Assessment of Trends and Uncertainties in the Atmospheric Boundary Layer Height Estimated Using Radiosounding Observations over Europe
Abstract
:1. Introduction
2. Datasets
2.1. Integrated Global Radiosounding Archive (IGRA)
2.2. ERA5
2.3. Caveats
3. Methodology
4. Results
4.1. Autocorrelation and Residuals
4.2. Probability Density Functions
4.3. Decadal Trends
4.4. Effect of Data Completeness and Sampling on the Trend Uncertainty
5. Conclusions
- (a)
- Discrepancies between the two BLH retrieval algorithms, used for IGRA and ERA5, are in the order of 800 m during the night and 600 m for the day and are consistent with the results reported in literature.
- (b)
- Comparisons between the BLH trend estimates from IGRA and ERA5 show a good overall consistency with larger discrepancies for the daytime data when ERA5 provides a less homogenous estimation of the CBL in the investigated domain.
- (c)
- The comparison of mean zonal anomalies for all the stations (selected with a data completeness of 75%) shows a difference between the BLH trend estimates for IGRA and ERA which is larger during the day, ranging within −4 m per decade for IGRA and 5 m for ERA5. The anomalies show a larger variability in the 80 s and the 90 s, while variability is lower in the most recent decade. The IGRA dataset shows also a behavior consistent with the solar cycle minimum in the period 1992–2004, which is not observed in ERA5.
- (d)
- Investigation of temporal and spatial sampling uncertainties shows that uncertainties due to the missing data in the time series (i.e., time gaps) tend to be systematic, while uncertainties due the spatial completeness/coverage are random. To minimize sampling uncertainties in the BLH trend analysis based on IGRA data it is recommended to use time series with at least 75% data completeness; below this level of data completeness, uncertainty can increase significantly.
- (e)
- The comparison between the BLH estimates in Lindenberg obtained using the data processed by GRUAN and provided to IGRA, using manufacturer software, demonstrates how parametric uncertainties due to the vertical resolution have a relevant effect on the magnitude and even the sign of the BLH trend. An enhanced quantification of this sampling uncertainty contribution will be provided in forthcoming papers.
Author Contributions
Funding
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Appendix A
ID Station | Latitude | Longitude | Height | Country_Code | Country_Name | Start_Time | Stop_Time | Total_Launches_Day | Total_Launches_Night |
---|---|---|---|---|---|---|---|---|---|
AGM00060360 | 36.833 | 7.817 | 4 | DZ | Algeria | 02 January 1998 | 16 May 2008 | 0 | 0 |
AGM00060390 | 36.6833 | 3.2167 | 25 | DZ | Algeria | 01 January 1978 | 12 April 2020 | 0.62 | 0.64 |
AGM00060419 | 36.283 | 6.617 | 694 | DZ | Algeria | 07 February 1999 | 26 March 2003 | 0 | 0 |
AGM00060490 | 35.633 | −0.6 | 90 | DZ | Algeria | 18 March 1979 | 14 February 2005 | 0 | 0 |
AGM00060511 | 35.35 | 1.467 | 989 | DZ | Algeria | 01 October 1987 | 31 December 1988 | 0.6 | 0 |
AGM00060525 | 34.8 | 5.733 | 87 | DZ | Algeria | 02 January 2000 | 31 December 2002 | 0.21 | 0 |
AUM00011035 | 48.2486 | 16.3564 | 200 | AT | Austria | 01 January 1978 | 01 October 2019 | 0.98 | 0.98 |
AUM00011120 | 47.2603 | 11.3439 | 581 | AT | Austria | 23 June 1998 | 01 October 2019 | 0.02 | 0.37 |
AUM00011240 | 46.9931 | 15.4392 | 340 | AT | Austria | 02 January 1987 | 01 October 2019 | 0 | 0.01 |
