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Lighting design in courtyards: Predictive method of daylight factors under overcast sky conditions

Abstract

The main aim of this article is to offer a quick and precise predictive method for calculating the daylight factor for different points on the floor of square courtyards under overcast sky conditions. First, the calculation of the predictive method of the sky component is established based on earlier studies and Tregenza algorithms. Subsequently a simulation of the daylight factors on the floor of a courtyard of variable size and reflectance is carried out using two lighting computer programs based on different calculation algorithms. Once the daylight factors are calculated, the reflected component, produced by the reflectance of light on the interior surfaces of the venue, is quantified. Finally, a predictive method of the internally reflected component is established, based on the theory of the integrating sphere. Predictive methods of sky and reflected components are used to determine daylight factors in a courtyard.

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Lighting design in courtyards: Predictive method of daylight factors under overcast sky conditions

Author: Acosta García, Ignacio Javier; Navarro Casas, Jaime; Sendra, Juan J.
Publisher: Elsevier
Year: 2014
DOI: 10.1016/j.renene.2014.05.020
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1
Ene gy e iciency and ligh ing design in cou ya ds and a iums: A
p edic i e me hod o dayligh ac o s
Au ho ’s name and a ilia ion:
Ignacio Acos a, Ins i u o Uni e si a io de A qui ec u a y Ciencias de la Cons ucción, Uni e sidad de Se illa.
P o esso PhD. Co esponding Au ho .
Ca men Va ela, Ins i u o Uni e si a io de A qui ec u a y Ciencias de la Cons ucción, Uni e sidad de Se illa.
Resea che .
Juan F ancisco Molina, Ins i u o Uni e si a io de A qui ec u a y Ciencias de la Cons ucción, Uni e sidad de Se illa.
Resea che PhD.
Jaime Na a o, Ins i u o Uni e si a io de A qui ec u a y Ciencias de la Cons ucción, Uni e sidad de Se illa.
P o esso PhD.
Juan José Send a, Ins i u o Uni e si a io de A qui ec u a y Ciencias de la Cons ucción, Uni e sidad de Se illa.
P o esso PhD.
Co esponding Au ho :
Ignacio Acos a, Uni e si y o Se ille, Co esponding Au ho
Tel. numbe : 0034647550654
Email: [email p o ec ed]
Pe manen add ess:
Ins i u o Uni e si a io de A qui ec u a y Ciencias de la Cons ucción, Uni e sidad de Se illa, 41012 Se ille. Spain.
Abs ac
The p ope design o cou ya ds and a iums is key in p o iding su icien dayligh inside buildings as well as majo ene gy
sa ings in elec ic ligh ing. Al hough a sui able design equi es calcula ions using ligh ing simula ion so wa e o complex
algo i hms, a chi ec s lack a quick and p ecise p ocedu e o de e mine p ope design. The aim o his esea ch is he e o e o
o e a as accu a e me hod o de e mining he dayligh ac o o di e en poin s on a ec angula cou ya d o he cen al
space o an a ium, based on he a iable geome y and e lec ance o he inne su aces. Fi s ly, dayligh ac o s a e de ined
using measu emen s in scale models in an a i icial sky and alues ob ained in eal cou ya ds unde eal o e cas skies. The
sky componen is subsequen ly de ined based on ea lie s udies and T egenza algo i hms in o de o quan i y he e lec ed
componen . Following he cu e i ing p ocess, a p edic i e me hod o dayligh ac o s is de ined and compa ed wi h he
p e ious measu es. The compa ison demons a es ha he p edic i e me hod o e s an a e age accu acy o o e 90% based on
a quick and easy calcula ion. Finally, he ene gy sa ing in elec ic ligh ing is quan i ied ollowing he p edic i e me hod
es ablished.
Keywo ds: dayligh ac o , cou ya d, a ium, p edic i e me hod, dayligh au onomy, ene gy sa ing.
