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Traceable Torque Measurement under Rotation in Nacelle Test Benches : A Good Practice Guide

Abstract

Torque is an important measurand for the efficiency determination of wind turbine drive trains on nacelle test benches. The recent developments in the wind industry have led to torque measurements larger than 1 MN m. To ensure reliability of wind turbines and accelerate the development process and therefore the market launch of wind turbines, a traceable torque measurement is required. To trace torque measurement to national standards, a calibration procedure for torque measurement under rotation in nacelle test benches was developed. For the method developed, a torque transfer standard is deployed to realise traceable torque measurement in the MN m range. This good practice guide comprises the calibration procedure developed including general requirements on the performance of a torque calibration in nacelle test benches and the calibration set-up. Moreover, any preparatory work and tests as well as the execution of the calibration measurements itself are described. To obtain a calibration result including a measurement uncertainty for the torque measurement in a nacelle test bench, guidelines for the evaluation of the calibration measurements are given. This guide has been produced within the EURAMET project entitled “Torque measurement in the MN m range”. More information about this collaborative research project can be found on the project’s website https://www.ptb.de/emrp/ind14-home.html.

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Traceable Torque Measurement under Rotation in Nacelle Test Benches : A Good Practice Guide

Author: Weidinger, Paula,Foyer, Gisa
Publisher: Physikalisch-Technische Bundesanstalt (PTB)
Year: 2019
DOI: 10.7795/530.20190111
Source: https://oar.ptb.de/files/download/681c51a253218de84f08e73d
T aceable To que Measu emen unde
Ro a ion in Nacelle Tes Benches
– A Good P ac ice Guide –
Paula Weidinge
Gisa Foye
Physikalisch-Technische Bundesans al (PTB), 2019
2 DOI: h ps://doi.o g/10.7795/530.20190111
This guide has been p oduced wi hin he EURAMET p ojec en i led To que Measu emen in he MN m
1
ange. Mo e in o ma ion abou his collabo a i e esea ch p ojec can be ound on he p ojec ’s websi e
h ps://www.p b.de/em p/ind14-home.h ml. The aim o his guide is o p o ide p ac ical in o ma ion and
ad ice abou o que measu emen and especially abou o que calib a ion in nacelle es benches o
nacelle es bench ope a o s.
Disclaime
Any men ion o comme cial p oduc s wi hin his guide is o in o ma ion only; i does no imply
ecommenda ion o endo semen by he pa ne s in his p ojec .
The iews exp essed in his guide a e hose o he au ho s and o he EMPIR 14IND14 p ojec eam.
Acknowledgemen o unding
The p oduc ion o his guide was unded by he Eu opean Me ology P og amme o Inno a ion and
Resea ch (EMPIR). The EMPIR ini ia i e is co- unded by he Eu opean Union’s Ho izon 2020 esea ch
and inno a ion p og amme and he EMPIR Pa icipa ing S a es.
Au ho ship
P epa a ion o his guide was led by Paula Weidinge and Gisa Foye o he Physikalisch-Technische
Bundesans al (PTB), B aunschweig (Ge many) wi h ex ensi e inpu om all membe s o he EMPIR
14IND14 p ojec eam. The discussion and inpu o all he pa ne s in he p ojec and hei colleagues
a e g ea ly app ecia ed.
Sugges ion o he quo a ion o he e e ences
Weidinge , Paula and Foye , Gisa, 2019. T aceable To que Measu emen unde Ro a ion in Nacelle
Tes Benches: A Good P ac ice Guide. Physikalisch-Technische Bundesans al (PTB).
DOI: h ps://doi.o g/10.7795/530.20190111
This documen and all pa s con ained he ein a e p o ec ed by copy igh and a e subjec o he C ea i e
Commons use license CC by 4.0 (h ps://c ea i ecommons.o g/licenses/by/4.0/).
P ojec logo
All copy igh and ela ed o neighbou ing igh s o his logo a e wai ed using he CC0 Public Domain
Dedica ion (h ps://c ea i ecommons.o g/publicdomain/ze o/1.0/).
DOI: h ps://doi.o g/10.7795/920.20190111
1
The uni o o que can also be w i en as MN·m.
14IND14 – To que Measu emen in he MN·m ange Good P ac ice Guide
DOI: h ps://doi.o g/10.7795/530.20190111 3
Con en s
1 In oduc ion 4
1.1 Glossa y 4
1.2 Symbols and hei meaning 4
2 Calib a ion se -up 6
2.1 Place o measu e he e e ence o que 6
2.2 To que ans e s anda d 6
2.3 Da a acquisi ion 7
2.3.1 Ampli ie and il e se ings 7
2.3.2 Timewise synch onisa ion o di e en da a se s 7
2.4 Example o a se -up 8
3 Pe o ming a o que calib a ion 11
3.1 P epa a o y ope a ions and es s 11
3.2 Ambien and bounda y condi ions 12
3.3 Signal e alua ion 13
3.4 De e mina ion o he ze o signal 13
3.4.1 S a ic ze o-poin de e mina ion 14
3.4.2 Ro a ional ze o-poin de e mina ion 14
3.5 Quasi-s a ic o que calib a ion 15
3.6 Cha ac e isa ion maps 15
3.7 C oss alk e ec s 17
3.8 Calib a ion in e al 18
4 E alua ion o he calib a ion esul including a measu emen unce ain y 19
4.1 E alua ion o he ansduce o be calib a ed 19
4.1.1 Rela i e indica ion de ia ion 19
4.1.2 Rela i e epea abili y 20
4.1.3 Rela i e esolu ion 20
4.1.4 Rela i e e e sibili y 21
4.2 Measu emen unce ain y 21
4.2.1 Measu emen condi ions 21
4.2.2 Unce ain y con ibu ion o he esolu ion 22
4.2.3 Unce ain y con ibu ion o he epea abili y 22
4.2.4 Unce ain y con ibu ion o he ans e s anda d 23
4.2.5 Expec ed alue o he indica ion de ia ion 23
4.2.6 Example o an unce ain y calcula ion 23
5 Calib a ion ou pu and bene i o he es bench ope a o 24
Glossa y 25
6 Re e ences 26
4 DOI: h ps://doi.o g/10.7795/530.20190111
1 In oduc ion
P io o he ma ke launch o wind u bines (also called nacelles), la ge gea boxes and gene a o s,
ex ensi e es s, which can be pe o med on a nacelle es bench, a e o g ea impo ance. One such
es is he e iciency de e mina ion o he de ice unde es . Fo di ec e iciency de e mina ion, he
mechanical inpu di ec ly a he lange o he de ice unde es and he elec ical o mechanical ou pu
o he de ice unde es a e o be measu ed. While he ou pu can al eady be measu ed wi h a su icien
unce ain y, measu ing he inpu consis ing o o que and o a ional speed poses a p oblem. A b oad
a ie y o measu ing ins umen s is a ailable o measu ing o a ional speeds. The o que ha appea s
in nacelle es benches, howe e , anges up o se e al MN m and canno easily be de e mined due o
he lack o aceabili y possibili ies. This good p ac ice guide in oduces a me hod o acing la ge o que
measu emen up o 5 MN m in nacelle es benches using a o que ans e s anda d.
