Top Banner
Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers
51

Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

Dec 18, 2015

Download

Documents

Wilfrid Stevens
Welcome message from author
This document is posted to help you gain knowledge. Please leave a comment to let me know what you think about it! Share it to your friends and learn new things together.
Transcript
Page 1: Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

Version 1003

State of the art of indoor calibration of pyranometers and pyrheliometers

Page 2: Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

2Indoor calibration

Page 3: Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

Main points

• Most field pyranometers are calibrated indoors

• Many procedures for indoor calibration

• Not all optimally connected to ISO 98-3 GUM

• Industry requires straightforward approach

3

Page 4: Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

Industry

• Meteorology - Solar renewable energy • Site assessment• Installation performance• Professionalisation / IEC

4

Page 5: Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

Future

• A few high accuracy outdoor calibrations

• A lot of indoor facilities• Accredited labs

5

Page 6: Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

Conclusion

• Points for discussion• Normal Incidence NI calibration is

preferred (Diffuse Sphere Source DSS not)

• Uncertainty & accuracy of reference can be optimised

• Indoor calibration complies with GUM• Pyrheliometer indoor calibration must

be allowed by ISO

6

Page 7: Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

Myself

• Kees VAN DEN BOS• Director / owner Hukseflux Thermal

Sensors• Last 20 years sensor design

7

Page 8: Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

Hukseflux DR01 pyrheliometer

• Founded 1993

• Thermal sensors

• 15 employees

• 5 radiometry

8

Page 9: Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

9Hukseflux 2010

Page 10: Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

10Reolith thermal properties on moon rover

Page 11: Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

11Snow thermal conductivity

Page 12: Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

My interest

• Hukseflux company cannot work with outdoor calibration

• Our customers want a understandable accuracy statement

• Feedback• More questions than answers

12

Page 13: Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

Background

• Most pyranometers and pyrheliometers have indoor calibration

• Exception: highest accuracy (BSRN, outdoor)

• Exceptions on national level: Japan, China, … (outdoor)

13

Page 14: Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

Background

• Cost, time, weather; outdoor calibration is unacceptable to industry

•DISADVANTAGE: Indoor methods only work with reference type = field type

14

Page 15: Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

Present status (excerpt)

• Eppley, US Weather Bureau: indoor integrating diffuse source

• Kipp, Hukseflux: indoor normal incidence

• EKO: outdoor tracker with collimation tube

• KNMI: indoor (network) and outdoor (BSRN)

15

Page 16: Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

16ISO 9060

Page 17: Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

17ISO 9060

Page 18: Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

Background

• Measurement uncertianty is a function of:

• Characterisation / class • Calibration (+characterisation and

class)• Measurement & maintenance

conditions• Environmental conditions

(+characterisation and class)

18

Page 19: Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

Background

• Indoor calibration covered by ISO 9847

• Present ASME: “Indoor Transfer of Calibration from Reference to Field Pyranometers”

19

Page 20: Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

20ISO 9846

Page 21: Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

21ISO 9847 also indoor

Page 22: Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

22ISO 98-3 GUM

Page 23: Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

Hierarchy of Traceability

• A: Reference calibration (uncertainty)• B: Correction of reference to indoor

conditions (uncertainty)• C: Indoor calibration of field

instrument (uncertainty)• Indoor calibration uncertainty

estimate (A+B+C)• Field measurement uncertainty

estimate

23

Page 24: Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

Hierarchy of Traceability

• A: Reference calibration (uncertainty)• B: Correction of reference to indoor

conditions (uncertainty)• C: Indoor calibration of field

instrument (uncertainty)• Indoor calibration uncertainty

estimate (A+B+C)

24

Page 25: Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

25ISO 98-3 GUM

Page 26: Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

26Hierarchy of traceability

Page 27: Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

27

Page 28: Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

28Indoor calibration Normal Incidence NI

Page 29: Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

29ISO 98-3 GUM

Page 30: Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

30

Page 31: Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

Hierarchy of Traceability

• KNMI TR 235 "uncertainty in pyranometer and pyrheliometer measurements at KNMI in De Bilt".