BEM00006400 | 51.083 | 2.65 | 9 | BE | Belgium | 16 July 1999 | 11 September 2002 | 0.01 | 0 |
BEM00006447 | 50.7969 | 4.3581 | 99 | BE | Belgium | 01 January 1978 | 21 December 2015 | 0.49 | 0.42 |
BEM00006458 | 50.7456 | 4.7633 | 112.8 | BE | Belgium | 04 January 2005 | 13 April 2020 | 0.06 | 0.91 |
BEM00006476 | 50.033 | 5.4 | 558 | BE | Belgium | 06 January 1978 | 13 May 2006 | 0.39 | 0.38 |
BEM00006496 | 50.4822 | 6.1814 | 565.1 | BE | Belgium | 17 February 1999 | 02 December 2009 | 0.03 | 0 |
BOM00026850 | 53.933 | 27.633 | 231 | BY | Belarus | 01 January 1978 | 30 March 1998 | 0.75 | 0.9 |
BUM00015614 | 42.65 | 23.3833 | 595 | BG | Bulgaria | 01 January 1978 | 12 April 2020 | 0.92 | 0.45 |
BUM00015730 | 41.65 | 25.367 | 331 | BG | Bulgaria | 01 January 1978 | 24 April 1991 | 0.75 | 0.61 |
CYM00017601 | 34.583 | 32.983 | 23 | CY | Cyprus | 02 January 1978 | 12 October 1996 | 0 | 0 |
CYM00017607 | 35.1408 | 33.3964 | 162 | CY | Cyprus | 01 November 1981 | 27 June 2019 | 0.64 | 0 |
CYM00017609 | 34.8733 | 33.6172 | 9.8 | CY | Cyprus | 11 November 2003 | 21 June 2006 | 0 | 0 |
EIM00003953 | 51.9381 | −10.2433 | 23.9 | IE | Ireland | 01 January 1978 | 12 April 2020 | 0.99 | 0.99 |
EZM00011520 | 50.0078 | 14.4469 | 302 | CZ | Czech Republic | 01 January 1978 | 12 April 2020 | 0.74 | 0.73 |
EZM00011722 | 49.0833 | 16.6167 | 195 | CZ | Czech Republic | 27 November 1996 | 17 December 2003 | 0.55 | 0.53 |
EZM00011747 | 49.4525 | 17.1347 | 214.8 | CZ | Czech Republic | 28 November 2003 | 12 April 2020 | 0.92 | 0.92 |
FRM00007110 | 48.4442 | −4.4119 | 99 | FR | France | 01 January 1978 | 12 April 2020 | 0.83 | 0.75 |
FRM00007130 | 48.067 | −1.733 | 37 | FR | France | 24 January 1994 | 14 December 1996 | 0.01 | 0.01 |
FRM00007145 | 48.7744 | 2.0097 | 167 | FR | France | 01 January 1978 | 12 April 2020 | 0.77 | 0.72 |
FRM00007180 | 48.6833 | 6.2167 | 225 | FR | France | 01 January 1978 | 30 December 2010 | 0.57 | 0.3 |
FRM00007255 | 47.067 | 2.367 | 161 | FR | France | 01 March 1982 | 01 May 1982 | 1 | 0.95 |
FRM00007481 | 45.7264 | 5.0778 | 250 | FR | France | 01 January 1978 | 28 February 2011 | 0.55 | 0.52 |
FRM00007510 | 44.8306 | −0.6914 | 51 | FR | France | 01 January 1978 | 12 April 2020 | 0.71 | 0.69 |
FRM00007630 | 43.633 | 1.367 | 154 | FR | France | 05 May 1979 | 05 October 1984 | 0.03 | 0.03 |
FRM00007645 | 43.8569 | 4.4064 | 60 | FR | France | 01 January 1978 | 12 April 2020 | 0.72 | 0.69 |
FRM00007680 | 43.417 | 6.75 | 6 | FR | France | 01 March 1982 | 01 May 1982 | 0.95 | 0.97 |
FRM00007690 | 43.65 | 7.2 | 4 | FR | France | 09 September 1999 | 16 November 1999 | 0.46 | 0.46 |
FRM00007761 | 41.9181 | 8.7928 | 6 | FR | France | 01 January 1978 | 12 April 2020 | 0.73 | 0.69 |
GIM00008495 | 36.15 | −5.35 | 3 | GI | GIBRALTAR | 01 January 1978 | 02 October 2015 | 0.61 | 0.59 |
GMM00010046 | 54.3833 | 10.15 | 32 | DE | Germany | 02 January 1978 | 30 September 1994 | 0.31 | 0.21 |
GMM00010113 | 53.7139 | 7.1525 | 11 | DE | Germany | 20 June 2011 | 12 April 2020 | 0.96 | 0.96 |
GMM00010184 | 54.0978 | 13.4075 | 2 | DE | Germany | 01 January 1978 | 12 April 2020 | 0.71 | 0.7 |
GMM00010200 | 53.3894 | 7.2269 | 0 | DE | Germany | 02 October 1978 | 31 August 2011 | 0.52 | 0.5 |
GMM00010238 | 52.8167 | 9.9333 | 70 | DE | Germany | 02 January 1978 | 13 April 2020 | 0.61 | 0.44 |
GMM00010304 | 52.7333 | 7.3333 | 41.1 | DE | Germany | 02 January 1978 | 20 March 2020 | 0.43 | 0 |
GMM00010307 | 52.4167 | 7.0667 | 81 | DE | Germany | 02 January 1978 | 29 August 1985 | 0.36 | 0.05 |