2
1. In oduc ion and objec i es
1.1. S a e o he a
The p ope design o cou ya ds and a iums is essen ial o he p o ision o su icien dayligh inside buildings, p oducing a
no iceable educ ion in ene gy consump ion in elec ic ligh ing [1]. Acco dingly, many esea che s ha e ied o de e mine he
implica ions o geome y and quali ies o hese a chi ec u al esou ces in he ene gy pe o mance o buildings [2,3,4],
es ablishing new design p inciples and me ics o assess he use o na u al ligh .
Mo eo e , dayligh ing imp o es isual pe cep ion [5] and p omo es he synch oniza ion o he ci cadian s imulus [6], esul ing
in imp o ed com o and heal h condi ions o occupan s [7] while good cou ya d o a ium design also p o ides imp o ed
he mal com o [8,9] and passi e en ila ion o he en i e building [10].
The s udy o dayligh in cou ya ds and a iums has ex ended om he p ocedu es p oposed in classic ea ises [11] igh up o
he mos cu en esea ch based on compu e simula ions [12,13]. Ea ly pape s on his subjec analyzed sola adia ion in
cou ya ds and a iums and i s in luence on dayligh illuminance, igno ing any o he implica ions in building design. Fo
example, Mohsen’s esea ch [14] de eloped a ma hema ical p ocedu e ha simula es he in e ac ion o sola incidence on
cou ya d loo s. Howe e , due o i s impo ance in ligh ing and he mal com o as well as i s impac in ene gy sa ings he
li e a u e abou cou ya d design has inc eased signi ican ly in he las 10 yea s. In subsequen s udies [15,16,17] he esea ch
ocused on he ene gy e iciency p o ided by p ope cou ya d design, analyzing he ligh ing and he mal beha io o he
building acco ding o he a iables es ablished. Se e al au ho s ha e analyzed he dayligh dis ibu ion on loo s and walls in
a iums [18,19,20] in an a emp o es ablish a p ope design acco ding o di e en a iables. Howe e , mos o his esea ch
was based on speci ic clima e condi ions o geome ic limi a ions, making i di icul o ind a uni e sal me hod which helps o
de e mine he illuminance in cou ya ds o a iums [21].
Dayligh illuminance can be de e mined using wo main me ics: dayligh ac o and dayligh au onomy. The dayligh ac o
(DF) co esponds o he a io o dayligh illumina ion a a gi en poin o ha o he ligh ecei ed on a ho izon al plane om an
unobs uc ed o e cas sky [22]. Nowadays, his is he mos widesp ead me ic in he s udy o dayligh ing [23,24,25]. The
dayligh ac o is conside ed a s a ic me ic, ha is o say, i depends only on he geome y and quali ies o he a chi ec u e,
since loca ion and o ien a ion a e i ele an in ela ion o an ideal cloudy sky [26]. The e o e, he dayligh ac o ep esen s he
po en ial illuminance a a gi en poin o he wo s case scena io unde o e cas sky condi ions. Mo eo e , dayligh au onomy
(DA), p oposed in 1989 [27] and ede ined by Reinha e al. [28], is de ined as he pe cen age o he yea when a minimum
illuminance h eshold is me by dayligh alone. The e o e, he highe he dayligh au onomy, he lowe he ene gy consump ion
in elec ic ligh ing. Unlike s a ic me ics, dayligh au onomy depends on he wea he condi ions and loca ion o he space, as
well as occupancy hou s and blind con ol by occupan s. Al hough dayligh au onomy can almos ce ainly de ine ene gy
3
sa ings mo e accu a ely han me ics based on s a ic clima e condi ions [29], he g ea e complexi y o his me ic, suppo ed
by a high numbe o a iables, makes he de ini ion o a p edic i e me hod almos impossible. I is o his eason ha mos o
he p edic i e me hods de eloped a e based on he dayligh ac o me ic [21].
