery without changing the traditional structure and design of lead acid battery.

Sascha E Oswald - One of the best experts on this subject based on the ideXlab platform.

  • transport of Carbon Colloid supported nanoscale zero valent iron in saturated porous media
    Journal of Contaminant Hydrology, 2014
    Co-Authors: Jan Busch, Tobias Meisner, Annegret Potthoff, Sascha E Oswald
    Abstract:

    Abstract Injection of nanoscale zero-valent iron (nZVI) has recently gained great interest as emerging technology for in-situ remediation of chlorinated organic compounds from groundwater systems. Zero-valent iron (ZVI) is able to reduce organic compounds and to render it to less harmful substances. The use of nanoscale particles instead of granular or microscale particles can increase dechlorination rates by orders of magnitude due to its high surface area. However, classical nZVI appears to be hampered in its environmental application by its limited mobility. One approach is Colloid supported transport of nZVI, where the nZVI gets transported by a mobile Colloid. In this study transport properties of activated Carbon Colloid supported nZVI (c-nZVI; d 50  = 2.4 μm) are investigated in column tests using columns of 40 cm length, which were filled with porous media. A suspension was pumped through the column under different physicochemical conditions (addition of a polyanionic stabilizer and changes in pH and ionic strength). Highest observed breakthrough was 62% of the injected concentration in glass beads with addition of stabilizer. Addition of mono- and bivalent salt, e.g. more than 0.5 mM/L CaCl 2 , can decrease mobility and changes in pH to values below six can inhibit mobility at all. Measurements of Colloid sizes and zeta potentials show changes in the mean particle size by a factor of ten and an increase of zeta potential from − 62 mV to − 80 mV during the transport experiment. However, results suggest potential applicability of c-nZVI under field conditions.

  • investigations on mobility of Carbon Colloid supported nanoscale zero valent iron nzvi in a column experiment and a laboratory 2d aquifer test system
    Environmental Science and Pollution Research, 2014
    Co-Authors: Jan Busch, Tobias Meisner, Annegret Potthoff, Sascha E Oswald
    Abstract:

    Nanoscale zero-valent iron (nZVI) has recently gained great interest in the scientific community as in situ reagent for installation of permeable reactive barriers in aquifer systems, since nZVI is highly reactive with chlorinated compounds and may render them to harmless substances. However, nZVI has a high tendency to agglomerate and sediment; therefore it shows very limited transport ranges. One new approach to overcome the limited transport of nZVI in porous media is using a suited carrier Colloid. In this study we tested mobility of a Carbon Colloid supported nZVI particle “Carbo-Iron Colloids” (CIC) with a mean size of 0.63 μm in a column experiment of 40 cm length and an experiment in a two-dimensional (2D) aquifer test system with dimensions of 110 × 40 × 5 cm. Results show a breakthrough maximum of 82 % of the input concentration in the column experiment and 58 % in the 2D-aquifer test system. Detected residuals in porous media suggest a strong particle deposition in the first centimeters and few depositions in the porous media in the further travel path. Overall, this suggests a high mobility in porous media which might be a significant enhancement compared to bare or polyanionic stabilized nZVI.

Jan Busch - One of the best experts on this subject based on the ideXlab platform.

  • transport of Carbon Colloid supported nanoscale zero valent iron in saturated porous media
    Journal of Contaminant Hydrology, 2014
    Co-Authors: Jan Busch, Tobias Meisner, Annegret Potthoff, Sascha E Oswald
    Abstract:

    Abstract Injection of nanoscale zero-valent iron (nZVI) has recently gained great interest as emerging technology for in-situ remediation of chlorinated organic compounds from groundwater systems. Zero-valent iron (ZVI) is able to reduce organic compounds and to render it to less harmful substances. The use of nanoscale particles instead of granular or microscale particles can increase dechlorination rates by orders of magnitude due to its high surface area. However, classical nZVI appears to be hampered in its environmental application by its limited mobility. One approach is Colloid supported transport of nZVI, where the nZVI gets transported by a mobile Colloid. In this study transport properties of activated Carbon Colloid supported nZVI (c-nZVI; d 50  = 2.4 μm) are investigated in column tests using columns of 40 cm length, which were filled with porous media. A suspension was pumped through the column under different physicochemical conditions (addition of a polyanionic stabilizer and changes in pH and ionic strength). Highest observed breakthrough was 62% of the injected concentration in glass beads with addition of stabilizer. Addition of mono- and bivalent salt, e.g. more than 0.5 mM/L CaCl 2 , can decrease mobility and changes in pH to values below six can inhibit mobility at all. Measurements of Colloid sizes and zeta potentials show changes in the mean particle size by a factor of ten and an increase of zeta potential from − 62 mV to − 80 mV during the transport experiment. However, results suggest potential applicability of c-nZVI under field conditions.

  • investigations on mobility of Carbon Colloid supported nanoscale zero valent iron nzvi in a column experiment and a laboratory 2d aquifer test system
    Environmental Science and Pollution Research, 2014
    Co-Authors: Jan Busch, Tobias Meisner, Annegret Potthoff, Sascha E Oswald
    Abstract:

    Nanoscale zero-valent iron (nZVI) has recently gained great interest in the scientific community as in situ reagent for installation of permeable reactive barriers in aquifer systems, since nZVI is highly reactive with chlorinated compounds and may render them to harmless substances. However, nZVI has a high tendency to agglomerate and sediment; therefore it shows very limited transport ranges. One new approach to overcome the limited transport of nZVI in porous media is using a suited carrier Colloid. In this study we tested mobility of a Carbon Colloid supported nZVI particle “Carbo-Iron Colloids” (CIC) with a mean size of 0.63 μm in a column experiment of 40 cm length and an experiment in a two-dimensional (2D) aquifer test system with dimensions of 110 × 40 × 5 cm. Results show a breakthrough maximum of 82 % of the input concentration in the column experiment and 58 % in the 2D-aquifer test system. Detected residuals in porous media suggest a strong particle deposition in the first centimeters and few depositions in the porous media in the further travel path. Overall, this suggests a high mobility in porous media which might be a significant enhancement compared to bare or polyanionic stabilized nZVI.