This good p ac ice guide comp ises he ollowing sec ions. A lis o he gene al equi emen s on he
pe o mance o a o que calib a ion in nacelle es benches including he calib a ion se -up is gi en in
sec ion 2. A desc ip ion o he p epa a o y wo k, es s and ins uc ions on a quasi-s a ic o que
calib a ion and a o que calib a ion using so-called cha ac e isa ion maps o co e he en i e ope a ion
ange o a nacelle es bench as pa o he pe o mance o a o que calib a ion a e ou lined in sec ion 3.
Guidelines o he e alua ion o he calib a ion esul s including he de e mina ion o a measu emen
unce ain y a e in oduced in sec ion 4. Sec ion 5 again s a es he bene i s o aceable o que
measu emen in nacelle es benches o he ope a o s o he es benches and he easibili y o he
calib a ion esul s.
Fu he in o ma ion abou unde s anding measu emen and measu emen unce ain y can be ound in
he Guide o he exp ession o unce ain y in measu emen (GUM) [7] and he In e na ional Vocabula y
o Me ology (VIM) [5]. Gene al in o ma ion abou ope a ing p ocedu es in calib a ion labo a o ies is
gi en in DIN 17025 [2], while in o ma ion abou s a ic o que calib a ion can be aken om
EURAMET cg-14 [6], one o he Eu opean calib a ion guidelines.
1.1 Glossa y
We ha e p o ided a glossa y o echnical e ms ha a ise in he ollowing desc ip ion o a o que
calib a ion in nacelle es benches a he end o his documen .
1.2 Symbols and hei meaning
Impo an symbols and hei meaning ega ding o que calib a ion in nacelle es benches a e lis ed in
Table 1.
Table 1 Symbols and hei meaning.
Symbol
Uni
Meaning
a
%
Rela i e esolu ion o he o que measu ing ins umen in he es bench
aF
%
Rela i e esolu ion o he o que measu ing ins umen in he es bench unde
load
aZ
%
Rela i e esolu ion o he o que measu ing ins umen in he es bench a e
load elease
b
%
Rela i e epea abili y o he o que measu ing ins umen in he es bench
sample
Hz
Sampling equency o he DAQ
HNTB/TTS
% H
Rela i e humidi y measu ed close o he o que measu emen ins umen in he
es bench (NTB) and close o he o que ans e s anda d (TTS)
k
-
Ampli ica ion ac o o calcula e he expanded unce ain y based on he
combined unce ain y
l
-
In ege numbe o e olu ions ha a e a e aged o e
M
kN m
Inc easing o que load indica ed by he o que ans e s anda d
M'
kN m
Dec easing o que load indica ed by he o que ans e s anda d
Mi
kN m
Inc easing o que load indica ed by he o que measu ing ins umen in he es
bench
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Mi
'
kN m
Dec easing o que load indica ed by he o que load in he es bench
Mi



,M

kN m
A i hme ic mean o se e al measu emen s o Mi and M a he same load s ep
Mi,0
kN m
Residue indica ion o he o que measu emen ins umen in he es bench a e
load elease
ML
kN m
To que load s ep
nmax
min-1
Maximum o a ional speed o he es bench conside ing he de ice unde es
nNTB
min-1
Ro a ional speed measu ed in he es bench
n
NTB
min-1
A i hme ic mean o he measu emen o o a ional speed
q

%
Rela i e indica ion de ia ion o he o que measu ing ins umen in he es bench
a e aged o e se e al epe i ions
q
j
%
Rela i e indica ion de ia ion o he o que measu ing ins umen in he es bench
pe load cycle
qmax
%
Maximum alue o q a each load s ep
qmin
%
Minimum alue o q a each load s ep
kN m
Resolu ion o he o que measu ing ins umen in he es bench
o
°
En isioned signal esolu ion pe o a ion
S
mV/V
Measu emen signal
Sze o. o
mV/V
Ro a ional o que ze o signal
Sze o,s a
mV/V
S a ic o que ze o signal
dwell
s
Dwell ime be o e measu emen
hea
s
Time o hea up all componen s un il s able condi ions a e eached
meas
s
Measu emen ime depending on he minimum o a ional speed and he numbe
o e olu ions ha a e a e aged o e
amp
s
Time o amp up o down o que o o a ional speed
s ep
s
To al measu emen ime pe o que s ep
uc
%
Combined absolu e measu emen unce ain y
ui
%
Unce ain y componen
u ep
%
Unce ain y componen due o he epea abili y
u es
%
Unce ain y componen due o he esolu ion
us d
%
Unce ain y componen due o he deployed o que ans e s anda d
U
%
Expanded absolu e measu emen unce ain y
%
Rela i e e e sibili y o he o que ansduce in he es bench
ϑNTB/TTS
°C
Tempe a u e measu ed close o he o que measu emen ins umen in he es
bench (NTB) and close o he o que ans e s anda d (TTS)

6 DOI: h ps://doi.o g/10.7795/530.20190111
2 Calib a ion se -up
Due o se e al cons ain s on nacelle es benches, he ope a o s use di e en me hods in di e en
places o measu e he inpu o que o he de ice unde es . An example o a nacelle es bench including
he possible posi ions o measu ing o que is depic ed in Figu e 1.
In nacelles, he main axis is he x-axis. Consequen ly, he main o que measu ed in nacelle es benches
is Mx. Al hough he main axis o o que measu emen in me ology is he z-axis, in he ollowing
desc ip ion and ins uc ions, he main axis is he x-axis and he main o que o be measu ed is Mx since
his good p ac ice guide is di ec ed a es bench ope a o s.
Figu e 1 Examples o o que measu emen op ions in es benches and he coo dina e sys em o a nacelle and,
he e o e, he es bench [9].
