Search Results - "VOSS, P. B."

Refine Results
  1. 1

    Black carbon over Mexico: the effect of atmospheric transport on mixing state, mass absorption cross-section, and BC/CO ratios by Subramanian, R., Kok, G. L., Baumgardner, D., Clarke, A., Shinozuka, Y., Campos, T. L., Heizer, C. G., Stephens, B. B., de Foy, B., Voss, P. B., Zaveri, R. A.

    Published in Atmospheric chemistry and physics (13-01-2010)
    “…A single particle soot photometer (SP2) was operated on the NCAR C-130 during the MIRAGE campaign (part of MILAGRO), sampling black carbon (BC) over Mexico…”
    Get full text
    Journal Article
  2. 2
  3. 3
  4. 4
  5. 5

    An examination of the inorganic chlorine budget in the lower stratosphere by Bonne, G. P., Stimpfle, R. M., Cohen, R. C., Voss, P. B., Perkins, K. K., Anderson, J. G., Salawitch, R. J., Elkins, J. W., Dutton, G. S., Jucks, K. W.

    Published in Journal of Geophysical Research (27-01-2000)
    “…We use the first simultaneous in situ measurements of ClONO2, ClO, and HCl acquired using the NASA ER-2 aircraft during the Photochemistry of Ozone Loss in the…”
    Get full text
    Journal Article
  6. 6
  7. 7

    Inorganic chlorine partitioning in the summer lower stratosphere: Modeled and measured [ClONO2]/[HCl] during POLARIS by Voss, P. B., Stimpfle, R. M., Cohen, R. C., Hanisco, T. F., Bonne, G. P., Perkins, K. K., Lanzendorf, E. J., Anderson, J. G., Salawitch, R. J.

    Published in Journal of Geophysical Research (27-01-2001)
    “…We examine inorganic chlorine (Cly) partitioning in the summer lower stratosphere using in situ ER-2 aircraft observations made during the Photochemistry of…”
    Get full text
    Journal Article
  8. 8

    The budget and partitioning of stratospheric chlorine during the 1997 Arctic summer by Sen, B., Osterman, G. B., Salawitch, R. J., Toon, G. C., Marigitan, J. J., Blavier, J.-F., Chang, A. Y., May, R. D., Webster, C. R., Stimpfle, R. M.

    Published in Journal of Geophysical Research (20-11-1999)
    “…Volume mixing ratio profiles of HCl, HOCl, ClNO3, CH3Cl, CFC-12, and CFC-11, CCl4, HCFC-22, and CFC-113 were measured simultaneously from 9 to 38 km by the Jet…”
    Get full text
    Journal Article
  9. 9

    Consequences of incongruency in diurnally varying resources for seedlings of Rumex crispus (Polygonaceae) by Cavender-Bares, J.M. (Harvard University, Cambridge, MA.), Voss, P.B, Bazzaz, F.A

    Published in American journal of botany (01-09-1998)
    “…The incongruency of diurnally varying resources essential to plants may detrimentally affect plants early in their development as indicated by reduced water…”
    Get full text
    Journal Article
  10. 10

    The coupling of ClONO2, ClO, and NO2 in the lower stratosphere from in situ observations using the NASA ER-2 aircraft by Stimpfle, R. E., Cohen, R. C., Bonne, G. P., Voss, P. B., Perkins, K. K., Koch, L. C., Anderson, J. G., Salawitch, R. J., Gao, R. S.

    Published in Journal of Geophysical Research (20-11-1999)
    “…The first in situ measurements of ClONO2 in the lower stratosphere, acquired using the NASA ER-2 aircraft during the Polar Ozone Loss in the Arctic Region in…”
    Get full text
    Journal Article
  11. 11

    Controlled meteorological (CMET) free balloon profiling of the Arctic atmospheric boundary layer around Spitsbergen compared to ERA-Interim and Arctic System Reanalyses by Roberts, Tjarda J, Dütsch, Marina, Hole, Lars R, Voss, Paul B

    Published in Atmospheric chemistry and physics (30-09-2016)
    “…Observations from CMET (Controlled Meteorological) balloons are analysed to provide insights into tropospheric meteorological conditions (temperature,…”
    Get full text
    Journal Article
  12. 12
  13. 13
  14. 14

    Consequences of incongruency in diurnally varying resources for seedings of Rumex crispus (Polygonaceae) by Cavender-Bares, J M, Voss, P B, Bazzaz, F A

    Published in American journal of botany (01-09-1998)
    “…The incongruency of diurnally varying resources essential to plants may detrimentally affect plants early in their development as indicated by reduced water…”
    Get full text
    Journal Article
  15. 15

    Quantitative constraints on the atmospheric chemistry of nitrogen oxides - An analysis along chemical coordinates by Cohen, R C, Perkins, K K, Koch, L C, Stimpfle, R M, Wennberg, P O, Hanisco, T F, Lanzendorf, E J, Bonne, G P, Voss, P B, Salawitch, R J

    Published in Journal of Geophysical Research (16-10-2000)
    “…In situ observations of NO2, NO, NO(y), ClONO2, OH, O3, aerosol surface area, spectrally resolved solar radiation, pressure, and temperature obtained from the…”
    Get full text
    Journal Article
  16. 16
  17. 17

    The coupling of ClONO2, ClO, and NO2 in the lower stratosphere from in situ observations using the NASA ER-2 aircraft by Stimpfle, R M, Cohen, R C, Bonne, G P, Voss, P B, Perkins, K K, Koch, L C, Anderson, J G, Salawitch, R J, Lloyd, S A, Gao, R S

    Published in Journal of Geophysical Research (20-11-1999)
    “…The first in situ measurements of ClONO2 in the lower stratosphere, acquired using the NASA ER-2 aircraft during the Polar Ozone Loss in the Arctic Region in…”
    Get full text
    Journal Article
  18. 18

    The coupling of ClONO 2 , ClO, and NO 2 in the lower stratosphere from in situ observations using the NASA ER‐2 aircraft by Stimpfle, R. M., Cohen, R. C., Bonne, G. P., Voss, P. B., Perkins, K. K., Koch, L. C., Anderson, J. G., Salawitch, R. J., Lloyd, S. A., Gao, R. S., Del Negro, L. A., Keim, E. R., Bui, T. P.

    “…The first in situ measurements of ClONO 2 in the lower stratosphere, acquired using the NASA ER‐2 aircraft during the Polar Ozone Loss in the Arctic Region in…”
    Get full text
    Journal Article
  19. 19
  20. 20

    The coupling of ClONO sub(2) , ClO, and NO sub(2) in the lower stratosphere from in situ observations using the NASA ER-2 aircraft by Stimpfle, R M, Cohen, R C, Bonne, G P, Voss, P B, Perkins, K K, Koch, L C, Anderson, J G, Salawitch, R J, Lloyd, SA, Gao, R S, Del Negro, LA, Keim, E R, Bui, T P

    “…The first in situ measurements of ClONO sub(2) in the lower stratosphere, acquired using the NASA ER-2 aircraft during the Polar Ozone Loss in the Arctic…”
    Get full text
    Journal Article