GMM00010338 | 52.45 | 9.7167 | 52 | DE | Germany | 01 January 1978 | 01 June 1997 | 0.58 | 0.57 |
GMM00010384 | 52.4667 | 13.4 | 50 | DE | Germany | 01 January 1978 | 31 December 1993 | 0.68 | 0 |
GMM00010393 | 52.2167 | 14.1167 | 112 | DE | Germany | 01 January 1978 | 12 April 2020 | 0.71 | 0.71 |
GMM00010404 | 51.733 | 6.267 | 43 | DE | Germany | 02 January 1978 | 30 June 1978 | 0.18 | 0.37 |
GMM00010410 | 51.4056 | 6.9686 | 153 | DE | Germany | 01 January 1978 | 12 April 2020 | 0.7 | 0.7 |
GMM00010437 | 51.1333 | 9.2833 | 222 | DE | Germany | 02 January 1978 | 02 November 2007 | 0.19 | 0.26 |
GMM00010468 | 51.55 | 12.0667 | 106 | DE | Germany | 12 September 2000 | 31 August 2006 | 0.68 | 0.71 |
GMM00010486 | 51.1167 | 13.6833 | 249 | DE | Germany | 01 January 1978 | 11 September 2000 | 0.51 | 0.03 |
GMM00010548 | 50.5617 | 10.3772 | 450 | DE | Germany | 01 January 1978 | 12 April 2020 | 0.7 | 0.7 |
GMM00010618 | 49.7 | 7.3333 | 376 | DE | Germany | 02 January 1978 | 13 April 2020 | 0.61 | 0.53 |
GMM00010659 | 49.75 | 10.2 | 160 | DE | Germany | 01 April 1982 | 05 June 1985 | 0.02 | 0.01 |
GMM00010687 | 49.7 | 11.95 | 414 | DE | Germany | 05 January 1978 | 01 July 1992 | 0.06 | 0 |
GMM00010739 | 48.8333 | 9.2 | 314 | DE | Germany | 01 January 1978 | 12 April 2020 | 0.7 | 0.69 |
GMM00010771 | 49.4283 | 11.9022 | 417 | DE | Germany | 02 January 1978 | 13 April 2020 | 0.61 | 0.48 |
GMM00010828 | 48.1 | 9.25 | 646 | DE | Germany | 29 March 1995 | 12 October 2007 | 0.05 | 0.19 |
GMM00010868 | 48.2442 | 11.5525 | 484 | DE | Germany | 01 January 1978 | 12 April 2020 | 0.69 | 0.69 |
GMM00010921 | 47.9833 | 8.9 | 807 | DE | Germany | 02 January 1978 | 24 June 1994 | 0.31 | 0.33 |
GMM00010954 | 47.8364 | 10.8722 | 756 | DE | Germany | 28 May 2004 | 20 March 2020 | 0.48 | 0 |
GMM00010962 | 47.8019 | 11.0119 | 977 | DE | Germany | 01 April 1982 | 10 April 2020 | 0 | 0 |
GRM00016716 | 37.8897 | 23.7417 | 43.1 | GR | Greece | 01 January 1978 | 12 April 2020 | 0.82 | 0.76 |
HRM00014430 | 44.0969 | 15.3403 | 78 | HR | Croatia | 01 March 1982 | 12 April 2020 | 0.41 | 0.41 |
HUM00012812 | 47.267 | 16.633 | 221 | HU | Hungary | 01 March 1982 | 30 April 1982 | 0.8 | 0.75 |
HUM00012843 | 47.4333 | 19.1833 | 138 | HU | Hungary | 01 January 1978 | 12 April 2020 | 0.65 | 0.69 |
HUM00012982 | 46.25 | 20.1 | 82 | HU | Hungary | 01 January 1978 | 12 April 2020 | 0.38 | 0.69 |
ITM00016037 | 46.0303 | 12.5992 | 113 | IT | Italy | 04 January 2010 | 20 December 2011 | 0.2 | 0.5 |
ITM00016044 | 46.0375 | 13.1883 | 93 | IT | Italy | 01 January 1978 | 16 June 2016 | 0.67 | 0.66 |
ITM00016045 | 45.9806 | 13.0592 | 50 | IT | Italy | 16 June 2016 | 12 April 2020 | 0.99 | 0.99 |
ITM00016080 | 45.4614 | 9.2831 | 104 | IT | Italy | 01 January 1978 | 12 April 2020 | 0.69 | 0.7 |
ITM00016113 | 44.5392 | 7.6125 | 385 | IT | Italy | 28 January 2000 | 12 April 2020 | 0.61 | 0.62 |
ITM00016144 | 44.6539 | 11.6225 | 10 | IT | Italy | 01 May 1986 | 12 April 2020 | 0.26 | 0.56 |
ITM00016242 | 41.8 | 12.233 | 3 | IT | Italy | 01 January 1978 | 30 September 1986 | 0.97 | 0.95 |
ITM00016245 | 41.67 | 12.4508 | 32 | IT | Italy | 01 October 1986 | 12 April 2020 | 0.61 | 0.61 |
ITM00016320 | 40.6603 | 17.9567 | 14.5 | IT | Italy | 01 January 1978 | 12 April 2020 | 0.68 | 0.69 |
ITM00016429 | 37.9142 | 12.4914 | 7.3 | IT | Italy | 01 January 1978 | 12 April 2020 | 0.67 | 0.61 |
ITM00016546 | 39.3461 | 8.9675 | 29 | IT | Italy | 28 February 2012 | 12 April 2020 | 1 | 0.99 |