2.1 Place o measu e he e e ence o que
To de e mine he e iciency o a de ice unde es using he di ec measu emen me hod by de e mining
he inpu and ou pu o he de ice unde es , he o que should ideally be measu ed di ec ly a he
connec ion lange be ween he es bench and he de ice unde es . In mos es benches, specially
designed adap e s a e equi ed o ins all his addi ional o que ansduce o measu e he e e ence
o que. A calib a ion o he es bench is no possible wi hou a de ice unde es , because only hen is
a o que gene a ion possible. Fo a calib a ion o he ypical es ing ange ( o que and o a ional speed)
o he es bench, a sui able es objec ep esen ing equen ly es ed objec s is o be ins alled on he
es bench. Ideally, his es objec p o ides ull access o i s con ol sys em o allow he ini ia ion o
se e al con ol scena ios dependen on he con olled change o elec ical b aking powe asse ed by
he gene a o .
All o que ansduce s, he e e ence o que ansduce as well as he o que ansduce in he es
bench, mus be aligned e y p ecisely o minimise pa asi ic pe manen loads such as longi udinal and
la e al o ces (Fx, Fy and Fz) and bending momen s (My and Mz) on he o que ansduce . Possible
misalignmen s a e caused by a lack o plana i y on he adap e s, a lack o concen ici y o he en i e
d i e ain, and a w ong dis ance be ween he load applica ion sys em and he de ice unde es .
2.2 To que ans e s anda d
Fo measu ing he e e ence o que, o which he o que measu emen in a es bench is hen compa ed,
a so-called o que ans e s anda d is needed. A ans e s anda d is a measu emen gauge ha bea s
a de ined ela ion be ween a physical quan i y, which in his case is o que, and a uni o measu emen ,
he e kN m. This o que ans e s anda d is o be calib a ed acco ding o EURAMET cg-14 [6], a
Eu opean calib a ion guide o DIN 51309 [3], he Ge man o que s anda d.
A o que ans e s anda d has o mee se e al equi emen s. Fi s , he ans e s anda d mus ha e a
su icien measu emen ange o co e he ope a ional o que ange o he es bench, and i is o be
calib a ed o e his measu emen ange. The bes physical p inciple wo king in he MN m o que ange
is he de ec ion o s ains by means o al e na ing elec ical esis ance using s ain gauges. The s ain
gauges a e glued o a de o ma ion body made o s eel. To gain he equi ed s i ness o he ans e
P ime mo e Load applica ion
sys em Main gea box Gene a o
(load machine)
De ice unde es
To que based
on elec ical
powe and
o a ional speed
To que based on
elec ical powe
and o a ional
speed
To que on
low speed
sha
To que on low
speed sha
wi h addi ional
loads
To que on
high speed
sha
z
y
x
14IND14 – To que Measu emen in he MN·m ange Good P ac ice Guide
DOI: h ps://doi.o g/10.7795/530.20190111 7
s anda d’s de o ma ion body and a su icien sensi i i y a he same ime, a hollow sha - ype
de o ma ion body is bes (p ojec esul aken om [10]).
Mo eo e , he ans e s anda d mus wi hs and he occasionally occu ing addi ional mechanical loads
c ea ed by he load applica ion sys em as i is ins alled di ec ly a he hub lange o he de ice unde es
and is, he e o e, exposed o all simula ed wind loads caused by he load applica ion sys em. E en when
no explici addi ional loads a e applied o he d i e ain, he load applica ion sys em deploys loads o
s abilise he d i e ain, leading o powe losses and addi ional ic ion o que along he d i e ain du ing
o a ion. Fo in o ma ion abou hese addi ional loads and o su eillance easons, he ans e s anda d
should be equipped wi h addi ional measu ing b idges o sense bending momen s, and longi udinal and
la e al o ces. Addi ional knowledge abou he beha iou o he ans e s anda d unde al e na ing
empe a u e (and humidi y) is ad an ageous, since he ambien condi ions in a es bench do no comply
wi h he labo a o y condi ions du ing he calib a ion o he ans e s anda d.
In gene al, he ans e s anda d has o mee special equi emen s ega ding i s dimensions and weigh .
These equi emen s a e no only limi ed by he es benches, bu also by he a ailable o que calib a ion
machine ha is used o cha ac e ise he o que ansduce and lead o i being a ans e s anda d. In
o de o induce he o que load up o se e al MN m co ec ly and o ensu e he easy moun ing o he
ans e s anda d, a lange wi h bo e holes o bol s is an app op ia e ype o connec ion. As men ioned
abo e, his migh call o specially designed adap e s o ins all he ans e s anda d in he es bench.
2.3 Da a acquisi ion
A imewise synch onised da a eco ding o he o que measu ed by he ansduce o he es bench and
by he ans e s anda d can be ealised ei he by one sha ed o by wo synch onised da a acquisi ion
sys ems.
Rega dless o he da a acquisi ion sys em used, all eco ded da a should be imes amped, and bo h he
s a and end ime o he measu emen a e o be documen ed. O he han o s a ic calib a ions, he
signals a e o be eco ded con inuously o enable an in es iga ion o he angula accele a ion and i s
impac on he o que signals. The quan i ies o be measu ed du ing a calib a ion a e lis ed in Table 2.
Table 2 Quan i ies o be measu ed o a o que calib a ion in es benches.
Quan i y o be measu ed
Symbol
Reading
Uni
To que measu ed by he ansduce in he es bench
Mi
mV/V
kN m
Ro a ional speed measu ed by ins umen s in he es bench o he TTS
nNTB
V
min-1
To que measu ed by he ans e s anda d
M
mV/V
kN m
Tempe a u e measu emen close o he es bench ansduce and he
ans e s anda d ( emp. meas. inside he ans e s anda d)
ϑNTB,
ϑTTS
V
°C
Humidi y measu emen close o he es bench ansduce and he
ans e s anda d (humid. meas. inside he ans e s anda d)
HNTB,
HTTS
V
% H
Tempe a u e ϑ and humidi y H a e o be measu ed as close o bo h o que ansduce s as possible.
Ideally, empe a u e and humidi y a e measu ed inside he ans e s anda d, whe e he s ain gauges
a e loca ed, and no only ce ain empe a u e poin s bu also he empe a u e g adien s o e he
ansduce s and he adjacen componen s a e o be eco ded. All ansduce measu emen signals
should be co ec ed o changes in he en i onmen al condi ions.