31

Page 32: Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

Hierarchy of Traceability

• A: Reference calibration (uncertainty)• B: Correction of reference to indoor

conditions (uncertainty)• C: Indoor calibration of field

instrument (uncertainty)• Indoor calibration uncertainty

estimate (A+B+C)• Field measurement uncertainty

estimate

32

Page 33: Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

33

Page 34: Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

34ISO 98-3 GUM

Page 35: Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

NI Hierarchy of Traceability

• A: Reference calibration (uncertainty) (conditions and class)

• B: Correction of reference to indoor conditions (uncertainty)

• C: Indoor calibration of field instrument (uncertainty)

• Indoor calibration uncertainty estimate (A+B+C)

• Field measurement uncertainty estimate (conditions & class)

35

Page 36: Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

Strange…

• Errors in reference calibration re-appear in measurement errors

• Counted double• At least systematic errors (Zero offset

A and directional errors) can be avoided.

36

Page 37: Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

One step back

• Calibration with restricted conditions results in lower uncertainty

• See yesterday’s presentation by Ibrahim Reda

37

Page 38: Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

One step back

• Present reference works well if calibrated pyranometers are used:

• Outdoor / unventilated• At same latitude

38

Page 39: Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

39

Page 40: Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

One step back

• Present approach does NOT work well calibrated if instruments are used:

• As indoor reference• At different latitudes• Ventilated

40

Page 41: Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

Typical secondary standard calibration• Irradiance 800 W/m2

• 40 to 60 degrees angle of incidence, + / - 30 degrees azimuth• Zero offset A: -9 +/- 3 W/m2 (larger

than ISO9060)• Directional: +/- 10 W/m2 @ 1000

W/m2 , now estimated +/- 5 W/m2

41

Page 42: Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

Typical calibration

• PMOD specified uncertainty +/- 1.3%• Systematic error -1%? Type B.

42

Page 43: Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

NI reference improved

• Restricted conditions• Zero offset A: -9 +/- 3 W/m2 (larger

than ISO9060)• Directional: +/- 10 W/m2

• Solution 1: ventilation• Solution 2: single angle of incidence

43

Page 44: Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

For consideration

• Japanese collimated tube with tilt correction and ventilation

• Tilted sun-shade method

44

Page 45: Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

45

Page 46: Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

Diffuse Sphere Source DSS

• Uniformity of sphere top-edge (experimental -13%)

• Weighing for non uniform source requires weighing of reference with source

• Diffuse sphere: weighing requires weiging of field instrument with source. Complicated!

• Normal incidence: weighing of field instrument is not necessary

46

Page 47: Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

DSS Hierarchy of Traceability

• A: Reference calibration (uncertainty) (conditions and class)

• B: Correction of reference to indoor conditions (uncertainty)

• C: Indoor calibration of field instrument (uncertainty) (conditions and class)

47

Page 48: Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

DSS Hierarchy of Traceability

• Indoor calibration uncertainty estimate (A+B+C)

• Field measurement uncertainty estimate (conditions & class)

• Additional uncertainty under C compared to NI calibration

• Bottom line: DSS has less restricted conditions than NI

48

Page 49: Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

49

Page 50: Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

Conclusion

• Indoor calibration offers only acceptable solution for manufacturers and “general users” in solar industry

• Indoor calibration fits within ISO 98-3 GUM

• detailed statements about field measurement still need to be agreed upon

50

Page 51: Version 1003 State of the art of indoor calibration of pyranometers and pyrheliometers.

Conclusion

• Indoor calibration: Normal Incidence calibration is preferred (Diffuse Sphere Source is not)

• Accuracy and precision of reference can be optimised to serve as indoor calibration reference (restricted: single angle, ventilated)

• Pyrheliometer indoor calibration must be added /allowed by ISO

51