As seen in he de ini ion es ablished by he CIE [22], dayligh ac o s can be de e mined as he sum o h ee componen s: he
sky componen (SC), which ep esen s he dayligh p o ided di ec ly om he sky; he ex e nally e lec ed componen (ERC)
p oduced by he e lec ion o he sky componen on he ex e io su aces; and he in e nally e lec ed componen (IRC)
gene a ed by he e lec ion o he sky ligh on he in e io su aces o he space.
The sky componen (SC) a a poin can be ob ained ollowing he analy ical o mula ion ha conside s he luminance
gene a ed by he isible ac ion o an o e cas sky. T egenza [30] de e mined he algo i hms o calcula e he sky componen
h ough e ical and ho izon al openings. The T egenza equa ions a e cu en ly used o assess he accu acy o ligh ing
compu e p og ams [31], and in he speci ic case o cou ya ds and a iums, he equa ions we e simpli ied by Acos a e al. [32]
o p oduce a simple calcula ion p ocedu e wi h an a e age ma gin o e o lowe han 2%.
Usually, he ex e nally e lec ed componen (ERC) is de ined as a ac ion o he sky componen [33], depending on he
dis ance om he ex e io geome y and i s e lec ance. In he case o cou ya ds and a iums, he ERC is negligible, as he e
a e usually no obs uc ions om he zeni hal dayligh .
The quan i ica ion o he in e nally e lec ed componen (IRC) depends on he endless e lec ion o dayligh on he inne
su aces o he cou ya d o a ium, conside ing he e lec ance (how much ligh is e lec ed) and he e lec ion (how ligh is
e lec ed) in each ligh bounce [22]. The e o e, gi en his complex de ini ion, he IRC canno be based on analy ical
calcula ions. Acco dingly, ini ial p edic i e me hods o quan i ying he IRC [34,35] a e based on ligh e lec ion hypo heses,
p incipally on he heo y o he in eg a ing sphe e [36]. Howe e , his heo y was suppo ed by simple geome ies which a e
no applicable o complex a chi ec u e. A ew decades la e , he p edic i e me hods o calcula e he IRC we e based on cu e
i ing p ocedu es, usually on ma hema ical unc ions i ed o he da a ob ained om ligh ing simula ion p og ams, building
moni o ing, o scale models [19,25,37,38]. One o he speci ic p edic i e me hods o de e mine he IRC in cou ya ds was
de eloped by Acos a e al. [39]. Howe e , his me hod is based on a cu e i ing p ocess a gued om he da a collec ed om
ligh ing simula ion p og ams, a oiding compa ison wi h eal o scale models. The simula ion p og ams a e limi ed by a
maximum numbe o e lec ions (in he case o ay- acing p og ams) o by a Lambe ian e lec ion (in he case o adiosi y
p og ams) [40,41], and as a esul hei abili y o ende he eal beha io o ligh is limi ed.
Mo eo e , mos o he s udies on p edic i e me hods men ioned and suppo ed by building moni o ing do no desc ibe he
luminance condi ions o he eal sky [25,38]. This is con i med by he esea ch on his p ocedu e based on scale models
[19,42]. As deduced om p e ious s a emen s, he e is no sole alid way o es ablish a p edic i e me hod o calcula e dayligh
4
ac o s gi en he inaccu acy o he indi idual analysis o he p ocedu es men ioned. The e o e, a solid p edic i e me hod mus
be based on he esul s ob ained om he compa ison o di e en p ocedu es o da a collec ion.
1.2. Aim and objec i es
The aim o his esea ch is o de e mine a p edic i e me hod o he calcula ion o dayligh ac o s o di e en poin s o a
cou ya d o a cen al space o an a ium, based on he geome y o he a chi ec u e and on he e lec ance o he in e io
su aces. As a esul , he p ope design o hese a chi ec u al esou ces could be de ined acco ding o he dayligh ac o s
ob ained, which ep esen he ligh ing com o and ene gy e iciency p oduced by dayligh .