2.3.1 Ampli ie and il e se ings
All signals should be eco ded using an adequa e sampling equency aking he o a ional speed nNTB
and he en isioned esolu ion o o bo h o que signals and he o a ional speed in o accoun . The
esolu ion aimed a is o = 1° o he maximum o a ional speed nmax .
The lowes limi o he sample equency sample can be calcula ed acco dingly:
sample ≥ nmax / o ⋅ 360°
,
(1)
whe e he sampling equency sample is in Hz and he o a ional speed nmax is in s-1. Fu he mo e, a low
pass il e should be implemen ed o a oid aliasing e ec s.
2.3.2 Timewise synch onisa ion o di e en da a se s
To synch onise all componen s o one da a acquisi ion sys em o wo di e en da a acquisi ion sys ems
including all hei componen s, ei he a collec i e ime se e , whe e all associa ed componen s use he
same ne wo k ime p o ocol o a simple synch onisa ion signal, which is eco ded and imes amped by
he di e en componen s and da a acquisi ion sys ems, can be deployed. Conce ning he accu acy,
bo h me hods a e su icien .
8 DOI: h ps://doi.o g/10.7795/530.20190111
When assigning he squa e-wa e me hod o synch onise he da a se s, he squa e-wa e signal is used
o shi he da a in pos -p ocessing and o e ase he empo al shi be ween he wo da a se s. The
squa e-wa e can ha e, e.g., an ampli ude o u
sync=±5 V and a equency o squa e = 0.2 Hz. While a
ough alignmen o he da a se s is achie ed by he logged s a ime and by dis inc i e signal changes
as shown in Figu e 2a), he ine synch onisa ion is based on he squa e-wa e signal, which is depic ed
in Figu e 2b).
An ad an age o he imewise synch onisa ion using a squa e-wa e signal is i s easy implemen a ion in
di e en es benches wi h all kinds o da a acquisi ion sys ems.
Figu e 2 Timewise synch onisa ion o he da a se s o he o que ans e s anda d and he nacelle es bench
using an ideal squa e-wa e signal, which is eco ded by bo h da a acquisi ion sys ems, o a p ecise
alignmen o he di e en da a se s.
2.4 Example o a se -up
In he example o a calib a ion se -up in Figu e 3, he o que ans e s anda d ha measu es he
e e ence o que is placed di ec ly a he hub lange o he de ice unde es as equi ed.
Mo eo e , an o e iew o he equi emen s on he ans e s anda d based on a su ey o es bench
ope a o s wi hin he EMPIR 14IND14 p ojec is lis ed in Table 3, while he gene al equi emen s
ega ding he dimensions and he weigh o he ans e s anda d a e lis ed in Table 4.
Figu e 3 The e e ence o que ansduce o calib a e he o que measu emen in a nacelle es bench is ins alled
di ec ly a he hub lange o he de ice unde es , whe e he mechanical inpu o he de ice unde es is
o be de e mined (4 MW nacelle es bench o he Cen e o Wind Powe D i es a RWTH Aachen).
To que
ansduce Re e ence o que
ansduce
Mo o
Load applica ion
sys em
Nacelle
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Table 3 Requi emen s o he RWTH Aachen es bench on o que ans e s anda ds o calib a ing nacelle es
benches ega ding he ca ying capaci y aken om [8].
To que
Nominal o que
kN m
± 6000
Maximal o que
kN m
± 7000
To que measu emen
accu acy
%
0.1
Fo ces and momen s
Pa asi ic loads
Ope a ing loads
Fo ces (Fx, Fy, Fz)
kN
± 100, ± 100, ± 100
± 1450, ± 2000, ± 2000
Maximum o ces (Fx, Fy, Fz)
kN
± 100, ± 100, ± 100
± 2000, ± 3000, ± 3000
Momen s (My, Mz)
kN m
± 100, ± 100
± 7500, ± 7500
Maximum momen s (My, Mz)
kN m
± 100, ± 100
± 15000, ± 15000
Fo ces/momen s mus be ansmi ed
Requi emen
Measu emen o o ces/momen s
Op ional
Li ecycles
S a ic s ess assessmen
(cycles @ max. o que)
5000
Fa igue s ess assessmen
(cycles @ max. o que)
Failsa e
1012
Kinema ic
Nominal o a ional speed
min-1
12
Maximum o a ional speed
min-1
25
Measu emen du ing o a ion
Requi emen
Measu emen in bo h o a ional di ec ions
Requi emen
Table 4 Dimensional equi emen s o PTB’s 1.1 MN m o que s anda d machine on a o que ansduce o be
calib a ed and, a e wa ds, o be deployed o calib a e he o que measu emen ins umen in he nacelle
es benches o RWTH Aachen.
Dimensions
Maximum lange diame e o calib a ion machine
m
1.25
Maximum lange diame e o es bench
m
4.5
Minimum leng h o calib a ion machine
m
0.6
Maximum leng h o calib a ion machine
m
2.2
Maximum weigh o calib a ion machine
2
Flanges: h ough-hole
Requi emen
• 30 x M36 on bol ci cle Ø 900 mm
Requi emen
• Fo es benches, an adap e is equi ed
Op ional
Addi ionally, he e is a lis o me ological equi emen s on he beha iou o he ans e s anda d in
Table 5.
Table 5 Me ological equi emen s on a o que ans e s anda d o become an adequa e o que ans e s anda d.
Me ological pa ame e s
Non-linea i ies
≤ ± 0.05 %
Hys e esis
≤ 2.9·10-5 mV/V
In e pola ion de ia ion
≤ |0.019| %
D i o e ime
≤ 8·10-3 %
C eep (sho e m c eep)
≤ |3·10-3| %
An example o a o que ans e s anda d o nacelle es bench calib a ion is shown in Figu e 4. This
ans e s anda d is owned by PTB, he na ional me ology ins i u e o Ge many, and was p oduced by
Ho inge Baldwin Mess echnik GmbH. I has a measu emen ange o 5 MN m and is s a ically
calib a ed up o 1.1 MN m wi h an expanded ela i e unce ain y o 8.8·10-4 (k = 2) acco ding o
DIN 51309 (which is compa able o EURAMET cg-14) using he wo ld’s la ges o que s anda d machine
loca ed a PTB. Due o he e y small non-linea i ies o he o que ans e s anda d, a linea eg ession
cu e was asce ained o clockwise o que load applied in inc easing and dec easing s eps:
M = 3851.1 kN m/(mV/V) ⋅ S
.
