Data Quality Reports for Session: 103225 User: anderberg Completed: 12/14/2006


TABLE OF CONTENTS

DQR IDSubjectData Streams Affected
D010907.4 "bsrn" platform at SGP data problemsgpbsrnC1.00, sgpbsrnC1.a0, sgpbsrnC1.a1, sgpbsrn1duttC1.c1
D030916.6SGP/BRS/C1 - low downwelling shortwave readingssgpbrsC1.00, sgpbrsC1.a2, sgpbrs20sC1.a0, sgpbrs60sC1.a1
D030917.6SGP/BRS/C1 - Missing data due to Ice storm and clock problemssgpbrsC1.00, sgpbrsC1.a2, sgpbrs20sC1.a0, sgpbrs60sC1.a1, sgp1swfanalbrs1longC1.c1,
sgp15swfanalbrs1longC1.c1
D040608.2SGP/BRS/C1 - NIP sensor failuresgpbrsC1.00, sgpbrsC1.b1, sgpbrs20sC1.a0
D050206.1SGP/BRS/C1 - Monthly SummarysgpbrsC1.b1
D050225.2SGP/BRS/C1 - Reprocess: Incorrect Calibration CoefficientssgpbrsC1.00, sgpbrsC1.b1, sgpbrs20sC1.a0
D050312.1SGP/BRS/C1 - Monthly SummarysgpbrsC1.b1
D050322.1SGP/BRS/C1 - low downwelling shortwave readingssgpbrsC1.00, sgpbrsC1.b1, sgpbrs20sC1.a0
D050420.2SGP/BSRN/C1 - Reprocess: Adjust Direct Normal IrradiancesgpbsrnC1.00, sgpbsrnC1.a0, sgpbsrnC1.a1
D060630.7SGP/BRS/C1 - Reprocessed: Longwave Calibration errorsgpbrsC1.b1
D061102.1SGP/BRS/C1 - Reprocess: Calibration error in Downwelling Longwave measurementsgpbrsC1.b1, sgpbrs20sC1.a0
D940728.1BSRN Pyran(PSP1) shadearm off alignment and NIP not trackingsgpbsrnC1.a1
D950802.2bad radiation datasgpbsrnC1.a1
D970317.1downwelling solar irradiance measurement adjustmentssgpbsrnC1.a1, sgpsirosE13.a1
D971224.1SGP/BSRN/C1 - 12-hr file of 1993 BSRN data corruptedsgpbsrnC1.a0, sgpbsrnC1.a1
D980224.1Reference Broadband Shortwave Data at SGP Central Cluster during Fall IOP '97sgpbsrnC1.00, sgpbsrnC1.a0, sgpbsrnC1.a1, sgpsirsE13.a0, sgpsirsE13.a1, sgpsirosE13.00,
sgpsirosE13.a1


DQRID : D010907.4
Start DateStart TimeEnd DateEnd Time
10/01/1998000001/22/20012359
Subject:
"bsrn" platform at SGP data problem
DataStreams:sgpbsrnC1.00, sgpbsrnC1.a0, sgpbsrnC1.a1, sgpbsrn1duttC1.c1
Description:
As reported in ARM Technical Report ARM-TR-002, the 'bsrn' data at the SGP CF
was not in agreement with the co-located SIRS E13 and C1 data. Subsequent
discussion led to the conclusion that ther was a voltage problem with the
'bsrn' data logger. In development and testing of the Diffuse Correction and
Best Estimate Flux VAPs, it has been shown that all 'bsrn' data, all
instruments, suffered this data logger problem. The result is noisy and
slightly offset values, seemingly at random throughout the period from October
1998 through the end of the 'bsrn' data stream and it's replacement by the BRS
system. All this data needs to be colored 'questionable', and all data users
need to be informed that either the SIRS E13 or SIRS C1 data should be used
instead.
Measurements:sgpbsrnC1.a0:
  • Average reference voltage(vref)
  • Standard deviation for pyrgeometer thermopile(ssig)
  • Downwelling hemispheric infrared irradiance(psig)
  • Battery Voltage (of 60m battery) for QA/QC purposes(vbat)
  • Observed direct-beam normal solar irradiance(nip)
  • CALCULATED downwelling hemispheric diffuse solar irradiance(psp1)
  • Standard deviation for pyrgeometer dome thermistor resistance(stdome)
  • Standard deviation for pyrgeometer case thermistor resistance(stcase)
  • Standard deviation for reference(svref)
  • Observed downwelling hemispheric total solar irradiance (direct+diffuse)(psp2)
  • Standard deviation for pyrheliometer(snip)
  • Average pyrgeometer dome thermistor resistance(ptdome)
  • Standard deviation for shaded pyranometer(spsp1)
  • Standard deviation for unshaded pyranometer(spsp2)
  • Average pyrgeometer case thermistor resistance(ptcase)

sgpbsrnC1.00:
  • Raw data stream - documentation not supported(Raw data stream - documentation not supported)

sgpbsrn1duttC1.c1:
  • Calculated Downwelling Longwave Hemispheric Irradiance, Ventilated Pyrgeometer
    from 20s data(calculated_down_long_hemisp)
  • Downwelling Shortwave Hemispheric Irradiance, Ventilated Pyrgeometer, Full
    corrected (Weighted Mean absolute deviation using Median)(dsdh_full_corrected)
  • Shortwave Direct Normal Irradiance, Pyrheliometer, Maxima(short_direct_normal_max)
  • Downwelling Shortwave Diffuse Hemispheric Irradiance, Ventilated Pyranometer,
    Standard Deviation(down_short_diffuse_hemisp_std)
  • Detector flux (Down-welling pyrgeometer thermopile voltage * PIR-DIR calib-coef)
    Calculated value from 20s data(detector_flux)
  • Downwelling Shortwave Hemispheric Irradiance, Ventilated Pyrgeometer, Minima(down_short_hemisp_min)
  • Ventilated Pyrgeometer Case Temperature(case_temperature)
  • Downwelling Longwave Hemispheric Irradiance, Ventilated Pyrgeometer(down_long_hemisp)
  • Downwelling Longwave Hemispheric Irradiance, Ventilated Pyrgeometer, Maxima(down_long_hemisp_max)
  • Effective temperature(effective_temperature)
  • Downwelling Longwave Hemispheric Irradiance, Ventilated Pyrgeometer, Standard
    Deviation(down_long_hemisp_std)
  • Shortwave Direct Normal Irradiance, Pyrheliometer, Minima(short_direct_normal_min)
  • Downwelling Longwave Hemispheric Irradiance, Ventilated Pyrgeometer, Minima(down_long_hemisp_min)
  • Downwelling Shortwave Diffuse Hemispheric Irradiance, Ventilated Pyranometer(down_short_diffuse_hemisp)
  • Downwelling Shortwave Hemispheric Irradiance, Ventilated Pyrgeometer, Maxima(down_short_hemisp_max)
  • Ventilated Pyrgeometer Dome Temperature(dome_temperature)
  • Downwelling Shortwave Diffuse Hemispheric Irradiance, Ventilated Pyranometer,
    Maxima(down_short_diffuse_hemisp_max)
  • Shortwave Direct Normal Irradiance, Pyrheliometer, Standard Deviation(short_direct_normal_std)
  • Downwelling Shortwave Hemispheric Irradiance, Ventilated Pyrgeometer(down_short_hemisp)
  • Downwelling Shortwave Hemispheric Irradiance, Ventilated Pyrgeometer, Dutton
    corrected(dsdh_dutton_corrected)
  • Downwelling Shortwave Hemispheric Irradiance, Ventilated Pyrgeometer, Standard
    Deviation(down_short_hemisp_std)
  • Shortwave Direct Normal Irradiance, Pyrheliometer(short_direct_normal)
  • Downwelling Shortwave Diffuse Hemispheric Irradiance, Ventilated Pyranometer,
    Minima(down_short_diffuse_hemisp_min)

sgpbsrnC1.a1:
  • CALCULATED downwelling hemispheric diffuse solar irradiance(psp1)
  • Observed direct-beam normal solar irradiance(nip)
  • Downwelling hemispheric infrared irradiance(psig)
  • Observed downwelling hemispheric total solar irradiance (direct+diffuse)(psp2)