This s udy aims o de ine he p edic i e me hod using he cu e i ing p ocess and he esul s ob ained by means o scale
models in an a i icial sky and eal models unde a eal o e cas sky. Acco dingly, unlike p e ious esea ch, his me hod is
easoned on wo di e en p ocedu es o da a collec ion in o de o es ablish a eliable o mula ion.
Following p e ious pape s on his esea ch [32,39], he me hod desc ibed de e mines he dayligh ac o s o di e en gi en
poin s on a cou ya d o a ium and calcula es he sky and e lec ed componen s independen ly, de ining he con ibu ion o
each componen a each s udy poin . One o he no el aspec s o his me hod is ha he quan i ica ion o he di e en
componen s is ca ied ou sepa a ely, p o iding in o ma ion abou he in luence o he geome y o he a chi ec u e and he
e lec ance o he inne su aces. In addi ion, his new me hod allows he calcula ion o dayligh ac o s a nine di e en poin s
o he loo and walls o he cou ya d o a ium, helping o de e mine he illuminance dis ibu ion inside hese a chi ec u al
esou ces.
As al eady s a ed, unlike p e ious s udies, his new me hod is based on eal measu emen s o achie e mo e accu a e
calcula ions. Acco ding o he me hodology desc ibed below, he sky condi ions we e de e mined using luminance aw iles
calib a ed wi h a luminance me e , achie ing highly p ecise measu emen s o dayligh ac o s unde eal condi ions.
2. Desc ip ion o Me hodology o Calcula ion
2.1. Scale model p ocedu e
The i s p ocedu e o da a collec ion consis s in measu ing he dayligh ac o s on he loo o a cou ya d scale model in an
a i icial sky. The scale model was made o medium-densi y ibe boa d using a lase cu e and 3D p in e ollowing he
ecommenda ions o Thanacha eonki e al. [42] in o de o minimize any impe ec ions a ec ing he measu emen s aken. The
loo o he cou ya d is a squa e o 30 cm by 30 cm. The s ackable scale model allows he assessmen o dayligh ac o s on
he loo o he cou ya d conside ing a a iable heigh om 30 o 120 cm, ha is o say, a a iable heigh o leng h a io o 1:4,
as seen in Figu e 1.

5
Figu e 1: S ackable scale model o a cou ya d made using lase cu e and 3D p in e in an a i icial sky.
The base o he scale model has small ga es on he co ne s and midpoin s o he pe ime e o he cou ya d, so ha he posi ion
o he illuminance me e in he co esponding s udy poin s (Fig. 2) can be inco po a ed sui ably. Fo all p ocedu es, h ee s udy
poin s on he loo plan o he cou ya d we e conside ed: cen e o he loo plan (A), middle o he wall (B), and co ne (C),
calcula ing maximum, in e media e, and minimum illuminance alues. All ga es we e closed o using black ca dboa d o
p e en incoming ligh om he a i icial sky om en e ing he base o he scale model (Fig. 1).
Figu e 2: S udy poin s in he cou ya d scale model, showing di e en wall e lec ances.
6
As seen in Figu e 2, he inne walls o he scale model we e co e ed wi h opaque ca dboa d ep esen ing di e en e lec ance
alues. The ca dboa d p oduces a Lambe ian e lec ion and e lec ances we e measu ed using a PCE-RGB 2 colo ime e ,
which shows a maximum a ia ion o ±3 RGB o 10 measu es. The e lec ance o he walls o he scale model is de ined in
Table 1.
Table 1: Re lec ance o he walls o he cou ya d scale model.
Wall Re lec ance Accu acy
Black 15.00 % -0.62%<R<+1.44%
G ey 32.00 % -4.80%<R<+2.42%
Whi e 78.00 % -6.16 %<R<+3.54%
The illuminance me e used o measu e he dayligh ac o s is a PCE-174 lux me e , which has an accu acy o ±5% o
illuminance alues lowe han 10,000 lux. Since he dayligh ac o s co espond o he quo ien o he inne and he ou e
illuminances, i is deduced ha his ma gin o e o is educed o measu es o illuminance lowe han he h eshold ci ed.