(2)
Abo e 1.1 MN m, a calib a ion is no possible. To p edic he ela ion be ween he ou pu signal and he
applied o que, including a p edic ed measu emen unce ain y aking he p edic ion i sel in o accoun ,
an ex apola ion me hod was de eloped.
16 DOI: h ps://doi.o g/10.7795/530.20190111
So-called cha ac e isa ion maps p o ide a simple solu ion o ec i ying his p oblem. A simila p ocedu e
o his has been sugges ed o o a o y powe measu emen [1].
Mos es benches ha e a de ined main di ec ion o o a ion. Fo hese es benches, only one di ec ion
o o que load is o be calib a ed. Howe e , i downwind nacelles a e es ed on he es bench, bo h
o que applica ion di ec ions a e o be calib a ed. Mo eo e , since nega i e o que can appea du ing
b aking scena ios, he e ec o applying nega i e o que on he hys e esis beha iou and he ze o e u n
should be analysed o all nacelle es benches.
To de ine he measu emen poin s o he cha ac e isa ion maps, he ypical ope a ing ange o he es
bench, depending on he commonly es ed de ices, is o be lis ed. The ypical ope a ing ange is
depic ed in Figu e 9 in he o m o a blue ec angle. I should be poin ed ou ha he ange o he
cha ac e isa ion map is limi ed by he ins alled de ice unde es du ing he calib a ion measu emen s.
Fo ha eason, he de ice unde es is o be picked acco dingly.
Figu e 9 Schema ic depic ion o a cha ac e isa ion map based on he ypical es ing ange o a nacelle es bench
wi h a uni o m dis ibu ion o he measu emen poin s.
When he e a e no pa icula poin s wi hin he ope a ing ange which need o be calib a ed explici ly,
such as ypical maximum o que loads o ce ain de ices unde es , he load s eps should be sp ead
e enly as shown in Figu e 9 in he o m o he Xs. In gene al, he calib a ion should co e he en i e
ope a ing ange o he es bench by epea ing he s anda d calib a ion wi h di e en combina ions o
o que load and o a ional speed (Figu e 10). To in es iga e he in luence o o a ional speed on he
o que measu emen , he e a e wo di e en ca ego ies o cha ac e isa ion maps: o CM1 (CM1a and
CM1b in Figu e 10), he o que is pe iodically ixed while he o a ional speed is al e ed s epwise; and
o CM2 (CM2a and CM2b in Figu e 10), he o a ional speed is kep cons an pe iodically while he
o que load is inc eased and dec eased. All o ms o he cha ac e isa ion map ha e he same ope a ing
ange. To de e mine he hys e esis o he es bench o que ansduce , each calib a ion poin should
be me wice du ing one load cycle: i s when aising he inc emen and second when a enua ing i
again. A en ion is o be paid o omi ing o a ional speed s eps close o eigen equencies o he sys em,
which would lead o undesi ed dynamic e ec s.
He e again, bo h he o que and o a ional speed can be inc eased o accele a ed espec i ely s epwise
as a amp, a s ep o a sine, whe eby he amp is he mos common one. Mo eo e , i his ype o
combined calib a ion is no su icien , single calib a ions o each ypical load, so-called pa ial ange
calib a ions, can be pe o med. Fo a s a is ical e alua ion o he calib a ion measu emen s, each
cha ac e isa ion map is o be epea ed wice o each load s ep is o be passed a leas ou imes. Should
a calib a ion like his no be possible a all due o a lack o access o he con ol sys em o he de ice
unde es , he calib a ion has o be pe o med in he median o he ypical es ing ange (see Figu e 9c))
wi h a sui able s anda d de ice unde es . Because o he se -up and he pe manen ly ac ing con ol
sys ems in a es bench, he de e mina ion o he ansduce c eep is no possible, which should no
pose a p oblem.
A leas one map pe ca ego y (CM1 and CM2) is o be pe o med in o de o in es iga e he in luence
o he o a ional speed on he o que measu emen . I a closed loop con ol is no possible, hen
pe o ming only CM2 is su icien , since he ep oducibili y o CM1 would no be good wi hou a closed
loop con ol anyway.
To que
Ro a ional
speed
ypical es ing ange
measu emen poin
To que
Ro a ional
speed
To que
Ro a ional
speed

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DOI: h ps://doi.o g/10.7795/530.20190111 17
Figu e 10 Example o di e en load s ep sequences o a calib a ion wi h o que being inc eased (and dec eased)
and o a ional speed being accele a ed and decele a ed a each o que s ep and ice e sa.
3.7 C oss alk e ec s
The assembly p ocess and he in eg a ion o he nacelle in o he es bench a e challenging, because
o he la ge masses and dimensions o nacelles. Fo example, a 5 MW nacelle has he ollowing
dimensions: 6.5 m heigh , 6.5 m wid h and 17 m leng h and a o al mass o 290 . E en a e y accu a e
assembly leads o an axis misalignmen be ween he main sha o he es bench and he hub o he
nacelle. This axis misalignmen may be in he ange o up o 0.5 mm and, he eby, i may gene a e
pa asi ic loads in he o m o o ces (Fx, Fy, and Fz) and bending momen s (My and Mz) unde o a ion.
The con ol sys em o he load applica ion sys em ies o keep hese pa asi ic loads o ze o. Howe e ,
due o he inaccu acy o he con ol sys em, he pe ec limi a ion o he pa asi ic loads o ze o is no
possible in mos cases. Consequen ly, an applica ion o pu e o que du ing he calib a ion is no
possible. Figu e 11 shows examples o he addi ional loads on he o que ans e s anda d wi hin he
a e aging sequence o e an in ege numbe o dis inc o a ions (he e six o a ions).
Addi ional in luences on he o que ansduce a e no desi ed as hey no only ha e an in luence on he
in ended measu ing b idges bu also on he o he measu ing b idges, which causes an unin en ional
signal al e a ion.
Figu e 11 Pa asi ic loads du ing he calib a ion a he o que s ep o 1000 kN m and o a ional speed o 6.5 min-1.
18 DOI: h ps://doi.o g/10.7795/530.20190111
The close su eillance o addi ional loads is, he e o e, necessa y o a oid unwan ed in luences on he
o que measu emen . Howe e , mos pe iodic in luences o addi ional loads can be neglec ed due o
he a e aging o he o que signal.
To pu posely s udy c oss alk in luences on he o que signal, cha ac e isa ion maps simila o Figu e 12
a e sugges ed.
Figu e 12 Schema ic p inciple o in es iga ing he c oss alk in luence on he o que signal caused by addi ional
loads.