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DQRID : D030916.6
Start DateStart TimeEnd DateEnd Time
03/05/2001000004/17/20032359
Subject:
SGP/BRS/C1 - low downwelling shortwave readings
DataStreams:sgpbrsC1.00, sgpbrsC1.a2, sgpbrs20sC1.a0, sgpbrs60sC1.a1
Description:
Downwelling shortwave (DS) values frequently drop below -10 W/m^2 at night, and are 
consistently 20-40 W/m^2 less than the calculated downwelling shortwave during the day in 
clear-sky conditions. Corrective maintenance on 12/1/2004 corrected this offset.  It is not 
clear which CM action corrected the problem since the DS instrument cable was grounded to a 
new location and the DS ventilator fan was found in poor condition and was replaced.  
Either of these issues could have led to the problem observed in this instrument.
Measurements:sgpbrs20sC1.a0:
  • Instantaneous Downwelling Hemispheric Shortwave, Unshaded Pyranometer Thermopile
    Voltage(inst_global)

sgpbrsC1.00:
  • Raw data stream - documentation not supported(Raw data stream - documentation not supported)

sgpbrs60sC1.a1:
  • Downwelling Shortwave Hemispheric Irradiance, Ventilated Pyrgeometer, Minima(down_short_hemisp_min)
  • Downwelling Shortwave Hemispheric Irradiance, Ventilated Pyrgeometer, Maxima(down_short_hemisp_max)
  • Downwelling Shortwave Hemispheric Irradiance, Ventilated Pyrgeometer(down_short_hemisp)
  • Downwelling Shortwave Hemispheric Irradiance, Ventilated Pyrgeometer, Standard
    Deviation(down_short_hemisp_std)

sgpbrsC1.a2:
  • Downwelling Shortwave Hemispheric Irradiance, Ventilated Pyrgeometer, Standard
    Deviation(down_short_hemisp_std)
  • Downwelling Shortwave Hemispheric Irradiance, Ventilated Pyrgeometer(down_short_hemisp)
  • Downwelling Shortwave Hemispheric Irradiance, Ventilated Pyrgeometer, Maxima(down_short_hemisp_max)
  • Downwelling Shortwave Hemispheric Irradiance, Ventilated Pyrgeometer, Minima(down_short_hemisp_min)


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DQRID : D030917.6
Start DateStart TimeEnd DateEnd Time
03/09/2002200003/10/20022348
03/13/2002180003/14/20021500
Subject:
SGP/BRS/C1 - Missing data due to Ice storm and clock problems
DataStreams:sgpbrsC1.00, sgpbrsC1.a2, sgpbrs20sC1.a0, sgpbrs60sC1.a1, sgp1swfanalbrs1longC1.c1,
sgp15swfanalbrs1longC1.c1
Description:
Data are missing due to power failures caused by an ice storm
and resulting system/instrument clock problems.
Measurements:sgpbrs20sC1.a0:
  • Instantaneous Upwelling Shortwave Irradiance, Inverted Pyranometer Thermopile
    Voltage(inst_up_short_hemisp)
  • Instantaneous Direct Normal Shortwave Irradiance, Pyrheliometer Thermopile
    Voltage(inst_direct_normal)
  • Time offset of tweaks from base_time(time_offset)
  • east longitude for all the input platforms.(lon)
  • Instantaneous Upwelling Pyrgeometer Thermopile Voltage, Pyrgeometer(inst_up_long_hemisp_tp)
  • Instantaneous Downwelling Hemispheric Shortwave, Unshaded Pyranometer Thermopile
    Voltage(inst_global)
  • Instantaneous Downwelling Pyrgeometer Case Thermistor Resistance, Shaded
    Pyrgeometer(inst_down_long_shaded_case_resist)
  • north latitude for all the input platforms.(lat)
  • Instantaneous Uncorrected Downwelling Shortwave Diffuse, Shaded Pyranometer
    Thermopile Voltage(inst_diffuse)
  • Instantaneous Downwelling Pyrgeometer Thermopile Voltage, Shaded Pyrgeometer(inst_down_long_hemisp_shaded_tp)
  • Instantaneous Downwelling Pyrgeometer Dome Thermistor Resistance, Shaded
    Pyrgeometer(inst_down_long_shaded_dome_resist)
  • Instantaneous Upwelling Pyrgeometer Case Thermistor Resistance, Pyrgeometer(inst_up_long_case_resist)
  • Instantaneous Upwelling Pyrgeometer Dome Thermistor Resistance, Pyrgeometer(inst_up_long_dome_resist)
  • Time offset from base_time(base_time)
  • altitude above sea levelaltunits(alt)

sgp15swfanalbrs1longC1.c1:
  • Clear-sky Fit Estimated Downwelling Global UVB Irradiance (cguvb)(guvbdn_clearskyfit)
  • Site Identification(site)
  • Time offset of tweaks from base_time(time_offset)
  • altitude above sea levelaltunits(alt)
  • Arithmetic Average Distance from the Earth to the Sun (au)(sun_earth_distance)
  • Measured Downwelling Summed Shortwave Irradiance
    (dirfluxdn_measured+diffluxdn_measured) (ssw)(sswfluxdn_measured)
  • Clear-sky Fit Estimated Downwelling Diffuse Field Shortwave Irradiance (cdif)(difswfluxdn_clearskyfit)
  • Difference: sswfluxdn_measured - sswfluxdn_clearskyfit (sswfcg)(sswfluxdn_cloudeffect)
  • Arithmetic Average Cosine of the Solar Zenith Angle Z (CosZ)(solar_cos_z)
  • Measured Surface Albedo from Shortwave Irradiance Measurements (alb)(albedosw_measured)
  • Number of 1-minute Cloud Fraction Estimates in the 15-minute Interval (Ncf)(nsamples_cloudfraction)
  • Clear-sky Fit Estimated Downwelling Summed Shortwave Irradiance
    (dirfluxdn_clearskyfit+diffluxdn_clearskyfit) (cssw)(sswfluxdn_clearskyfit)
  • Number of 1-minute Clear-sky Fit Downwelling Global Shortwave Irradiance
    Estimates in the 15-minute Interval (Ncsw)(nsamples_gswfluxdn_clearskyfit)
  • Ratio of Clear-sky Fit Estimated Downwelling Diffuse Shortwave Irradiance to
    Clear-sky Fit Estimated Downwelling Global Shortwave Irradiance (cdifr)(difratiodn_clearskyfit)
  • Clear-sky Fit Estimated Downwelling Direct Shortwave Irradiance (cdir)(dirfluxdn_clearskyfit)
  • Measured Downwelling Direct Shortwave Irradiance (dir)(dirfluxdn_measured)
  • Number of 1-minute Clear-sky Detections in the 15-minute Interval (Nclr)(nsamples_clearsky_detection)
  • Beginning Time of File (LST)(base_time_LST)
  • Difference: gswfluxdn_measured - gswfluxdn_clearskyfit (gswfcg)(gswfluxdn_cloudeffect)
  • east longitude for all the input platforms.(lon)
  • Number of 1-minute Measured Downwelling Summed Shortwave Irradiances in the
    15-minute Interval (Nssw)(nsamples_sswfluxdn_measured)
  • Time Offset from base_time_LST(time_offset_LST)
  • Ratio of Measured Downwelling Diffuse Shortwave Irradiance to Measured
    Downwelling Global Shortwave Irradiance (difr)(difratiodn_measured)
  • Measured Downwelling Global Shortwave Irradiance (gsw)(gswfluxdn_measured)
  • Measured Downwelling Global UVB Irradiance (guvb)(guvbdn_measured)
  • Ratio of Measured minus Clear-sky Fit Estimated Downwelling Diffuse Shortwave
    Irradiance to Clear-sky Fit Estimated Downwelling Global Shortwave Irradiance
    (di(difcloudeffect_normalized)
  • Measured Downwelling Diffuse Shortwave Irradiance (dif)(difswfluxdn_measured)
  • north latitude for all the input platforms.(lat)
  • Clear-sky Fit Estimated Downwelling Global Shortwave Irradiance (cgsw)(gswfluxdn_clearskyfit)
  • Average over the interval of the standard deviation of difratiodn_measured
    computed using a 3-5 sample window centered at each 1-min sample(difratiodn_measured_stdev)
  • Estimated Average Fractional Sky Cover over the Hemispheric Dome (cf)(cloudfraction)
  • Clear-sky Fit Estimated Surface Albedo from Shortwave Irradiance Measurements
    (calb)(albedosw_clearskyfit)
  • Time offset from base_time(base_time)
  • Difference: difswfluxdn_measured - difswfluxdn_clearskyfit (diffcg)(difswfluxdn_cloudeffect)