ITM00016560 | 39.2436 | 9.06 | 4 | IT | Italy | 07 January 1978 | 06 March 2012 | 0.57 | 0.57 |
LHM00026629 | 54.8839 | 23.8358 | 76.1 | LT | Lithuania | 01 January 1978 | 09 September 2014 | 0.45 | 0.74 |
LOM00011952 | 49.0333 | 20.3167 | 703 | SK | Slovakia | 01 January 1978 | 12 April 2020 | 0.77 | 0.77 |
MDM00033815 | 47.017 | 28.867 | 170 | MD | Republic of Moldova | 01 January 1978 | 11 October 2002 | 0.58 | 0.64 |
MKM00013586 | 41.95 | 21.633 | 233 | MK | The former Yugoslav Republic of Macedonia | 08 January 1982 | 27 September 2008 | 0.01 | 0.16 |
MTM00016597 | 35.85 | 14.483 | 91 | MT | Malta | 01 January 1978 | 31 December 1978 | 1 | 0.99 |
NLM00006210 | 52.167 | 4.433 | 1 | NL | Netherlands | 10 May 1994 | 20 November 2002 | 0.05 | 0 |
NLM00006235 | 52.9269 | 4.7811 | 1.2 | NL | Netherlands | 13 September 2000 | 11 October 2014 | 0 | 0 |
NLM00006260 | 52.0989 | 5.1797 | 1.9 | NL | Netherlands | 01 January 1978 | 12 April 2020 | 0.75 | 0.9 |
PLM00012120 | 54.7536 | 17.5347 | 1.8 | PL | Poland | 01 January 1978 | 12 April 2020 | 0.88 | 0.93 |
PLM00012330 | 52.417 | 16.85 | 84 | PL | Poland | 01 January 1978 | 27 March 1992 | 0.9 | 0.92 |
PLM00012374 | 52.4078 | 20.9564 | 94.2 | PL | Poland | 01 January 1978 | 12 April 2020 | 0.98 | 0.98 |
PLM00012425 | 51.1131 | 16.8811 | 119.6 | PL | Poland | 01 January 1978 | 12 April 2020 | 0.66 | 0.95 |
POM00008579 | 38.7667 | −9.1333 | 104 | PT | Portugal | 01 January 1978 | 01 January 2020 | 0.77 | 0.28 |
RIM00013275 | 44.7667 | 20.4167 | 203 | RS | Serbia | 01 January 1978 | 12 April 2020 | 0.56 | 0.81 |
RIM00013388 | 43.3333 | 21.9 | 203 | RS | Serbia | 01 April 2016 | 12 April 2020 | 0.99 | 0.99 |
ROM00015120 | 46.7778 | 23.5714 | 410 | RO | Romania | 01 January 1978 | 24 October 2012 | 0.34 | 0.82 |
ROM00015420 | 44.5106 | 26.0781 | 90 | RO | Romania | 01 January 1978 | 12 April 2020 | 0.73 | 0.92 |
ROM00015480 | 44.217 | 28.633 | 13 | RO | Romania | 01 January 1978 | 08 October 2001 | 0.49 | 0.76 |
RSM00026702 | 54.7264 | 20.5583 | 19 | RU | Russian Federation | 01 January 1978 | 12 April 2020 | 0.51 | 0.62 |
RSM00026781 | 54.75 | 32.0667 | 240 | RU | Russian Federation | 01 January 1978 | 12 April 2020 | 0.8 | 0.92 |
SIM00014015 | 46.0656 | 14.5122 | 299 | SI | Slovenia | 08 March 1996 | 12 April 2020 | 0 | 0.01 |
SPM00008001 | 43.3658 | −8.4214 | 58 | ES | Spain | 01 January 1978 | 12 April 2020 | 0.67 | 0.67 |
SPM00008023 | 43.4911 | −3.8006 | 52 | ES | Spain | 01 October 1986 | 12 April 2020 | 0.62 | 0.57 |
SPM00008160 | 41.6786 | −1.0731 | 252 | ES | Spain | 09 April 1982 | 31 October 2015 | 0.54 | 0.53 |
SPM00008190 | 41.3844 | 2.1181 | 95 | ES | Spain | 14 November 2007 | 12 April 2020 | 0.95 | 0.95 |
SPM00008221 | 40.4653 | −3.5797 | 631 | ES | Spain | 01 January 1978 | 12 April 2020 | 0.7 | 0.7 |
SPM00008301 | 39.55 | 2.617 | 6 | ES | Spain | 06 July 1988 | 17 December 2002 | 0.62 | 0.61 |
SPM00008302 | 39.6058 | 2.7067 | 41 | ES | Spain | 03 January 1978 | 12 April 2020 | 0.56 | 0.56 |
SPM00008430 | 38.0019 | −1.1708 | 61 | ES | Spain | 01 August 1984 | 12 April 2020 | 0.65 | 0.59 |
SZM00006610 | 46.8117 | 6.9425 | 490 | CH | Switzerland | 01 January 1978 | 27 August 2019 | 0.73 | 0.72 |
TSM00060715 | 36.8333 | 10.2333 | 4 | TN | Tunisia | 01 January 1978 | 12 April 2020 | 0.43 | 0.43 |
TSM00060750 | 34.717 | 10.683 | 21 | TN | Tunisia | 23 March 1998 | 23 March 1998 | 0 | 0 |
TUM00017064 | 40.9 | 29.15 | 18 | TR | Turkey | 01 January 1978 | 12 April 2020 | 0.93 | 0.95 |
TUM00017130 | 39.95 | 32.8833 | 891 | TR | Turkey | 01 January 1978 | 11 April 2020 | 0.95 | 0.96 |