3.8 Calib a ion in e al
Fo es benches in ol ed in de elopmen es s o es benches in gene al o in he de elopmen o he
de ices unde es , he calib a ion in e al should no exceed 12 mon hs.
The calib a ion in e al o he o que measu emen ins umen in he es bench highly depends on he
se -up and he usage o he es bench and he quali y p ocedu e in he es bench. Fo es benches,
which a e mainly used o de e mine he e iciency o he de ice unde es , he ecommenda ion o he
calib a ion in e al is a he long a up o 24 mon hs.
A e e e y change o he unde lying eg ession cu e o any main enance o alignmen conce ning he
o que measu emen ins umen , a ecalib a ion is equi ed.
Ideally, a calib a ion a he beginning and a he end o a de ice unde es being assembled and es ed
would be p e e able. In eali y, howe e , he u ilisa ion and ac i i y o he es bench need o be
conside ed as well.
14IND14 – To que Measu emen in he MN·m ange Good P ac ice Guide
DOI: h ps://doi.o g/10.7795/530.20190111 19
4 E alua ion o he calib a ion esul including a measu emen
unce ain y
The se -up o calib a ing a o que ansduce in a es bench by using a o que ans e s anda d is
compa able o a e e ence o que calib a ion machine. In a e e ence o que calib a ion machine, a
calib a ed and e y well-known o que ansduce is deployed o calib a e ano he o que ansduce .
Due o he simila i y o he se -up, he e ec s du ing he calib a ion a e analogous.
O he han he load cycles, which a e based on EURAMET cg-14, he e alua ion o he calib a ion esul
is based on ISO 7500-1 [4]. ISO 7500-1 desc ibes he calib a ion o a o ce measu emen sys em in
ma e ial es ing machines. He e, he deployed me hod does no necessa ily demand ha he exac load
s eps a e me . Ins ead, an indica ion de ia ion be ween he ansduce o be calib a ed and he ans e
s anda d is calcula ed.
Fo he o que calib a ion in es benches, he calib a ion esul is adap ed o he calib a ion esul in
ISO 75100-1 and consis s o :
• he ela i e indica ion de ia ion q,
• he measu emen unce ain y uc o he indica ion de ia ion, and
• he e e sibili y (in case inc easing and dec easing o que load was applied).
The calib a ion esul is no a classi ica ion o he ansduce calib a ed as is common o calib a ions.
The calib a ion esul can be used in he o m o :
• a look-up able ( o co ec he esul by consul ing he able),
• a eg ession cu e ( o co ec he esul in pos -p ocessing), o
• a co ec ion o he unde lying eg ession cu e o he es bench ansduce ( equi es a second
calib a ion o he es bench ansduce using he co ec ed eg ession cu e o de e mine he
measu emen unce ain y).
The e alua ion o an example o a o que calib a ion unde cons an o a ion can be ound in he ollowing
publica ions:
P. Weidinge , G. Foye , S. Kock, J. Gnaue , R. Kumme 2018 P ocedu e o o que calib a ion unde
cons an o a ion in es iga ed on a nacelle es bench in P oc. o Senso en & Messsys eme 2018,
Nu embe g, Ge many
P. Weidinge , G. Foye , S. Kock, J. Gnaue , R. Kumme Calib a ion o o que measu emen unde
cons an o a ion in a wind u bine es bench submi ed o JSSS.
4.1 E alua ion o he ansduce o be calib a ed
The pe o mance o he o que ansduce o be calib a ed can be e alua ed by he ela i e indica ion
de ia ion q, he ela i e epea abili y b, he ela i e esolu ion a, and he de e mina ion o he ela i e
e e sibili y when a calib a ion o dec easing o que is desi ed. All he ollowing subsec ions a e
adap ed om ISO 7500-1.
4.1.1 Rela i e indica ion de ia ion
The ela i e indica ion de ia ion qj(ML) is he de ia ion o he o que measu emen ins umen in he es
bench om he o que ans e s anda d ela i e o he eal o que alue measu ed by he o que ans e
s anda d pe load s ep ML. I is o be calcula ed o each o he a leas wo epea ed load cycles j (1 and
2) o cha ac e isa ion maps:
qj(ML) = Mi,j(ML) - Mj(ML)
Mj(ML) ⋅ 100%
,
(14)
wi h
j = 1,…, n
,
whe e Mi is he inc easing o que load indica ed by he o que measu ing ins umen in he es bench,
and M is he inc easing o que load indica ed by he o que ans e s anda d.
The calib a ion esul is ep esen ed as a ela i e indica ion de ia ion q
(ML), which is he a i hme ic mean
o he ela i e indica ion de ia ion pe epe i ion qj(ML):
q
(ML) = 1
n∑qj(ML)
n
j = 1
.
(15)
Figu e 13 is an example o a depic ion o he ela i e indica ion de ia ion o a quasi-s a ic load cycle
unde cons an o a ion. To assess he calib a ion esul and he in e ela ion be ween he applied o que
20 DOI: h ps://doi.o g/10.7795/530.20190111
and he o a ional speed, no only is he ela i e indica ion de ia ion o be calcula ed, bu also he
s anda d de ia ion o his alue. Depending on he s anda d de ia ion o he epea ed measu emen s,
a dis inc ion be ween he o que de ia ions con ingen on he di e en applied o a ional speeds can be
made.
Figu e 13 Example o indica ion de ia ion o ou epe i ions and a e aged indica ion de ia ion.
4.1.2 Rela i e epea abili y
The quali y o epea ing he o que measu emen s in he es bench is desc ibed by he ela i e
epea abili y b. This ela i e epea abili y is calcula ed o each load s ep sepa a ely and is he di e ence
be ween he maximum indica ion de ia ion qmax and he minimum indica ion de ia ion qmin pe load s ep:
b(ML) = max
j(qj(ML)) - min
j(qj(ML))
.
(16)
The ela i e epea abili y is an impo an con ibu ion o he measu emen unce ain y and an example
o his is illus a ed in Figu e 13.
4.1.3 Rela i e esolu ion
Mos es benches a e s a e o he a and display he applied load digi ally. The e o e, he ocus
ega ding he esolu ion lies on digi al o que displays. In gene al, he esolu ion depends on he
esolu ion o he ampli ie ’s A/D con e e and he da a sa ing o ma . Howe e , i he indica ion
luc ua ion exceeds his esolu ion, he esolu ion is o be summed up by hal he span o he indica ion
luc ua ion. The indica ion luc ua ion is o be de e mined wi h he p ime mo e and he de ice unde
es swi ched on, bu wi h no load applied. To de e mine he indica ion luc ua ion, he signal is o be
a e aged pe e olu ion o e he a e aging sequence as depic ed in Figu e 14, hen he minimum and
maximum o he a e aged signals pe e olu ion a e o be ound and he di e ence is calcula ed.