sgp1swfanalbrs1longC1.c1:
  • Clear-sky Fit Coefficient b to Global Shortwave Irradiance (CSWb)(coef_clearsky_gsw_b)
  • Clear-sky Fit Estimated Downwelling Global UVB Irradiance (cguvb)(guvbdn_clearskyfit)
  • Measured Downwelling Diffuse Shortwave Irradiance (dif)(difswfluxdn_measured)
  • Clear-sky Fit Coefficient a to Global UVB Irradiance (UVBa)(coef_clearsky_guvb_a)
  • Clear-sky Fit Coefficient b to Summed Shortwave Irradiance (CSWb)(coef_clearsky_ssw_b)
  • Clear-sky Fit Coefficient a to Global Shortwave Irradiance (CSWa)(coef_clearsky_gsw_a)
  • Clear-sky Fit Coefficient b to Global UVB Irradiance (UVBb)(coef_clearsky_guvb_b)
  • Clear-sky Fit Coefficient a to Albedo (Alba)(coef_clearsky_albedo_a)
  • Site Identification(site)
  • Difference: gswfluxdn_measured - gswfluxdn_clearskyfit (gswfcg)(gswfluxdn_cloudeffect)
  • Clear-sky Fit Estimated Downwelling Diffuse Field Shortwave Irradiance (cdif)(difswfluxdn_clearskyfit)
  • Clear-sky Fit Estimated Surface Albedo from Shortwave Irradiance Measurements
    (calb)(albedosw_clearskyfit)
  • Ratio of Measured Downwelling Diffuse Shortwave Irradiance to Measured
    Downwelling Global Shortwave Irradiance (difr)(difratiodn_measured)
  • Ratio of Clear-sky Fit Estimated Downwelling Diffuse Shortwave Irradiance to
    Clear-sky Fit Estimated Downwelling Global Shortwave Irradiance (cdifr)(difratiodn_clearskyfit)
  • east longitude for all the input platforms.(lon)
  • Clear-sky Fit Estimated Downwelling Direct Shortwave Irradiance (cdir)(dirfluxdn_clearskyfit)
  • Difference: difswfluxdn_measured - difswfluxdn_clearskyfit (diffcg)(difswfluxdn_cloudeffect)
  • Clear-sky Fit Estimated Downwelling Global Shortwave Irradiance (cgsw)(gswfluxdn_clearskyfit)
  • Measured Downwelling Global UVB Irradiance (guvb)(guvbdn_measured)
  • Measured Downwelling Summed Shortwave Irradiance
    (dirfluxdn_measured+diffluxdn_measured) (ssw)(sswfluxdn_measured)
  • Clear-sky Fit Coefficient b to Diffuse Irradiance to Total Irradiance Ratio
    (DFRb)(coef_clearsky_difratio_b)
  • Time Offset from base_time_LST(time_offset_LST)
  • Arithmetic Average Distance from the Earth to the Sun (au)(sun_earth_distance)
  • Clear-sky Fit Coefficient a to Global minus Summed Shortwave Irradiance
    Difference (SCORa)(coef_clearsky_dsw_a)
  • Difference: sswfluxdn_measured - sswfluxdn_clearskyfit (sswfcg)(sswfluxdn_cloudeffect)
  • north latitude for all the input platforms.(lat)
  • Measured Downwelling Direct Shortwave Irradiance (dir)(dirfluxdn_measured)
  • Clear-sky Fit Coefficient b to Albedo (Albb)(coef_clearsky_albedo_b)
  • Arithmetic Average Cosine of the Solar Zenith Angle Z (CosZ)(solar_cos_z)
  • Clear-sky Fit Coefficient b to Global minus Summed Shortwave Irradiance
    Difference (SCORb)(coef_clearsky_dsw_b)
  • Clear-sky Fit Estimated Downwelling Summed Shortwave Irradiance
    (dirfluxdn_clearskyfit+diffluxdn_clearskyfit) (cssw)(sswfluxdn_clearskyfit)
  • Measured Downwelling Global Shortwave Irradiance (gsw)(gswfluxdn_measured)
  • Time offset of tweaks from base_time(time_offset)
  • altitude above sea levelaltunits(alt)
  • Date (YYMMDD LST) for which the Coefficients are Applicable(coef_date)
  • Measured Surface Albedo from Shortwave Irradiance Measurements (alb)(albedosw_measured)
  • Clear-sky Fit Coefficient a to Summed Shortwave Irradiance (CSWa)(coef_clearsky_ssw_a)
  • Clear-sky Fit Coefficient a to Diffuse Irradiance to Total Irradiance Ratio
    (DFRa)(coef_clearsky_difratio_a)
  • Daily Averaged Distance from the Earth to the Sun (auavg)(sun_earth_distance_dailyaverage)
  • Beginning Time of File (LST)(base_time_LST)
  • Clear-sky Offset Coefficient c for Global minus Summed Shortwave Irradiance
    Difference (SCORc)(coef_clearsky_dsw_c)
  • Clear-sky Detection Flag (clrf)(flag_clearsky_detection)
  • Time offset from base_time(base_time)

sgpbrsC1.00:
  • Raw data stream - documentation not supported(Raw data stream - documentation not supported)

sgpbrs60sC1.a1:
  • Upwelling (10 meter) Shortwave Hemispheric Irradiance, Ventilated Pyranometer,
    Standard Deviation(up_short_hemisp_std)
  • Upwelling (10 meter) Shortwave Hemispheric Irradiance, Ventilated Pyranometer,
    Maxima(up_short_hemisp_max)
  • Shortwave Direct Normal Irradiance, Pyrheliometer, Standard Deviation(short_direct_normal_std)
  • Downwelling Shortwave Diffuse Hemispheric Irradiance, Ventilated Pyranometer,
    Standard Deviation(down_short_diffuse_hemisp_std)
  • Battery voltage(vBatt)
  • Downwelling Shortwave Diffuse Hemispheric Irradiance, Ventilated Pyranometer,
    Minima(down_short_diffuse_hemisp_min)
  • Downwelling Shortwave Hemispheric Irradiance, Ventilated Pyrgeometer, Standard
    Deviation(down_short_hemisp_std)
  • Downwelling Shortwave Hemispheric Irradiance, Ventilated Pyrgeometer, Minima(down_short_hemisp_min)
  • Downwelling Longwave Hemispheric Irradiance, Shaded Pyrgeometer(down_long_hemisp_shaded)
  • Downwelling Shortwave Hemispheric Irradiance, Ventilated Pyrgeometer, Maxima(down_short_hemisp_max)
  • Shortwave Direct Normal Irradiance, Pyrheliometer, Maxima(short_direct_normal_max)
  • Time offset from base_time(base_time)
  • Upwelling (10 meter) Shortwave Hemispheric Irradiance, Ventilated Pyranometer,
    Minima(up_short_hemisp_min)
  • Upwelling (10 meter) Longwave Hemispheric Irradiance, Ventilated Pyrgeometer(up_long_hemisp)
  • Upwelling (10 meter) Longwave Hemispheric Irradiance, Ventilated Pyrgeometer,
    Standard Deviation(up_long_hemisp_std)
  • Upwelling (10 meter) Longwave Hemispheric Irradiance, Ventilated Pyrgeometer,
    Minima(up_long_hemisp_min)
  • north latitude for all the input platforms.(lat)
  • Upwelling (10 meter) Longwave Hemispheric Irradiance, Ventilated Pyrgeometer,
    Maxima(up_long_hemisp_max)
  • Downwelling Shortwave Hemispheric Irradiance, Ventilated Pyrgeometer(down_short_hemisp)
  • east longitude for all the input platforms.(lon)
  • Upwelling (10 meter) Shortwave Hemispheric Irradiance, Ventilated Pyranometer(up_short_hemisp)
  • Downwelling Shortwave Diffuse Hemispheric Irradiance, Ventilated Pyranometer,
    Maxima(down_short_diffuse_hemisp_max)
  • Shortwave Direct Normal Irradiance, Pyrheliometer(short_direct_normal)
  • Downwelling Longwave Hemispheric Irradiance, Shaded Pyrgeometer, Maxima(down_long_hemisp_shaded_max)
  • Time offset of tweaks from base_time(time_offset)
  • Downwelling Longwave Hemispheric Irradiance, Shaded Pyrgeometer, Standard
    Deviation(down_long_hemisp_shaded_std)
  • altitude above sea levelaltunits(alt)
  • Shortwave Direct Normal Irradiance, Pyrheliometer, Minima(short_direct_normal_min)
  • Downwelling Longwave Hemispheric Irradiance, Shaded Pyrgeometer, Minima(down_long_hemisp_shaded_min)
  • Downwelling Shortwave Diffuse Hemispheric Irradiance, Ventilated Pyranometer(down_short_diffuse_hemisp)