TUM00017220 | 38.4333 | 27.1667 | 25 | TR | Turkey | 01 January 1978 | 12 April 2020 | 0.86 | 0.9 |
TUM00017240 | 37.75 | 30.55 | 997 | TR | Turkey | 01 January 1978 | 12 April 2020 | 0.88 | 0.89 |
UKM00003257 | 54.3 | −1.533 | 40 | GB | United Kingdom of Great Britain | 01 May 1990 | 24 December 2000 | 0.01 | 0.02 |
UKM00003322 | 53.55 | −2.9167 | 56 | GB | United Kingdom of Great Britain | 01 January 1978 | 31 March 1996 | 0.61 | 0.6 |
UKM00003354 | 53.0056 | −1.2511 | 117 | GB | United Kingdom of Great Britain | 23 July 1998 | 12 April 2020 | 0.55 | 0.84 |
UKM00003377 | 53.167 | −0.517 | 70 | GB | United Kingdom of Great Britain | 03 July 1989 | 04 July 2005 | 0.01 | 0.02 |
UKM00003414 | 52.8 | −2.667 | 76 | GB | United Kingdom of Great Britain | 08 October 1997 | 25 December 2000 | 0 | 0.22 |
UKM00003496 | 52.6833 | 1.6833 | 13 | GB | United Kingdom of Great Britain | 01 January 1978 | 19 March 2001 | 0.54 | 0.53 |
UKM00003501 | 52.4167 | −4 | 92 | GB | United Kingdom of Great Britain | 19 February 2001 | 19 February 2001 | 0 | 0 |
UKM00003502 | 52.1394 | −4.5711 | 133 | GB | United Kingdom of Great Britain | 03 January 1978 | 23 March 2020 | 0.12 | 0.01 |
UKM00003559 | 52.1039 | −0.4214 | 29 | GB | United Kingdom of Great Britain | 09 October 1996 | 07 April 2020 | 0 | 0 |
UKM00003590 | 52.117 | 0.967 | 87 | GB | United Kingdom of Great Britain | 25 January 1999 | 21 March 2006 | 0.01 | 0.08 |
UKM00003649 | 51.75 | −1.583 | 88 | GB | United Kingdom of Great Britain | 14 July 1992 | 30 July 2005 | 0 | 0.08 |
UKM00003693 | 51.5547 | 0.8269 | 2 | GB | United Kingdom of Great Britain | 03 January 1978 | 20 December 2010 | 0.12 | 0 |
UKM00003715 | 51.4 | −3.35 | 67 | GB | United Kingdom of Great Britain | 01 December 1989 | 20 December 1997 | 0 | 0.05 |
UKM00003743 | 51.2017 | −1.8058 | 132 | GB | United Kingdom of Great Britain | 03 January 1978 | 18 March 2020 | 0.36 | 0 |
UKM00003774 | 51.0833 | −0.2167 | 144 | GB | United Kingdom of Great Britain | 01 January 1978 | 30 September 1992 | 0.76 | 0.75 |
UKM00003808 | 50.2183 | −5.3275 | 87 | GB | United Kingdom of Great Britain | 01 January 1978 | 12 April 2020 | 0.71 | 0.7 |
UKM00003882 | 50.8994 | 0.3169 | 52 | GB | United Kingdom of Great Britain | 01 February 1993 | 12 April 2020 | 0.39 | 0.66 |
UKM00003918 | 54.5 | −6.3333 | 18 | GB | United Kingdom of Great Britain | 25 June 2002 | 11 April 2020 | 0.53 | 0.89 |
UKM00003920 | 54.4833 | −6.1 | 37 | GB | United Kingdom of Great Britain | 01 January 1978 | 24 June 2002 | 0.57 | 0.55 |
UKM00033966 | 45.0464 | 34.5989 | 204.6 | GB | United Kingdom of Great Britain | 01 January 2011 | 30 December 2013 | 0 | 0.45 |
UPM00033317 | 50.1667 | 27.0333 | 277 | UA | Ukraine | 01 January 1978 | 12 April 2020 | 0.31 | 0.64 |
UPM00033345 | 50.4 | 30.5667 | 166 | UA | Ukraine | 01 January 1978 | 12 April 2020 | 0.86 | 0.95 |
UPM00033393 | 49.8167 | 23.95 | 319 | UA | Ukraine | 01 January 1978 | 12 April 2020 | 0.36 | 0.63 |
UPM00033631 | 48.633 | 22.267 | 118 | UA | Ukraine | 01 January 1978 | 31 December 2008 | 0.48 | 0.77 |
UPM00033791 | 48.0333 | 33.2167 | 123 | UA | Ukraine | 01 January 1978 | 12 April 2020 | 0.75 | 0.32 |
UPM00033837 | 46.4333 | 30.7667 | 42 | UA | Ukraine | 01 January 1978 | 12 April 2020 | 0.33 | 0.73 |
UPM00033946 | 44.6833 | 34.1333 | 180 | UA | Ukraine | 01 January 1978 | 04 November 2010 | 0.45 | 0.77 |
References
- Liu, S.; Liang, X.-Z. Observed Diurnal Cycle Climatology of Planetary Boundary Layer Height. J. Clim. 2010, 23, 5790–5809. [Google Scholar] [CrossRef]