Subsequen ly, he ela i e esolu ion a is o be de e mined o each load s ep depending on he applied
load:
a(ML) = (ML)
M(ML) ⋅ 100%
,
(17)
wi h
(ML) = max
l l(ML) - min
l l(ML)
2
,
(18)
whe e M is he o que load o he obse ed load s ep (a e aged alues o all epe i ions). The esolu ion
is o be ep esen ed in he same uni as he measu ed o que.
epea abili y
e e sibili y
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Figu e 14 Schema ic igu e on how o de e mine he indica ion de ia ion pe load s ep.
4.1.4 Rela i e e e sibili y
Fo he special case ha a eg ession cu e o dec easing o que load is demanded, he ela i e
e e sibili y o he dec easing load can be de e mined. Howe e , i is o be emphasised ha he
e e sibili y highly depends on he maximum o que load applied be o ehand. To de e mine he ela i e
e e sibili y, he deployed o que ans e s anda d mus be calib a ed o dec easing o que load.
Mo eo e , o he e e sibili y measu emen s, only one dec easing load cycle is o be pe o med.
Based on he de ia ion be ween he o que measu emen alues o inc easing and dec easing load
s eps (Figu e 13), he ela i e e e sibili y is calcula ed:
= M - M'
M

⋅ 100%
.
(19)
4.2 Measu emen unce ain y
As men ioned abo e, he p e ailing calib a ion se -up is compa able o a e e ence calib a ion machine,
whe e he ansduce o be calib a ed is compa ed o a na ional s anda d. Thus, in gene al, o an NTB
calib a ion, he in luences on he ansduce o be calib a ed a e he same as hose in a e e ence o que
s anda d machine bu e en la ge .
The measu emen unce ain y i sel is based on he a o emen ioned ac o s and consis s o he ollowing
unce ain y con ibu ions:
• he esolu ion,
• he epea abili y, and
• he o que ans e s anda d.
All his esul s in he bes expec ed alue o he indica ion de ia ion and he co esponding expanded
measu emen unce ain y. The ollowing e alua ions a e based on ISO 7500-1 and a e adap ed o a
o que calib a ion unde o a ion.
4.2.1 Measu emen condi ions
In gene al, he in luences on he o que ansduce o be calib a ed a e he same as hose in a e e ence
o que s anda d machine bu e en la ge . The Ishikawa diag am in Figu e 15 lis s examples o possibly
occu ing in luences a ec ing he calib a ed o que measu emen in a nacelle es bench.
Mos in luences can be quan i ied and ca ego ised by he a o emen ioned p epa a o y ope a ions and
es s. Addi ionally, all se -up-speci ic e ec s, i.e., misalignmen s and ic ion in di e en componen s a e
di ec ly pa o he calib a ion esul and ha e al eady been conside ed in he measu emen unce ain y
by de e mining he epea abili y.
Eme gency b aking, which may occu and is o be es ed unde no mal es ing condi ions, should be
a oided du ing he calib a ion p ocess. A e eme gency b aking, he es bench is o be ope a ed wi h
maximum o que load in he d i ing di ec ion o a leas 3 min and a new ze o signal is o be de e mined.
In doing so, he hys e esis e ec due o he opposi e o que load is minimised.
1 2 3 4 5 6

22 DOI: h ps://doi.o g/10.7795/530.20190111
In he case ha di e en ampli ie s we e used o he calib a ion o he o que ans e s anda d han o
he calib a ion in he nacelle es bench, he di e ence be ween he di e se ampli ie s is o be accoun ed
o in he measu emen unce ain y o e en he indica ed o que alue.
Because o he signal a e aging o e a ce ain numbe o e olu ions, he dead-weigh in luence on he
o que signal can be neglec ed.
Figu e 15 Ishikawa diag am lis ing he in luences du ing he calib a ion o he o que measu emen in nacelle es
benches.
4.2.2 Unce ain y con ibu ion o he esolu ion
The unce ain y con ibu ion o he ela i e esolu ion o he o que measu emen ins umen in he es
bench u es o each examined load s ep is he squa e oo o he sum o he ollowing componen s
squa ed:
• he unce ain y componen due o he ela i e esolu ion o he o que measu emen ins umen
in he es bench unde load, which is deno ed as aM di ided by 2√3 because o he assump ion
o a ec angula dis ibu ion,
• he unce ain y componen due o he ela i e esolu ion o he o que measu emen ins umen
in he es bench a e load elease, which is deno ed as aZ di ided by 2√3 (same assump ion
o a ec angula dis ibu ion). The ela i e esolu ion o he o que measu emen a e load
elease is pa o he indica ion de ia ion o e e y load s ep because o he a o emen ioned
a ing o he o que alues o e e y load s ep.
The unce ain y con ibu ion o he ela i e esolu ion can be calcula ed o e e y load s ep as ollows:
u es(ML) = √(aM(ML)
2√3)2
+ (aZ
2√3)2
.
(20)
As he ela i e esolu ion a is exp essed in he uni %, he absolu e unce ain y con ibu ion o he ela i e
esolu ion u es is exp essed in % as well.
4.2.3 Unce ain y con ibu ion o he epea abili y
As men ioned be o e, he ela i e epea abili y is conside ed as an unce ain y con ibu ion o he o al
unce ain y o he indica ion de ia ion. The unce ain y con ibu ion o he epea abili y u ep is he
s anda d de ia ion o he bes expec ed alue qi in % and he ela i e mean indica ion de ia ion q
 in %,
whe e n is he numbe o epe i ions pe load s ep:
u ep(ML) = √1
n
(n
- 1) ∑ (q
j
(ML) - q
(ML))2
n
j
= 1
.
(21)
Sampling equency
Dead-weigh
Misalignmen
Humidi y
Tempe a u e/
Temp. g adien s
P essu e
D i
Measu emen unce ain y
En i onmen al
condi ions
C eep
To que ans e
s anda d
Calib a ed o que
in he wind u bine
es bench
S abili y
Resolu ion
EMC
Measu emen
condi ions
Misalignmen s
Pa asi ic loads LAS
To que in e sion
F ic ion in di . comp.