sgpbrsC1.a2:
  • Battery voltage(vBatt)
  • Upwelling (10 meter) Shortwave Hemispheric Irradiance, Ventilated Pyranometer(up_short_hemisp)
  • Upwelling (10 meter) Longwave Hemispheric Irradiance, Ventilated Pyrgeometer,
    Maxima(up_long_hemisp_max)
  • Downwelling Shortwave Hemispheric Irradiance, Ventilated Pyrgeometer, Maxima(down_short_hemisp_max)
  • Time offset from base_time(base_time)
  • north latitude for all the input platforms.(lat)
  • altitude above sea levelaltunits(alt)
  • Instantaneous Upwelling Pyrgeometer Dome Thermistor Temperature, Pyrgeometer(inst_up_long_dome_temp)
  • Shortwave Direct Normal Irradiance, Pyrheliometer, Maxima(short_direct_normal_max)
  • Downwelling Longwave Hemispheric Irradiance, Shaded Pyrgeometer, Maxima(down_long_hemisp_shaded_max)
  • Instantaneous Downwelling Pyrgeometer Case Thermistor Temperature, Shaded
    Pyrgeometer(inst_down_long_shaded_case_temp)
  • Upwelling Longwave Hemispheric Net Infrared(up_long_netir)
  • east longitude for all the input platforms.(lon)
  • Instantaneous Downwelling Pyrgeometer Dome Thermistor Temperature, Shaded
    Pyrgeometer(inst_down_long_shaded_dome_temp)
  • Shortwave Direct Normal Irradiance, Pyrheliometer, Minima(short_direct_normal_min)
  • Upwelling (10 meter) Longwave Hemispheric Irradiance, Ventilated Pyrgeometer(up_long_hemisp)
  • Downwelling Longwave Hemispheric Net Infrared(down_long_netir)
  • Upwelling (10 meter) Longwave Hemispheric Irradiance, Ventilated Pyrgeometer,
    Minima(up_long_hemisp_min)
  • Upwelling (10 meter) Shortwave Hemispheric Irradiance, Ventilated Pyranometer,
    Minima(up_short_hemisp_min)
  • Downwelling Shortwave Hemispheric Irradiance, Ventilated Pyrgeometer, Standard
    Deviation(down_short_hemisp_std)
  • Downwelling Shortwave Diffuse Hemispheric Irradiance, Ventilated Pyranometer,
    Minima(down_short_diffuse_hemisp_min)
  • Shortwave Direct Normal Irradiance, Pyrheliometer(short_direct_normal)
  • Instantaneous Upwelling Pyrgeometer Case Thermistor Temperature, Pyrgeometer(inst_up_long_case_temp)
  • Shortwave Direct Normal Irradiance, Pyrheliometer, Standard Deviation(short_direct_normal_std)
  • Downwelling Longwave Hemispheric Irradiance, Shaded Pyrgeometer(down_long_hemisp_shaded)
  • Downwelling Longwave Hemispheric Irradiance, Shaded Pyrgeometer, Minima(down_long_hemisp_shaded_min)
  • Downwelling Shortwave Diffuse Hemispheric Irradiance, Ventilated Pyranometer(down_short_diffuse_hemisp)
  • Downwelling Shortwave Diffuse Hemispheric Irradiance, Ventilated Pyranometer,
    Maxima(down_short_diffuse_hemisp_max)
  • Time offset of tweaks from base_time(time_offset)
  • Downwelling Shortwave Diffuse Hemispheric Irradiance, Ventilated Pyranometer,
    Standard Deviation(down_short_diffuse_hemisp_std)
  • Upwelling (10 meter) Shortwave Hemispheric Irradiance, Ventilated Pyranometer,
    Maxima(up_short_hemisp_max)
  • Upwelling (10 meter) Shortwave Hemispheric Irradiance, Ventilated Pyranometer,
    Standard Deviation(up_short_hemisp_std)
  • Upwelling (10 meter) Longwave Hemispheric Irradiance, Ventilated Pyrgeometer,
    Standard Deviation(up_long_hemisp_std)
  • Downwelling Longwave Hemispheric Irradiance, Shaded Pyrgeometer, Standard
    Deviation(down_long_hemisp_shaded_std)
  • Downwelling Shortwave Hemispheric Irradiance, Ventilated Pyrgeometer, Minima(down_short_hemisp_min)
  • Downwelling Shortwave Hemispheric Irradiance, Ventilated Pyrgeometer(down_short_hemisp)


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DQRID : D040608.2
Start DateStart TimeEnd DateEnd Time
06/02/2004173406/15/20042010
Subject:
SGP/BRS/C1 - NIP sensor failure
DataStreams:sgpbrsC1.00, sgpbrsC1.b1, sgpbrs20sC1.a0
Description:
Normal incidence values of downwelling shortwave radiation were
               reported as -9999 (missing).  The NIP instrument was damaged by
               lightning in the area near the time of failure.
Measurements:sgpbrs20sC1.a0:
  • Instantaneous Direct Normal Shortwave Irradiance, Pyrheliometer Thermopile
    Voltage(inst_direct_normal)

sgpbrsC1.00:
  • Raw data stream - documentation not supported(Raw data stream - documentation not supported)

sgpbrsC1.b1:
  • Shortwave Direct Normal Irradiance, Pyrheliometer, Maxima(short_direct_normal_max)
  • Shortwave Direct Normal Irradiance, Pyrheliometer, Standard Deviation(short_direct_normal_std)
  • Shortwave Direct Normal Irradiance, Pyrheliometer, Minima(short_direct_normal_min)
  • Shortwave Direct Normal Irradiance, Pyrheliometer(short_direct_normal)


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DQRID : D050206.1
Start DateStart TimeEnd DateEnd Time
12/01/2004000012/31/20040000
Subject:
SGP/BRS/C1 - Monthly Summary
DataStreams:sgpbrsC1.b1
Description:
Data quality this site-month is poor. This is due largely to the missing Upwelling
Shortwave and Upwelling Longwave the entire month. This problem has been ongoing for
several months now. DQPR # 124 asserted that the Global PSP was recording inaccurate
readings. Thus, the Global PSP was changed out on the 17th by site ops. Prior to the
17th, the Global PSP was falling below nighttime empirical limits on most nights and
there were severe 3 component failures during the day. The change out of the PSP
mitigated the severity of the 3 component failures and eliminated the nighttime empirical
limits failures. There were still substantial 3 component flags after the 17th.
Measurements:sgpbrsC1.b1:
  • Upwelling (10 meter) Shortwave Hemispheric Irradiance, Ventilated Pyranometer(up_short_hemisp)
  • Upwelling (10 meter) Longwave Hemispheric Irradiance, Ventilated Pyrgeometer(up_long_hemisp)
  • Downwelling Longwave Hemispheric Irradiance, Shaded Pyrgeometer(down_long_hemisp_shaded)
  • Downwelling Shortwave Diffuse Hemispheric Irradiance, Ventilated Pyranometer(down_short_diffuse_hemisp)
  • Shortwave Direct Normal Irradiance, Pyrheliometer(short_direct_normal)
  • Downwelling Shortwave Hemispheric Irradiance, Ventilated Pyrgeometer(down_short_hemisp)


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DQRID : D050225.2
Start DateStart TimeEnd DateEnd Time
08/05/2004150012/03/20041700
Subject:
SGP/BRS/C1 - Reprocess: Incorrect Calibration Coefficients
DataStreams:sgpbrsC1.00, sgpbrsC1.b1, sgpbrs20sC1.a0
Description:
Lightening strike on or near 6/2/2004 took the BRS NIP(31747E6) out of service, on or near 
6/15 the NIP was replaced and the datalogger program was changed to reflect the new 
NIP(31343E6). On 8/5/2004 the DIR (Downwelling longwave) instrument was changed out and a new 
program was loaded to reflect a new DIR.  The new program contained the original 
installed shortwave instrument calibration coefficients including NIP 31747E6. Thus from 8/5 to 
when the shortwave instruments were changed out on 12/3 the wrong s/n and calibration 
factor (i.e. 31747E6) was applied to the actual NIP(31343E6)installed at BRS C1.
Measurements:sgpbrs20sC1.a0:
  • Instantaneous Direct Normal Shortwave Irradiance, Pyrheliometer Thermopile
    Voltage(inst_direct_normal)

sgpbrsC1.00:
  • Raw data stream - documentation not supported(Raw data stream - documentation not supported)

sgpbrsC1.b1:
  • Shortwave Direct Normal Irradiance, Pyrheliometer, Maxima(short_direct_normal_max)
  • Shortwave Direct Normal Irradiance, Pyrheliometer, Standard Deviation(short_direct_normal_std)
  • Shortwave Direct Normal Irradiance, Pyrheliometer, Minima(short_direct_normal_min)
  • Shortwave Direct Normal Irradiance, Pyrheliometer(short_direct_normal)


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DQRID : D050312.1
Start DateStart TimeEnd DateEnd Time
01/01/2005000002/01/20050000
Subject:
SGP/BRS/C1 - Monthly Summary
DataStreams:sgpbrsC1.b1
Description:
Data quality this site-month is good. The offset in the Global PSP has been much improved, 
with an average nighttime offset of -4 W/m^2, since measures were taken on 17 DEC 2004 
to fix it. The Global PSP does not go below nighttime empirical limits all month. Global 
does fall below daytime empirical limits for significant time periods on the 2, 4, 5, 12, 
28, 30. There were still substantial 3 component flags 17 DEC 2004. The charcteristic 
three component failures are present through out the month, especially closer to the end of 
the month. The problem is about equally as bad in the morning as the evening.