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

  • effect of polyvinyl alcohol nano Carbon Colloid on the electrochemical performance of negative plates of lead acid battery
    Journal of Electroanalytical Chemistry, 2019
    Co-Authors: Can Wang, Wenli Zhang
    Abstract:

    Abstract Polyvinyl alcohol/nano-Carbon Colloid (PCC) was prepared through a simple physical mixture process. Both fully charge-discharge and insufficient charge tests were carried out to demonstrate the positive effects of PCC on the electrical storage capability of the negative electrode of lead acid battery. Cyclic voltammetry, steady polarization and electrochemical impedance spectroscopy were used to characterize the influences of PCC on the electrochemical behaviors of negative electrode in the lead acid battery. Experiment results demonstrate that PCC has positive effect on inhibiting PbSO4 growth and increasing the HER overpotential, thus the lead acid battery with PCC shows the enhanced charge acceptance and stable discharge capacities under insufficient charge test. This paper opens a new way for enhancing the performance of lead acid battery without changing the traditional structure and design of lead acid battery.

  • Effect of polyvinyl alcohol/nano-Carbon Colloid on the electrochemical performance of negative plates of lead acid battery
    Journal of Electroanalytical Chemistry, 2018
    Co-Authors: Can Wang, Wenli Zhang
    Abstract:

    Abstract Polyvinyl alcohol/nano-Carbon Colloid (PCC) was prepared through a simple physical mixture process. Both fully charge-discharge and insufficient charge tests were carried out to demonstrate the positive effects of PCC on the electrical storage capability of the negative electrode of lead acid battery. Cyclic voltammetry, steady polarization and electrochemical impedance spectroscopy were used to characterize the influences of PCC on the electrochemical behaviors of negative electrode in the lead acid battery. Experiment results demonstrate that PCC has positive effect on inhibiting PbSO4 growth and increasing the HER overpotential, thus the lead acid battery with PCC shows the enhanced charge acceptance and stable discharge capacities under insufficient charge test. This paper opens a new way for enhancing the performance of lead acid battery without changing the traditional structure and design of lead acid battery.

Annegret Potthoff - One of the best experts on this subject based on the ideXlab platform.

  • transport of Carbon Colloid supported nanoscale zero valent iron in saturated porous media
    Journal of Contaminant Hydrology, 2014
    Co-Authors: Jan Busch, Tobias Meisner, Annegret Potthoff, Sascha E Oswald
    Abstract:

    Abstract Injection of nanoscale zero-valent iron (nZVI) has recently gained great interest as emerging technology for in-situ remediation of chlorinated organic compounds from groundwater systems. Zero-valent iron (ZVI) is able to reduce organic compounds and to render it to less harmful substances. The use of nanoscale particles instead of granular or microscale particles can increase dechlorination rates by orders of magnitude due to its high surface area. However, classical nZVI appears to be hampered in its environmental application by its limited mobility. One approach is Colloid supported transport of nZVI, where the nZVI gets transported by a mobile Colloid. In this study transport properties of activated Carbon Colloid supported nZVI (c-nZVI; d 50  = 2.4 μm) are investigated in column tests using columns of 40 cm length, which were filled with porous media. A suspension was pumped through the column under different physicochemical conditions (addition of a polyanionic stabilizer and changes in pH and ionic strength). Highest observed breakthrough was 62% of the injected concentration in glass beads with addition of stabilizer. Addition of mono- and bivalent salt, e.g. more than 0.5 mM/L CaCl 2 , can decrease mobility and changes in pH to values below six can inhibit mobility at all. Measurements of Colloid sizes and zeta potentials show changes in the mean particle size by a factor of ten and an increase of zeta potential from − 62 mV to − 80 mV during the transport experiment. However, results suggest potential applicability of c-nZVI under field conditions.

  • investigations on mobility of Carbon Colloid supported nanoscale zero valent iron nzvi in a column experiment and a laboratory 2d aquifer test system
    Environmental Science and Pollution Research, 2014
    Co-Authors: Jan Busch, Tobias Meisner, Annegret Potthoff, Sascha E Oswald
    Abstract:

    Nanoscale zero-valent iron (nZVI) has recently gained great interest in the scientific community as in situ reagent for installation of permeable reactive barriers in aquifer systems, since nZVI is highly reactive with chlorinated compounds and may render them to harmless substances. However, nZVI has a high tendency to agglomerate and sediment; therefore it shows very limited transport ranges. One new approach to overcome the limited transport of nZVI in porous media is using a suited carrier Colloid. In this study we tested mobility of a Carbon Colloid supported nZVI particle “Carbo-Iron Colloids” (CIC) with a mean size of 0.63 μm in a column experiment of 40 cm length and an experiment in a two-dimensional (2D) aquifer test system with dimensions of 110 × 40 × 5 cm. Results show a breakthrough maximum of 82 % of the input concentration in the column experiment and 58 % in the 2D-aquifer test system. Detected residuals in porous media suggest a strong particle deposition in the first centimeters and few depositions in the porous media in the further travel path. Overall, this suggests a high mobility in porous media which might be a significant enhancement compared to bare or polyanionic stabilized nZVI.