The a i icial sky co esponds o a pa allelepiped model, con as ed and calib a ed ollowing he s udy by Na a o e al. [43]
and subsequen esea ch [40]. Howe e , an accu acy analysis is ca ied ou o de e mine he alida ion o he a i icial sky in
o de o p o ide a solid assessmen o his p ocedu e. This accu acy analysis is based on wo s a emen s ela ing o he
de ini ion o he o e cas sky [26].
The i s s a emen is a gued in he de ini ion by Moon-Spence [44] which es ablishes ha he luminance o he o e cas sky
a ies acco ding o he ollowing law (1):
𝐿=𝐿·(1+2𝑠𝑖𝑛𝜃)
3 (1)
whe e LZ is he luminance a he zeni h o he sky aul and
θ
he p ojec ion angle. The e o e, he luminance measu ed a an
ele a ion o 60° co esponds o (2):
𝐿 =𝐿·(1+√3)
3 (2)
Mo eo e , he luminance measu ed conside ing an ele a ion o 30° co esponds o (3):
𝐿 =2𝐿
3 (3)
The second s a emen is based on he ela ionship be ween he ex e io illuminance and he luminance a he zeni h o he sky
aul (4), as ollows:
𝐸=1
3𝜋𝐿 2𝑠𝑖𝑛𝜃𝑐𝑜𝑠𝜃(1+2𝑠𝑖𝑛𝜃)𝑑𝜃=7
9𝜋𝐿 (4)



7
Acco ding o he p e ious s a emen s, nine measu es o luminance we e made in he a i icial sky: one o he zeni h and eigh
o he ca dinal poin s conside ing ou measu es o an ele a ion o 60° and ou mo e o 30°. The luminance me e model is
a Ma o-Spo 2, which has a measu emen angle o 1° and an accu acy o ±2%. The illuminance on he ho izon al plane was
measu ed using he PCE-174 lux me e desc ibed abo e. Acco ding o hese ools, he luminance in he zeni h is 2,120 cd/m2
while he illuminance measu e on he ho izon al plane shows 5,065 lx. The accu acy o he a i icial sky is shown in Table 2.
Table 2: Accu acy pa ame e s o he a i icial sky.
Analy ical esul s Measu emen s Luminance
Accu acy
a 30°
Luminance
Accu acy
a 60°
Illuminance
Accu acy
Luminance
a 30°
Luminance
a 60°
Ex e io
Illuminance
Luminance
a 30°
Luminance
a 60°
Ex e io
Illuminance
1,413 cd/m2 1,930 cd/m2 5,180 lx 1,264 cd/m2 1,812 cd/m2 5,065 lx -11.78% -6.51% -2.27%
As seen in Table 2, he co espondence be ween he analy ical esul s and he measu es aken wi h he luminance me e shows
a maximum di e gence o -6.51% conside ing an ele a ion o 60°. In addi ion, he ma gin o e o inc eases up o -11.78% in
he case o an ele a ion o 30°. This ma gin o e o is no mal o pa allelepiped a i icial skies, due o he limi ed e lec ance
o he mi o walls. Fo una ely, since he sky componen assessed in he cou ya d comes mainly om he zeni h, his ma gin
o e o ba ely a ec s he esul s ob ained. Mo eo e , as he ela ionship be ween ex e io illuminance and zeni h luminance
shows an accu acy o -2.27%, i is concluded ha he a i icial sky is sui able o his p ocedu e.
Acco ding o he me hodology desc ibed abo e, his p ocedu e shows a maximum ma gin o e o o 8.43% conside ing whi e
walls o he cou ya d scale model and he a i icial sky accu acy es ablished.
2.2. Real model p ocedu e
The second p ocedu e co esponds o he assessmen o dayligh ac o s measu ed on eal cou ya ds unde eal o e cas skies
whe e luminance dis ibu ion can be i ed o he Moon-Spence de ini ion [26,44].