The flags are usually high level yellow at their worst for any given day. Finally, there 
are the typical three component flags on the 29th as well, but these occur under cloudy 
skies. The data return to normal the next day and a cause for the problem cannot be 
determined.
Measurements:sgpbrsC1.b1:
  • Downwelling Longwave Hemispheric Irradiance, Shaded Pyrgeometer(down_long_hemisp_shaded)
  • Downwelling Shortwave Diffuse Hemispheric Irradiance, Ventilated Pyranometer(down_short_diffuse_hemisp)
  • Shortwave Direct Normal Irradiance, Pyrheliometer(short_direct_normal)
  • Downwelling Shortwave Hemispheric Irradiance, Ventilated Pyrgeometer(down_short_hemisp)


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DQRID : D050322.1
Start DateStart TimeEnd DateEnd Time
04/18/2003000012/17/20042030
Subject:
SGP/BRS/C1 - low downwelling shortwave readings
DataStreams:sgpbrsC1.00, sgpbrsC1.b1, sgpbrs20sC1.a0
Description:
Downwelling shortwave (DS) values frequently drop below -10 W/m^2 at night, and are 
consistently 20-40 W/m^2 less than the calculated downwelling shortwave during the day in 
clear-sky conditions. Corrective maintenance on 12/17/2004 corrected this offset.  It is not 
clear which CM action corrected the problem since the DS instrument cable was grounded to 
a new location and the DS ventilator fan was found in poor condition and was replaced.  
Either of these issues could have led to the problem observed in this instrument.
Measurements:sgpbrs20sC1.a0:
  • Instantaneous Downwelling Hemispheric Shortwave, Unshaded Pyranometer Thermopile
    Voltage(inst_global)

sgpbrsC1.00:
  • Raw data stream - documentation not supported(Raw data stream - documentation not supported)

sgpbrsC1.b1:
  • Downwelling Shortwave Hemispheric Irradiance, Ventilated Pyrgeometer, Maxima(down_short_hemisp_max)
  • Downwelling Shortwave Hemispheric Irradiance, Ventilated Pyrgeometer, Standard
    Deviation(down_short_hemisp_std)
  • Downwelling Shortwave Hemispheric Irradiance, Ventilated Pyrgeometer, Minima(down_short_hemisp_min)
  • Downwelling Shortwave Hemispheric Irradiance, Ventilated Pyrgeometer(down_short_hemisp)


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DQRID : D050420.2
Start DateStart TimeEnd DateEnd Time
07/28/2000143001/22/20011739
Subject:
SGP/BSRN/C1 - Reprocess: Adjust Direct Normal Irradiance
DataStreams:sgpbsrnC1.00, sgpbsrnC1.a0, sgpbsrnC1.a1
Description:
Direct normal broadband shortwave irradiance measured by NIP s/n 30721E6 was found to have 
a 4.1% negative bias when compared in-situ with absolute cavity radiometer measurements 
taken on August 21, 2000.  The estimated measurement uncertainty of the calibration of 
NIP s/n 30721E6 on July 18, 2000 was -2.8% to +3.5%.  The additional uncertainties of the 
field (rather than calibration) data acquisition system and installation contribute to the 
large negative bias found in the data on August 21, 2000.

Data from NIP s/n 30721E6 can be adjusted according to the in-situ comparisons to reduce 
the apparent measurement bias.
Measurements:sgpbsrnC1.a0:
  • Observed direct-beam normal solar irradiance(nip)

sgpbsrnC1.00:
  • Raw data stream - documentation not supported(Raw data stream - documentation not supported)

sgpbsrnC1.a1:
  • Observed direct-beam normal solar irradiance(nip)


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DQRID : D060630.7
Start DateStart TimeEnd DateEnd Time
12/11/2003193502/16/20061903
Subject:
SGP/BRS/C1 - Reprocessed: Longwave Calibration error
DataStreams:sgpbrsC1.b1
Description:
Modified pyrgeometer calibration procedures were implemented beginning in June 2004. These 
modified procedures introduced a calibration bias in the longwave data. The previous 
procedures were re-implemented at all sites between December 2005 and February 2006 to 
restore proper calibrations. 

The data collected while the incorrect procedures were in place have been reprocessed to 
remove the calibration bias.  The reprocessed 60 second averaged data are based on 3 
instantaneous 20 second data records rather than on 60 1 second instantaneous data records. 
Still, these data are considered far superior to the originally processed data. The 
reprocessed data were archived in November 2006.
Measurements:sgpbrsC1.b1:
  • Downwelling Longwave Hemispheric Net Infrared(down_long_netir)
  • Upwelling (10 meter) Longwave Hemispheric Irradiance, Ventilated Pyrgeometer(up_long_hemisp)
  • Downwelling Longwave Hemispheric Irradiance, Shaded Pyrgeometer(down_long_hemisp_shaded)
  • Upwelling Longwave Hemispheric Net Infrared(up_long_netir)


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DQRID : D061102.1
Start DateStart TimeEnd DateEnd Time
12/11/2003192006/14/20042359
Subject:
SGP/BRS/C1 - Reprocess: Calibration error in Downwelling Longwave measurement
DataStreams:sgpbrsC1.b1, sgpbrs20sC1.a0
Description:
On 20031211 the Downwelling LW pyrgeometer was replaced but the calibrations were not 
updated.  Calibrations have been corrected in data beginning 20040615.
Measurements:sgpbrs20sC1.a0:
  • Instantaneous Downwelling Pyrgeometer Thermopile Voltage, Shaded Pyrgeometer(inst_down_long_hemisp_shaded_tp)

sgpbrsC1.b1:
  • Downwelling Longwave Hemispheric Irradiance, Shaded Pyrgeometer, Maxima(down_long_hemisp_shaded_max)
  • Downwelling Longwave Hemispheric Net Infrared(down_long_netir)
  • Downwelling Longwave Hemispheric Irradiance, Shaded Pyrgeometer(down_long_hemisp_shaded)
  • Downwelling Longwave Hemispheric Irradiance, Shaded Pyrgeometer, Minima(down_long_hemisp_shaded_min)
  • Downwelling Longwave Hemispheric Irradiance, Shaded Pyrgeometer, Standard
    Deviation(down_long_hemisp_shaded_std)


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DQRID : D940728.1
Start DateStart TimeEnd DateEnd Time
07/15/1994000007/19/19942359
Subject:
BSRN Pyran(PSP1) shadearm off alignment and NIP not tracking
DataStreams:sgpbsrnC1.a1
Description:
Subject: BSRN Data Release (July 15 - July 19, 1994) 

Name: Trevor Ley (SRRB\NOAA)   Instrument Mentor Dr. John DeLuisi

Email address: trevor@srrb.noaa.gov

Telephone: (303) 497-7315

Institution: SRRB\NOAA


Platform/Measurement: BSRN Pyranometer (PSP1) shadearm off
alignment and NIP not tracking.

        what level data: a1

 period of time in question
        start: July 15, 1994 at 00:00:00 (GMT)

        end:   July 19, 1994 at 23:59:59  (GMT)


 Data should be labeled:
        
      -Calculated Global irradiance could be labeled
       "incorrect".
     - NIP not tracking correctly
       
 Discussion of Problem:

  1. The shadearm on the Pyranometer (PSP1), calculating diffuse  
     irradiance, was off alignment (power outage).  
 
     Use this algorithm to pick out the times that the 
     shadearm is off of alignment.

          (PSP2-(NIP*cosine of zenith angle))/PSP1 < .90

   2. NIP tracker was down because of power outage.

Other observations/measurements impacted by this problem:

          * Calculated Global Irradiance and Diffuse Irradiance
          * Direct Normal Irradiance measurement is Wrong

Suggested Corrections of the Problem:  None

    


REQUIRED ACTIONS:

This report is informational no further action required

Experiment Center action required as follows:

     Supply with BSRN data release (July 15- July 19, 1994)


-------------------------------------------------------
TO BE FILLED IN UPON COMPLETION OF ACTION ABOVE:
 Action Taken:


Experiment Center:



Site Operations:



Archive:




EST:



-----------------------------------------------------------------
END
Measurements:sgpbsrnC1.a1:
  • Observed downwelling hemispheric total solar irradiance (direct+diffuse)(psp2)
  • Downwelling hemispheric infrared irradiance(psig)
  • altitude above sea levelaltunits(alt)
  • Time offset from base_time(base_time)
  • north latitude for all the input platforms.(lat)
  • east longitude for all the input platforms.(lon)
  • Time offset of tweaks from base_time(time_offset)
  • CALCULATED downwelling hemispheric diffuse solar irradiance(psp1)
  • Observed direct-beam normal solar irradiance(nip)


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DQRID : D950802.2
Start DateStart TimeEnd DateEnd Time
07/16/1995183607/17/19952359
Subject:
bad radiation data
DataStreams:sgpbsrnC1.a1
Description:
DQR No:                               Platform:  SGP BSRN C1.A1
                                                 (surface radiation station)

Subject:  Bad radiation data on July 17

Date Submitted:  July 7, 1995
Submitted By:  John Augustine         _X_  Instrument Mentor
               for John Deluisi       ___  EST Member
                                      ___  Science Team Member
                                      ___  Other 
_____________________________
 
For questions or problems, please contact the ARM Experiment 
Center at
509-375-6898 or via email at dqr@arm.gov.