Ampli ie s To que ansduce
Ze o-poin de ia ion
Repea abili y
Re e sibili y
C eep
Fil e
Negligible
Gene al
e ec s
Se -up speci ic
e ec s
Ro a ional speed
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4.2.4 Unce ain y con ibu ion o he ans e s anda d
The unce ain y con ibu ion o he o que ans e s anda d us d is gi en by he ela i e calib a ion
unce ain y o he ans e s anda d ucal, which is s a ed in i s calib a ion ce i ica e, and addi ional
possible unce ain y con ibu ions (A, B, and C) due o de ia ing empe a u e and humidi y du ing he
calib a ion measu emen s, d i o e ime, and de ia ions because o he deployed combined linea
eg ession cu e o inc easing and dec easing o que load. The unce ain y con ibu ion o he o que
ans e s anda d is calcula ed acco ding o he ollowing:
us d(ML) = √(ucal(ML))2 + A2 + B2 + C2
.
(22)
As he unce ain y con ibu ion o he o que ans e s anda d is shown as a ela i e unce ain y, i is
exp essed as a pe cen age (%).
4.2.5 Expec ed alue o he indica ion de ia ion
The esul o he o que calib a ion is he bes expec ed alue o he mean ela i e indica ion de ia ion
q
(ML) o he o que measu emen ins umen in he es bench. Mo eo e , an expanded measu emen
unce ain y U(ML) belongs o his ela i e indica ion de ia ion, which is he p oduc o he co e age ac o
k and he combined unce ain y uc(ML):
UU(ML) = k ⋅ uc(ML) = k ⋅√∑(uj(ML))2
n
j=1
= k ⋅√(u es(ML))2 +(u ep(ML))2+(us d(ML))2
.
(23)
Addi ional unce ain y con ibu ions may be in luences o he deployed ampli ie s o he o que ans e
s anda d o signi ican in luences o he ic ion o que.
I is ecommended o use a co e age ac o o k = 2. In ce ain cases, k can also be calcula ed based
on he numbe o e ec i e deg ees o eedom as s a ed in he GUM.
Anno a ion: he measu emen unce ain y is an absolu e measu emen unce ain y o he ela i e
indica ion de ia ion, which is ep esen ed in he uni %. The absolu e measu emen unce ain y has he
same uni as i s e e ence alue. Consequen ly, he uni o he absolu e measu emen unce ain y is %.
4.2.6 Example o an unce ain y calcula ion
An example o a calcula ion o he measu emen unce ain y o o que calib a ion unde cons an
o a ion is gi en in P. Weidinge , G. Foye , S. Kock, J. Gnaue , R. Kumme Calib a ion o o que
measu emen unde cons an o a ion in a wind u bine es bench submi ed o JSSS.
This pape co e s a comple e conside a ion o a o que calib a ion unde cons an o a ion in a nacelle
es bench including he measu emen unce ain y budge and he empe a u e di e ence be ween he
calib a ion labo a o y, whe e he o que ans e s anda d was calib a ed, and he condi ions du ing he
nacelle es bench calib a ion. Mo eo e , a de ailed calcula ion o he ela i e indica ion de ia ion o
ou measu emen epe i ions is gi en. The expanded (k = 2) absolu e measu emen unce ain y U(ML)
o he bes expec ed alue o he ela i e indica ion de ia ion is calcula ed including he unce ain y
con ibu ion o he o que ans e s anda d, which comp ises he d i o he ansduce , he empe a u e
in luence and he unce ain y o he ampli ie calib a ion (special case).
24 DOI: h ps://doi.o g/10.7795/530.20190111
5 Calib a ion ou pu and bene i o he es bench ope a o
The esul o a o que calib a ion in nacelle es benches can be exp essed in di e en o ms:
• a look-up able (pos -p ocessing),
• a eg ession cu e (pos -p ocessing), o
• a co ec ion o he o que ansduce s unde lying he ans e cu e (addi ional calib a ion
equi ed a e wa ds).
In gene al, he possibly occu ing indica ion de ia ions in he o que measu emen o a nacelle es
bench can be co ec ed by all he di e en o ms o he calib a ion esul . Mo eo e , he calib a ion gi es
a measu emen unce ain y o he calib a ed ange, which is again a con ibu ion o he measu emen
unce ain y o he e iciency de e mina ion.
Tes bench ope a o s can bene i om knowing he de ia ion be ween hei in e nal o que measu ing
ins umen and a aced na ional o que s anda d and co ec ing his de ia ion o ob ain a mo e accu a e
o que measu emen esul . Fu he mo e, a e a calib a ion, he p ecision including he epea abili y o
he o que measu emen ins umen in he nacelle es bench is de e mined. Based on his, no only can
he e iciency o de ices unde es be de e mined mo e eliably, bu also he da a o alida e simula ions
and he epea able componen es ing gain c edibili y.
Wi h he s anda dised calib a ion o o que measu emen s in nacelle es benches, e iciencies o
de ices es ed on di e en es benches can be compa ed o each o he eliably.
14IND14 – To que Measu emen in he MN·m ange Good P ac ice Guide
DOI: h ps://doi.o g/10.7795/530.20190111 25
Glossa y
• Calib a ion: ope a ion ha , unde speci ied condi ions, in a i s s ep, es ablishes a ela ion
be ween he quan i y alues wi h measu emen unce ain ies p o ided by measu emen
s anda ds and co esponding indica ions wi h associa ed measu emen unce ain ies and, in a
second s ep, uses his in o ma ion o es ablish a ela ion o ob aining a measu emen esul
om an indica ion (VIM 2.39).
• Cha ac e isa ion map: load cycle co e ing he ypical ope a ion ange o a nacelle es bench.
The cha ac e isa ion map is limi ed by he de ice unde es ins alled du ing he calib a ion.
• C oss alk e ec : in luence o addi ional mul i-axial loads no only on he espec i ely in ended
measu ing b idges bu also on he o he measu ing b idges, which causes an unin en ional
signal al e a ion.
• Load cycle: ange o applied load on a measu ing ins umen du ing calib a ion.
• Measu emen unce ain y: non-nega i e pa ame e cha ac e ising he dispe sion o he quali y
alues being a ibu ed o a measu and, based on he in o ma ion used (VIM 2.26).
• To que ans e s anda d: calib a ed and e y well-known o que ansduce , which is used o
ace o que measu emen o he na ional s anda d.
• Ze o signal: o se alue o a ansduce in non-loaded condi ion. The ze o signal is used o a e
all measu emen signals o he ollowing load cycle.