- Seibert, P. Review and intercomparison of operational methods for the determination of the mixing height. Atmos. Environ. 2000, 34, 1001–1027. [Google Scholar] [CrossRef]
- Santanello, J.A.; Peters-Lidard, C.D.; Kumar, S.V.; Alonge, C.; Tao, W.-K. A Modeling and Observational Framework for Diagnosing Local Land–Atmosphere Coupling on Diurnal Time Scales. J. Hydrometeorol. 2009, 10, 577–599. [Google Scholar] [CrossRef] [Green Version]
- Driedonks, A.G.M.; Tennekes, H. Entrainment effects in the well-mixed atmospheric boundary layer. Bound.-Layer Meteorol. 1984, 30, 75–105. [Google Scholar] [CrossRef]
- Stull, R.B. An Introduction to Boundary Layer Meteorology; Springer Science and Business Media LLC: Berlin/Heidelberg, Germany, 1988; Volume 13. [Google Scholar]
- Garratt, J. Review: The atmospheric boundary layer. Earth Sci. Rev. 1994, 37, 89–134. [Google Scholar] [CrossRef]
- Salmond, J.A.; McKendry, I.G. A review of turbulence in the very stable nocturnal boundary layer and its implications for air quality. Prog. Phys. Geogr. Earth Environ. 2005, 29, 171–188. [Google Scholar] [CrossRef] [Green Version]
- Basha, G.; Ratnam, M.V. Identification of atmospheric boundary layer height over a tropical station using high-resolution radiosonde refractivity profiles: Comparison with GPS radio occultation measurements. J. Geophys. Res. Space Phys. 2009, 114. [Google Scholar] [CrossRef]
- Seidel, D.J.; Ao, C.O.; Li, K. Estimating climatological planetary boundary layer heights from radiosonde observations: Comparison of methods and uncertainty analysis. J. Geophys. Res. Space Phys. 2010, 115, 16113. [Google Scholar] [CrossRef] [Green Version]
- Available online: www.ecmwf.int/sites/default/files/elibrary/2015/9211-part-iv-physical-processes.pdf (accessed on 24 February 2021).
- Zhang, Y.; Gao, Z.; Li, D.; Li, Y.; Zhang, N.; Zhao, X.; Chen, J. On the computation of planetary boundary-layer height using the bulk Richardson number method. Geosci. Model. Dev. 2014, 7, 2599–2611. [Google Scholar] [CrossRef] [Green Version]
- Dee, D.P.; Uppala, S.M.; Simmons, A.J.; Berrisford, P.; Poli, P.; Kobayashi, S.; Andrae, U.; Balmaseda, M.A.; Balsamo, G.; Bauer, P.; et al. The ERA-Interim reanalysis: Configuration and performance of the data assimilation system. Q. J. R. Meteorol. Soc. 2011, 137, 553–597. [Google Scholar] [CrossRef]
- Von Engeln, A.; Teixeira, J. A Planetary Boundary Layer Height Climatology Derived from ECMWF Reanalysis Data. J. Clim. 2013, 26, 6575–6590. [Google Scholar] [CrossRef]
- Bintanja, R.; Van Der Linden, E.C.; Hazeleger, W. Boundary layer stability and Arctic climate change: A feedback study using EC-Earth. Clim. Dyn. 2012, 39, 2659–2673. [Google Scholar] [CrossRef]
- Weatherhead, E.C.; Stevermer, A.J.; E Schwartz, B. Detecting environmental changes and trends. Phys. Chem. Earth Parts A/B/C 2002, 27, 399–403. [Google Scholar] [CrossRef]
- Durre, I.; Yin, X.; Vose, R.S.; Applequist, S.; Arnfield, J. Enhancing the Data Coverage in the Integrated Global Radiosonde Archive. J. Atmos. Ocean. Technol. 2018, 35, 1753–1770. [Google Scholar] [CrossRef]
- Gash, J.H.C. The atmospheric boundary layer, J. R. Garratt, Cambridge University Press (Cambridge), 1992. No. of pages: xviii + 316. Price: £50.00, US$79.95 (hardback) ISBN 0521380529. Int. J. Clim. 1994, 14, 112–113. [Google Scholar] [CrossRef]