Platform/Measurement:
    What level data: (raw,a0,a1,b1,c1 etc):  a1

    What location was the data collected at:  SGP
 
    Period of time in question
        Begin Date   7/16/95   Time   18:36    (GMT)  
        End Date     7/17/95   Time   23:59    (GMT)

 Data should be labeled:
 ___  questionable             ___  All data fields affected
 ___  incorrect                _X_ Only some data fields affected
 ___  wrong calibration
 ___  others 
 
 Discussion of Problem:

After looking at the plots for solar direct, diffuse, and global 
radiation, I believe that two problems are evident.  The data on July 16
look normal for quasi-clear sky conditions until about 18:36 (UTC).  The
rest of the day looks cloudy, i.e., the global and diffuse follow each
other, and the NIP signal is near 0, although noisy (i.e., the NIP signal
actually goes below 0 w m^-2 for two short periods between 2000 and 2100
UTC).

The diffuse and NIP data on July 17 are suspect.  The NIP reads zero all
day.  From sunrise to 17:55 (UTC), the diffuse and global track each
other to fairly high values (max 1000 W m^2).  After the fuse was
replaced, at 17:55, the diffuse radiation drops to normal values (around
300 W m^2), and the global remains at high (normal) values.  This
suggests that the blown fuse affected the shade disk mechanism for the
diffuse radiometer.  However, the NIP remains at zero all day long.
According to the data on July 17, which suggests that it was a partly
cloudy day with no deep clouds, the NIP signal should be comparable to
the global reading.  Therefore the NIP's erroneous signal was not corrected
after the fuse was replaced.

On July 18, all solar data look good, suggesting that the problem with
the NIP was corrected sometime before sunrise.


Other observations/measurements impacted by this problem:



Suggested corrections of the Problem:  (e.g. change calibration
factor and recompute, flag data with this comment, etc.)

    Flag data according to the above discussion.  NIP and diffuse
    measurement affected.


Data Processing Notes                     Date
Measurements:sgpbsrnC1.a1:
  • Observed downwelling hemispheric total solar irradiance (direct+diffuse)(psp2)
  • Downwelling hemispheric infrared irradiance(psig)
  • altitude above sea levelaltunits(alt)
  • Time offset from base_time(base_time)
  • north latitude for all the input platforms.(lat)
  • east longitude for all the input platforms.(lon)
  • Time offset of tweaks from base_time(time_offset)
  • CALCULATED downwelling hemispheric diffuse solar irradiance(psp1)
  • Observed direct-beam normal solar irradiance(nip)


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DQRID : D970317.1
Start DateStart TimeEnd DateEnd Time
10/13/1995000008/20/19972359
Subject:
downwelling solar irradiance measurement adjustments
DataStreams:sgpbsrnC1.a1, sgpsirosE13.a1
Description:
A comparison of BSRN and SIROS solar radiometers for measuring downwelling 
irradiances at the SGP central facility was made with field standards and two 
absolute cavity radiometers brought to the site or a two-week period in April 
1996 by Mike Rubes (formerly of the National and Oceanic Atmospheric 
Administration, Air Resources Laboratory, Surface Radiation Research Branch in 
Boulder, CO).  A description of this effort can currently be found on the 
World Wide Web at http://www.srrb.noaa.gov/apr96iop/hagsie.html.  Analyses of 
the data from these comparisons have resulted in several observations on the 
quality of data collected at the BSRN and SIROS platforms since October 13, 
1995, which are probably valid to the present time, until these sensors are 
replaced with more recently calibrated sensors.  On Oct. 13, 1995, the two 
BSRN pyranometers (PSPs) were replaced, so the observations do not apply to 
the BSRN measurements of global and diffuse irradiation before that date.  
Another source of information is inspection of the SIROS and BSRN equipment by 
Joe Michalsky (Atmospheric Science Research Center, State University of New 
York at Albany) at various times.  The results of the findings are summarized 
as recommendations in the following several paragraphs.  Some explanation and 
further comments are provided in the parenthetical remarks.

ANALYSIS WHEN THE DIRECT BEAM WAS NOT OBSCURED BY CLOUDS

Direct-beam solar irradiance measured with the BSRN pyrheliometer (NIP) are 
too large by approximately 0.5% compared to the two absolute cavity 
radiometers.  (This small underestimate is within the expected level of 
uncertainty.)  

Direct-beam solar irradiance measured with the SIROS pyrheliometer are too 
small by approximately 2.1% compared to the two absolute cavity radiometers.  
(This large discrepancy is unexplained and will be explored during future 
calibration activities at the SGP Radiation Calibration Facility.)  

Possibly the best estimate of downwelling total hemispherical solar (global) 
irradiance can be made by summing the SIROS pyrheliometer irradiance reading 
multiplied by 1.021 (and by the cosine of the solar zenith angle) and the 
average of the readings for diffuse irradiance from the shaded BSRN and SIROS 
pyranometers.  The direct-beam part can alternatively be computed as 0.995 
times the BSRN pyrheliometer reading.  For data collected in October before 
the 13th, when the BSRN shaded pyrheliometer was replaced, the diffuse 
component is probably best computed directly from the SIROS shaded sensor 
alone.  

Downwelling total hemispherical solar (global) irradiance measured by the BSRN 
unshaded pyranometer is approximately 2% too small (which is within the 
expected level of uncertainty for unshaded pyranometer measurements) compared 
to the values computed from the measured direct-beam and diffuse components.  

(Downwelling total hemispherical solar irradiances measured by the SIROS 
unshaded pyranometer systematically underestimates the global irradiances 
by excessive amounts, i.e., by greater than 3%.)  

The analyses leading to these recommendations are described in an extended 
abstract presented in early February (J. Michalsky et al., "Optimal 
Measurements of Surface Shortwave Irradiance Using Current Instrumentation--
The ARM Experience," in Preprint Volume, Ninth Conference on Atmospheric 
Radiation, Feb. 2-7, Long Beach, California, pp. J5-J9, American 
Meteorological Society, Boston, MA).  Further relevant analyses were conducted 
by Kato et al., (Seiji Kato, Pennsylvania State University) and are described 
in a manuscript submitted for publication ("Uncertainties in Modelled and 
Measured Clear Sky Surface Shortwave Irradiances")." 

UNSHADED PYRANOMETER PERFORMANCE WHEN THE DIRECT BEAM WAS NOT OBSCURED

The above recommendations are based mostly on analyses conducted for 
cloudless, midday conditions.  Because the data reported from the unshaded 
pyranometer were not corrected for cosine response, slight overestimates of 
global irradiance from unshaded pyranometers tend to occur in cloudless 
conditions at solar zenith angles less than 45 deg and slight underestimates 
tend to occur for zenith angles greater than 55 deg.  The maximum deviations 
occur at extreme solar zenith angles and are about 2%.  

TRACKER-SHADING PERFORMANCE

The data user should note, as has been noted in data release statements, that 
analyses of the direct, diffuse, and/or direct beam irradiances should be 
preceded by a check of sensor performances by summing the direct and diffuse 
components and comparing the result to the directly measured global component.  
When this is done, problems with solar tracking are usually apparent.

Because slight misalignments in the tracking and shading devices can be 
difficult to detect, small deviations of the component sum from expected 
behavior are sometimes difficult to explain.  If such deviations tend to recur 
for specific time intervals for several days, one might suspect a tracking or 
shading problem.  For the time period addressed here, the modern tracking- 
shading assembly used with the SIROS sensors appeared to work well.  For the 
BSRN sensors until January 1996, an older tracking-shading system was used 
that was not as reliable as the modern assembly used with the SIROS sensors; 
problems with this BSRN tracking and shading system, were usually evident when 
they occurred.  A modern tracker-shader was installed for the BSRN sensors in 
January 1996. The tracker was not aligned as well as it could be.  Efforts are 
underway to improve tracker alignment checks and procedures at all SIROS sites 
and the BSRN site.  

PARTLY CLOUD CONDITIONS

An analysis by Chuck Long (formerly at the Pennsylvania State University and 
now with the University of Colorado and the National Oceanic and Atmospheric 
Administration) indicated that data users who are investigating partly cloudy 
sky conditions will usually find that the BSRN outputs are more reliable for 
short periods of time, say less than 30 min, than are the SIROS outputs.  This 
tends to occur because the SIROS data are recorded only every 20 s while the 
BSRN data represent one-minute averages computed on the basis of sampling once 
per second.  Under partly cloudy conditions, sampling only once every 20 s 
tends to provide inadequate statistical representation of downwelling 
irradiances.  

ESTIMATES FOR CLOUDY CONDITIONS

The component sum technique is not applicable for overcast conditions.  For 
the time period addressed here, the SIROS shaded sensor appears most reliable 
before October 13, 1995.  Thereafter, an average of data from the SIROS shaded 
pyranometer, the shaded BSRN sensor, and the shaded BSRN sensor multiplied by 
1.02 might be the best estimate of global irradiance for cloudy conditions.  
However, a rigorous analysis on the results of this procedure has not been 
carried out, so the data user should approach this technique with caution.  

SOME ADDITIONAL INFORMATION

The excessively large deviations noted above for the pyranometers result in 
part from a mixture of different sources of calibration procedures.   The 
following table lists the sources of calibration:

Sensor       Coefficient used    Calibration     Installation
              to process data     date            date
BSRN PSP DS     BORCAL           Sept. 1995      Oct. 13, 1995
BSRN PSP DD     Eppley           June 1995       Oct. 13, 1995
BSRN NIP        BORCAL           July 1993       March 17, 1994
SIROS PSP DS    Eppley           June 1995       July 25, 1995
SIROS PSP DD    Eppley           June 1995       July 25, 1995
SIROS NIP       BORCAL           Sept. 1994      July 25, 1995

DS =  downwelling solar or global
DD =  downwelling diffuse
PSP = precision spectral pyranometer
NIP = normal incidence pyrheliometer for direct-beam solar
BORCAL = broadband outdoor radiometer calibration, conducted by the National 
         Renewable Energy Laboratory (NREL)
Eppley = denotes calibrations in an integrating sphere by the manufacturer,
         Eppley Laboratory, Inc.

The BORCAL calibrations result in estimates of solar irradiances that are 
typically 1.5% larger than Eppley calibrations, a situation which is under 
investigation by Tom Stoffel at NREL and John Hickey at Eppley.  They are 
working together to document this difference.  This difference helps to 
explain the larger estimates of global irradiance measurement with the BSRN 
sensor than with the SIROS sensor.  

A greater source of concern than over differences between the NREL versus the 
Eppley calibrations at this time is the insufficiently frequent recalibrations 
of sensors in operation at the SGP site.  Although the NIPs are expected to 
hold their calibrations for rather long periods of time, the pyranometers 
typically should be recalibrated at least once every 12 months.  Change out 
with freshly calibrated pyranometers and pyrheliometers at the SGP site will 
begin in 1997, with the goal of routinely replacing every pyranometer and 
pyrheliometer with freshly calibrated sensors once every year.  

Data users can inspect metrics provided on the World Wide Web by the SGP site 
scientist team on data quality at the following address:
http://manatee.gcn.uoknor.edu/metrics/METRICS.html

Other observations/measurements impacted by this problem:

Any derived estimates of downwelling solar radiation components using data 
from central facility SIROS or BSRN sensors (for downwelling solar radiation) 
for the time period indicated.

Suggested Corrections of the Problem: (e.g. change calibration factor and 
recompute, flag data with this comment, etc.)

Use of these recommendations by data users.  Ideally, the component sum 
technique would be applied in a value-added product (VAP) implemented at the 
Experiment Center, but this has not been done yet.  In the meantime, users of 
recent data can inspect plots of component sum technique on the World Wide Web 
site noted above.
Measurements:sgpbsrnC1.a1:
  • east longitude for all the input platforms.(lon)
  • Time offset of tweaks from base_time(time_offset)
  • CALCULATED downwelling hemispheric diffuse solar irradiance(psp1)
  • Observed direct-beam normal solar irradiance(nip)
  • Downwelling hemispheric infrared irradiance(psig)
  • altitude above sea levelaltunits(alt)
  • north latitude for all the input platforms.(lat)
  • Observed downwelling hemispheric total solar irradiance (direct+diffuse)(psp2)
  • Time offset from base_time(base_time)

sgpsirosE13.a1:
  • Hemispheric Irradiance, MFRSR(hemisp_narrowband)
  • Downwelling Shortwave Diffuse Hemispheric Irradiance, Ventilated Pyranometer(down_short_diffuse_hemisp)
  • 25 meter Longwave Dome Temperature, Pyrgeometer(up_long_dome_temp)
  • 25 meter Longwave Case Temperature, Pyrgeometer(up_long_case_temp)
  • north latitude for all the input platforms.(lat)
  • Direct Normal Irradiance, NIMFR(direct_norm_narrowband)
  • Ventilated Pyrgeometer Dome Temperature(down_long_dome_temp)
  • Flag fields with *2 returned from callang(flag_ln_error1-24)
  • Data Logger Supply Voltage(logger_volt)
  • Time offset from base_time(base_time)
  • Diffuse Hemispheric Broadband Irradiance, offset subtracted, cosine corrected,
    broadband scale applied(diffuse_hemisp_broadband)
  • east longitude for all the input platforms.(lon)
  • Time offset of tweaks from base_time(time_offset)
  • MFRSR Detector Temperature(mfrsr_temp)
  • Flag fields with *1 returned from callang(flag_zero_divisor1-24)
  • Flag fields with *3 returned from callang(flag_zero_cosine1-24)
  • Shortwave Direct Normal Irradiance, Pyrheliometer(short_direct_normal)
  • Hemispheric Broadband Irradiance, offset and cosine corrected, broadband scale
    factor applied(hemisp_broadband)
  • Downwelling Longwave Diffuse Hemispheric Irradiance, Ventilated Pyrgeometer(down_long_diffuse_hemisp)
  • Direct Normal Irradiance, Uncalibrated Silicon Detector, NIMFR(direct_norm_broadband)
  • Flag fields with *4 returned from callang(flag_nighttime1-24)
  • Sequential data channel number. See channel_explanation global attribute.(channel)
  • altitude above sea levelaltunits(alt)
  • Downwelling Shortwave Hemispheric Irradiance, Ventilated Pyrgeometer(down_short_hemisp)
  • Diffuse Hemispheric Irradiance, MFRSR(diffuse_hemisp_narrowband)
  • Upwelling (10 meter) Longwave Hemispheric Irradiance, Ventilated Pyrgeometer(up_long_hemisp)
  • Upwelling (10 meter) Shortwave Hemispheric Irradiance, Ventilated Pyranometer(up_short_hemisp)
  • Thermistor Excitation Voltage, Data Logger(therm_volt)
  • Ventilated Pyrgeometer Case Temperature(down_long_case_temp)
  • Internal Logger Temperature(logger_temp)


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DQRID : D971224.1
Start DateStart TimeEnd DateEnd Time
07/21/1993023407/21/19930235
Subject:
SGP/BSRN/C1 - 12-hr file of 1993 BSRN data corrupted
DataStreams:sgpbsrnC1.a0, sgpbsrnC1.a1
Description:
EDITOR'S NOTE:  The data referenced in this Data Quality Report
were collected and archived prior to the regular begin date of
ARM data.  These data are available for retrieval by special
request only.  The actual time range to which this DQR applies
is 930510.1511-930510.1611.

Because of power problems and the necessity to reset the power to the
shadow arms, data were lost. The data were not reingested to overcome 
this deficiency, and the 12-hr file bsrn1.930510.1200.cdf has a 59-min 
gap from 15:11 to 16:11.
Measurements:sgpbsrnC1.a0:
  • Average reference voltage(vref)
  • Standard deviation for pyrgeometer thermopile(ssig)
  • Downwelling hemispheric infrared irradiance(psig)
  • north latitude for all the input platforms.(lat)
  • Battery Voltage (of 60m battery) for QA/QC purposes(vbat)
  • Observed direct-beam normal solar irradiance(nip)
  • CALCULATED downwelling hemispheric diffuse solar irradiance(psp1)
  • Standard deviation for pyrgeometer dome thermistor resistance(stdome)
  • Standard deviation for pyrgeometer case thermistor resistance(stcase)
  • Standard deviation for reference(svref)
  • Observed downwelling hemispheric total solar irradiance (direct+diffuse)(psp2)
  • Time offset of tweaks from base_time(time_offset)
  • Time offset from base_time(base_time)
  • east longitude for all the input platforms.(lon)
  • Standard deviation for pyrheliometer(snip)
  • Average pyrgeometer dome thermistor resistance(ptdome)
  • altitude above sea levelaltunits(alt)
  • Standard deviation for shaded pyranometer(spsp1)
  • Standard deviation for unshaded pyranometer(spsp2)
  • Average pyrgeometer case thermistor resistance(ptcase)

sgpbsrnC1.a1:
  • east longitude for all the input platforms.(lon)
  • Time offset of tweaks from base_time(time_offset)
  • CALCULATED downwelling hemispheric diffuse solar irradiance(psp1)
  • Observed direct-beam normal solar irradiance(nip)
  • Downwelling hemispheric infrared irradiance(psig)
  • altitude above sea levelaltunits(alt)
  • north latitude for all the input platforms.(lat)
  • Observed downwelling hemispheric total solar irradiance (direct+diffuse)(psp2)
  • Time offset from base_time(base_time)


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DQRID : D980224.1
Start DateStart TimeEnd DateEnd Time
09/17/1997000010/03/19972359
Subject:
Reference Broadband Shortwave Data at SGP Central Cluster during Fall IOP '97
DataStreams:sgpbsrnC1.00, sgpbsrnC1.a0, sgpbsrnC1.a1, sgpsirsE13.a0, sgpsirsE13.a1, sgpsirosE13.00,
sgpsirosE13.a1
Description:
This is a recommendation for the best available broadband shortwave data from the SGP 
Central Cluster (Lamont, OK) during the Combined Fall IOP, 15 Sept - 5 Oct 1997.