- Summa, D.; Di Girolamo, P.; Stelitano, D.; Cacciani, M. Characterization of the planetary boundary layer height and structure by Raman lidar: Comparison of different approaches. Atmos. Meas. Tech. 2013, 6, 3515–3525. [Google Scholar] [CrossRef] [Green Version]
- Madonna, F. Can reference radiosounding measurements be used to improve historical time series? Il Nuovo Cimento C 2020, 43, 1–10. [Google Scholar] [CrossRef]
- Hersbach, H.; Bell, B.; Berrisford, P.; Hirahara, S.; Horányi, A.; Muñoz-Sabater, J.; Nicolas, J.; Peubey, C.; Radu, R.; Schepers, D.; et al. The ERA5 global reanalysis. Q. J. R. Meteorol. Soc. 2020, 146, 1999–2049. [Google Scholar] [CrossRef]
- Strutz, T. Data Fitting and Uncertainty: A Practical Introduction to Weighted Least Squares and Beyond; Springer: Berlin/Heidelberg, Germany; New York, NY, USA, 2015. [Google Scholar]
- Gilbert, R.O. Statistical Methods for Environmental Pollution Monitoring; Wiley: New York, NY, USA, 1987. [Google Scholar]
- Weatherhead, E.C.; Reinsel, G.C.; Tiao, G.C.; Meng, X.-L.; Choi, D.; Cheang, W.-K.; Keller, T.; DeLuisi, J.; Wuebbles, D.J.; Kerr, J.B.; et al. Factors affecting the detection of trends: Statistical considerations and applications to environmental data. J. Geophys. Res. Space Phys. 1998, 103, 17149–17161. [Google Scholar] [CrossRef]
- Mudelsee, M. Climate Time Series Analysis: Classical Statistical and Bootstrap Methods. In Atmospheric and Oceanographic Sciences Library, 2nd ed.; Springer International Publishing: Cham, Switzerland, 2014. [Google Scholar]
- Barrodale, I.; Roberts, F.D.K. Solution of an overdetermined system of equations in the l 1 norm [F4]. Commun. ACM 1974, 17, 319–320. [Google Scholar] [CrossRef]
- Sy, S.; Madonna, F.; Rosoldi, M.; Tramutola, E.; Gagliardi, S.; Proto, M.; Pappalardo, G. Sensitivity of trends to estimation methods and quantification of subsampling effects in global radiosounding temperature and humidity time series. Int. J. Climatol. 2020, 41. [Google Scholar] [CrossRef]
- Wong, R.K.; Schneider, C.; Jr, P.W.M. Geometric consistency for regression model estimation and testing in climatology and meteorology. Atmos.-Ocean 1989, 27, 508–520. [Google Scholar] [CrossRef]
- Hartmann, D.; Klein Tank, A.; Rusticucci, M.; Alexander, L.; Brönnimann, S.; Charabi, Y.; Dentener, F.; Dlugokencky, E.; Easterling, D.; Kaplan, A.; et al. Observations: Atmosphere and surface supplementary material. In Climate Change 2013: The Physical Science Basis. Contribution of Working Group I to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change; Stocker, T.F., Qin, D., Plattner, G.-K., Tignor, M., Allen, S.K., Boschung, J., Nauels, A., Xia, Y., Bex, V., Midgley, P.M., Eds.; Cambridge University Press: Cambridge, UK; New York, NY, USA, 2013. [Google Scholar]
- Zhang, Y.; Seidel, D.J.; Zhang, S. Trends in Planetary Boundary Layer Height over Europe. J. Clim. 2013, 26, 10071–10076. [Google Scholar] [CrossRef]
- Solomon, S.; Qin, D.; Manning, M.; Marquis, M.; Averyt, K.; Tignor, M.M.B.; Miller, H.L., Jr.; Chen, Z. Climate Change 2007: The Physical Science Basis; IPCC: Geneva, Switzerland, 2007. [Google Scholar]
- Menne, M.J.; Williams, C.N.; Gleason, B.E.; Rennie, J.J.; Lawrimore, J.H. The Global Historical Climatology Network Monthly Temperature Dataset, Version 4. J. Clim. 2018, 31, 9835–9854. [Google Scholar] [CrossRef]
- National Oceanic and Atmospheric Administration; National Centers for Environmental Information. State of the Climate: Global Climate Report for Annual 2019. 2020. Available online: https://www.ncdc.noaa.gov/sotc/global/201913 (accessed on 22 January 2021).