Data available from the SGP Radiometer Calibration Facility (RCF) has lower measurement 
uncertainties than similar measurements from the C1, E-13, and BSRN/BRS platforms.

The RCF data were collected using the same Broadband Outdoor Radiometer CALibration 
(BORCAL) system used for routine calibration of pyranometers and pyrheliometers at the RCF.  
The data are available for 30-second interval.  
Direct normal irradiance measurements from a windowed RCF Absolute Cavity Radiometer 
during the IOP is considered more accurate (+/- 0.5%) than the Normal Incidence Pyrheliometers 
(NIP) at the Central Cluster (+/- 2%).
The Automated Hickey-Frieden cavity radiometer is electrically self-calibrating and 
provides reference standard data suitable for the calibration of the NIPs used at all the CART 
sites.

Diffuse horizontal irradiance is available as the average of two Eppley Precision Spectral 
Pyranometers and is considered slightly more accurate than the downwelling diffuse (DD) 
data from the Central Cluster instruments.
The RCF data will have periodic gaps during the electrical calibration intervals (about 
6-10 minutes, 4 or 5 times per day).
The reference global horizontal (or Downwelling Shortwave - DS) has been computed from the 
measured direct normal and diffuse components:
DS = NIP x Cos(Z) + DD,
where, Z = solar zenith angle.

All RCF data collected during the IOP are on the ARM IOP Web page 
(iop.archive.arm.gov/arm-iop). 
with other data from the Fall97 shortwave IOP.

Additional corrections to the diffuse data may be possible after researching PSP nighttime 
offsets.

Data from C1, E-13, and BSRN/BRS platforms during the SW-IOP '97 are still being 
investigated.
Measurements:sgpbsrnC1.a0:
  • Downwelling hemispheric infrared irradiance(psig)
  • Observed direct-beam normal solar irradiance(nip)
  • CALCULATED downwelling hemispheric diffuse solar irradiance(psp1)
  • Standard deviation for shaded pyranometer(spsp1)
  • Standard deviation for unshaded pyranometer(spsp2)
  • Standard deviation for pyrgeometer thermopile(ssig)
  • Standard deviation for pyrheliometer(snip)

sgpsirsE13.a0:
  • Downwelling Shortwave Hemispheric Irradiance, Ventilated Pyrgeometer(down_short_hemisp)
  • Upwelling (10 meter) Shortwave Hemispheric Irradiance, Ventilated Pyranometer(up_short_hemisp)
  • Downwelling Longwave Hemispheric Irradiance, Ventilated Pyrgeometer(down_long_hemisp)
  • Shaded pyranometer voltage(short_diffuse)
  • Upwelling (10 meter) Longwave Hemispheric Irradiance, Ventilated Pyrgeometer(up_long_hemisp)

sgpsirsE13.a1:
  • Shortwave Direct Normal Irradiance, Pyrheliometer, Standard Deviation(short_direct_normal_std)
  • Downwelling Longwave Hemispheric Irradiance, Ventilated Pyrgeometer, Minima(down_long_hemisp_min)
  • Downwelling Shortwave Hemispheric Irradiance, Ventilated Pyrgeometer, Maxima(down_short_hemisp_max)
  • Downwelling Shortwave Diffuse Hemispheric Irradiance, Ventilated Pyranometer,
    Standard Deviation(down_short_diffuse_hemisp_std)
  • Upwelling (10 meter) Longwave Hemispheric Irradiance, Ventilated Pyrgeometer,
    Minima(up_long_hemisp_min)
  • Downwelling Shortwave Diffuse Hemispheric Irradiance, Ventilated Pyranometer,
    Minima(down_short_diffuse_hemisp_min)
  • Downwelling Shortwave Diffuse Hemispheric Irradiance, Ventilated Pyranometer,
    Maxima(down_short_diffuse_hemisp_max)
  • Upwelling (10 meter) Longwave Hemispheric Irradiance, Ventilated Pyrgeometer,
    Maxima(up_long_hemisp_max)
  • Shortwave Direct Normal Irradiance, Pyrheliometer, Minima(short_direct_normal_min)
  • Upwelling (10 meter) Shortwave Hemispheric Irradiance, Ventilated Pyranometer,
    Maxima(up_short_hemisp_max)
  • Upwelling (10 meter) Longwave Hemispheric Irradiance, Ventilated Pyrgeometer,
    Standard Deviation(up_long_hemisp_std)
  • Downwelling Shortwave Hemispheric Irradiance, Ventilated Pyrgeometer(down_short_hemisp)
  • Upwelling (10 meter) Shortwave Hemispheric Irradiance, Ventilated Pyranometer(up_short_hemisp)
  • Downwelling Longwave Hemispheric Irradiance, Ventilated Pyrgeometer, Standard
    Deviation(down_long_hemisp_std)
  • Downwelling Shortwave Hemispheric Irradiance, Ventilated Pyrgeometer, Minima(down_short_hemisp_min)
  • Upwelling (10 meter) Shortwave Hemispheric Irradiance, Ventilated Pyranometer,
    Standard Deviation(up_short_hemisp_std)
  • Shortwave Direct Normal Irradiance, Pyrheliometer, Maxima(short_direct_normal_max)
  • Shortwave Direct Normal Irradiance, Pyrheliometer(short_direct_normal)
  • Downwelling Longwave Hemispheric Irradiance, Ventilated Pyrgeometer, Maxima(down_long_hemisp_max)
  • Downwelling Longwave Hemispheric Irradiance, Ventilated Pyrgeometer(down_long_hemisp)
  • Downwelling Shortwave Hemispheric Irradiance, Ventilated Pyrgeometer, Standard
    Deviation(down_short_hemisp_std)
  • Upwelling (10 meter) Shortwave Hemispheric Irradiance, Ventilated Pyranometer,
    Minima(up_short_hemisp_min)
  • Downwelling Shortwave Diffuse Hemispheric Irradiance, Ventilated Pyranometer(down_short_diffuse_hemisp)
  • Upwelling (10 meter) Longwave Hemispheric Irradiance, Ventilated Pyrgeometer(up_long_hemisp)

sgpbsrnC1.00:
  • Raw data stream - documentation not supported(Raw data stream - documentation not supported)

sgpbsrnC1.a1:
  • CALCULATED downwelling hemispheric diffuse solar irradiance(psp1)
  • Observed direct-beam normal solar irradiance(nip)
  • Downwelling hemispheric infrared irradiance(psig)
  • Observed downwelling hemispheric total solar irradiance (direct+diffuse)(psp2)

sgpsirosE13.a1:
  • Hemispheric Irradiance, MFRSR(hemisp_narrowband)
  • Downwelling Shortwave Diffuse Hemispheric Irradiance, Ventilated Pyranometer(down_short_diffuse_hemisp)
  • Ventilated Pyrgeometer Dome Temperature(down_long_dome_temp)
  • Direct Normal Irradiance, NIMFR(direct_norm_narrowband)
  • Shortwave Direct Normal Irradiance, Pyrheliometer(short_direct_normal)
  • Diffuse Hemispheric Irradiance, MFRSR(diffuse_hemisp_narrowband)
  • Upwelling (10 meter) Longwave Hemispheric Irradiance, Ventilated Pyrgeometer(up_long_hemisp)
  • Ventilated Pyrgeometer Case Temperature(down_long_case_temp)
  • Diffuse Hemispheric Broadband Irradiance, offset subtracted, cosine corrected,
    broadband scale applied(diffuse_hemisp_broadband)
  • Hemispheric Broadband Irradiance, offset and cosine corrected, broadband scale
    factor applied(hemisp_broadband)
  • Downwelling Longwave Diffuse Hemispheric Irradiance, Ventilated Pyrgeometer(down_long_diffuse_hemisp)
  • Direct Normal Irradiance, Uncalibrated Silicon Detector, NIMFR(direct_norm_broadband)
  • Downwelling Shortwave Hemispheric Irradiance, Ventilated Pyrgeometer(down_short_hemisp)
  • Upwelling (10 meter) Shortwave Hemispheric Irradiance, Ventilated Pyranometer(up_short_hemisp)

sgpsirosE13.00:
  • Raw data stream - documentation not supported(Raw data stream - documentation not supported)


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END OF DATA