- Dirmeyer, P.A.; Cash, B.A.; Kinter, J.L.; Stan, C.; Jung, T.; Marx, L.; Towers, P.; Wedi, N.; Adams, J.M.; Altshuler, E.L.; et al. Evidence for Enhanced Land–Atmosphere Feedback in a Warming Climate. J. Hydrometeorol. 2012, 13, 981–995. [Google Scholar] [CrossRef] [Green Version]
- Dirmeyer, P.A.; Wang, Z.; Mbuh, M.J.; Norton, H.E. Intensified land surface control on boundary layer growth in a changing climate. Geophys. Res. Lett. 2014, 41, 1290–1294. [Google Scholar] [CrossRef]
- Meehl, G.A.; Stocker, T.F.; Collins, W.D.; Friedlingstein, P.; Gaye, A.T.; Gregory, J.M.; Kitoh, A.; Knutti, R.; Murphy, J.M.; Noda, A.; et al. Global Climate Projections. In Climate Change 2007: The Physical Science Basis; Solomon, S., Qin, D., Manning, M., Chen, Z., Marquis, M., Averyt, K.B., Tignor, M., Miller, H.L., Eds.; Cambridge University Press: Cambridge, UK; New York, NY, USA, 2007; pp. 783–789. [Google Scholar]
- Temmer, M.; Rybak, J.; Bendík, P.; Veronig, A.M.; Vogler, F.L.; Otruba, W.; Pötzi, W.; Hanslmeier, A. Hemispheric sunspot numbers RnRn and RsRs from 1945–2004: Catalogue and N-S asymmetry analysis for solar cycles 18–23. Astron. Astrophys. 2006, 447, 735–743. [Google Scholar] [CrossRef] [Green Version]
- Dirksen, R.J.; A Sommer, M.; Immler, F.J.; Hurst, D.F.; Kivi, R.; Vömel, H. Reference quality upper-air measurements: GRUAN data processing for the Vaisala RS92 radiosonde. Atmos. Meas. Tech. 2014, 7, 4463–4490. [Google Scholar] [CrossRef] [Green Version]
- Iarlori, M.; Madonna, F.; Rizi, V.; Trickl, T.; Amodeo, A. Effective resolution concepts for lidar observations. Atmos. Meas. Tech. 2015, 8, 5157–5176. [Google Scholar] [CrossRef] [Green Version]
- Thorne, P.W.; Madonna, F.; Schulz, J.; Oakley, T.; Ingleby, B.; Rosoldi, M.; Tramutola, E.; Arola, A.; Buschmann, M.; Mikalsen, A.C.; et al. Making better sense of the mosaic of environmental measurement networks: A system-of-systems approach and quantitative assessment. Geosci. Instrum. Methods Data Syst. 2017, 6, 453–472. [Google Scholar] [CrossRef] [Green Version]
- Sutton, R.; Suckling, E.; Hawkins, E. What does global mean temperature tell us about local climate? Phil. Trans. R. Soc. A. 2015, 373, 20140426. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Liu, Q.; Jia, X.; Quan, J.; Li, J.; Li, X.; Wu, Y.; Chen, D.; Wang, Z.; Liu, Y. New positive feedback mechanism between boundary layer meteorology and secondary aerosol formation during severe haze events. Sci. Rep. 2018, 8, 6095. [Google Scholar] [CrossRef] [PubMed]
Day | 1st Quartile | Median da Trend (m) | 3rd Quartile | IQ Range |
---|---|---|---|---|
IGRA 50 | −3.1 | −0.5 | 2.7 | 5.8 |
IGRA 75 | −2.2 | −0.1 | 2.5 | 4.7 |
IGRA 90 | −1.1 | 0.9 | 2.1 | 3.2 |
Night | 1st quartile | Median da trend (m) | 3rd quartile | IQ range |
IGRA 50 | −2.5 | −0.2 | 3.2 | 5.7 |
IGRA 75 | −2.4 | −0.2 | 3.3 | 5.7 |
IGRA 90 | −2.8 | −0.7 | 2.6 | 5.4 |
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Madonna, F.; Summa, D.; Di Girolamo, P.; Marra, F.; Wang, Y.; Rosoldi, M. Assessment of Trends and Uncertainties in the Atmospheric Boundary Layer Height Estimated Using Radiosounding Observations over Europe. Atmosphere 2021, 12, 301. https://doi.org/10.3390/atmos12030301
Madonna F, Summa D, Di Girolamo P, Marra F, Wang Y, Rosoldi M. Assessment of Trends and Uncertainties in the Atmospheric Boundary Layer Height Estimated Using Radiosounding Observations over Europe. Atmosphere. 2021; 12(3):301. https://doi.org/10.3390/atmos12030301
Chicago/Turabian StyleMadonna, Fabio, Donato Summa, Paolo Di Girolamo, Fabrizio Marra, Yuanzu Wang, and Marco Rosoldi. 2021. "Assessment of Trends and Uncertainties in the Atmospheric Boundary Layer Height Estimated Using Radiosounding Observations over Europe" Atmosphere 12, no. 3: 301. https://doi.org/10.3390/atmos12030301
APA StyleMadonna, F., Summa, D., Di Girolamo, P., Marra, F., Wang, Y., & Rosoldi, M. (2021). Assessment of Trends and Uncertainties in the Atmospheric Boundary Layer Height Estimated Using Radiosounding Observations over Europe. Atmosphere, 12(3), 301. https://doi.org/10.3390/atmos12030301