All measu emen s we e conduc ed in Se ille, Spain, loca ed a la i ude 37° no h and longi ude 6° wes . This p ocedu e is
clea ly he mos complica ed, gi en he di icul y o conduc ing ligh ing measu emen s in a loca ion whe e he ideal cloudy sky
is ha d o ind. In ac , o he 16 ials ca ied ou , 4 we e disca ded due o di icul ies in assessing wall e lec ances and a
u he 7 es s we e uled ou due o he misma ch o he luminance dis ibu ion o he o e cas sky. The e o e, 5 ials we e
accep ed o his p ocedu e, desc ibed b ie ly in Figu e 3.
8
Figu e 3: Real cou ya d samples used o he eal model p ocedu e.
The cou ya ds selec ed ha e a wid h o leng h a io ha is almos squa e, wi h a uni o m heigh o all walls. The e lec ance
o loo and walls o each cou ya d was measu ed using he colo ime e desc ibed abo e, measu ing colo samples o
indi idual walls and windows. A Leica Dis o X310 lase me e was used o de e mine he heigh and loo dimensions o each
cou ya d.
As in he p e ious p ocedu e, h ee s udy poin s we e conside ed: cen e o he loo plan (A), middle o he wall (B), and
co ne (C). In his case, he ou middle poin s o he wall and co ne s we e measu ed in o de o minimize he ma gin o e o
o he measu emen s. In o de o ex end he measu emen s o dayligh ac o s o eal cou ya ds, he measu emen s aken
conside ed a heigh o 2 me e s abo e loo le el.
In o de o cha ac e ize he sky dis ibu ion o each ial, he Ma o-Spo 2 luminance me e was used o con as he luminance
maps ob ained om he Raw iles o a Canon Eos 70D. Th ee luminance measu emen s we e aken o each sky and ial:
zeni h, 45° ele a ion and ho izon. Figu e 4 shows h ee sky luminance dis ibu ions, calcula ed ollowing he me hod
men ioned abo e and co esponding o ials 1, 3, and 4.
15
The e o e, he IRC can be de ined as a unc ion o he sky componen measu ed a he middle poin o he wall (SCB)
acco ding o equa ion (8) and mul iplied by he a e age coe icien o e lec ance (R).
4.2.2. Quan i ying he e lec ed componen
In acco dance wi h he scale model p ocedu e, he in e nally e lec ed componen (IRC) is quan i ied o he cen e poin o he
loo plan, aking in o conside a ion he di e ence be ween he measu ed dayligh ac o s (DF) shown in Figu e 6, and he sky
componen (SC) de ined in equa ion (7) by Acos a e al. [32]. The esul s ob ained a e shown in Table 4, depending on he
heigh o leng h a io and he e lec ance o walls.
Table 4: Quan i ica ion o IRC in he cen e o he loo plan o he scale model.
Ra io H/L Wall
Re lec ance
A e age
Re lec ance DFA Cen e SCA Cen e IRCA Cen e SCB·R SCB·R / IRC
1/1 15.00% 12.50% 38.89% 29.41% 9.48% 2.84% 3.34
2/1 15.00% 13.50% 14.81% 9.43% 5.37% 1.16% 4.62
3/1 15.00% 13.93% 7.90% 4.42% 3.47% 0.59% 5.88
4/1 15.00% 14.17% 4.74% 2.54% 2.20% 0.35% 6.27
1/1 32.00% 23.83% 43.83% 29.41% 14.42% 5.42% 2.66
2/1 32.00% 27.10% 18.76% 9.43% 9.32% 2.34% 3.99
3/1 32.00% 28.50% 10.46% 4.42% 6.04% 1.21% 5.00
4/1 32.00% 29.28% 7.01% 2.54% 4.47% 0.72% 6.17
1/1 78.00% 54.50% 59.43% 29.41% 30.02% 12.39% 2.42
2/1 78.00% 63.90% 35.34% 9.43% 25.91% 5.51% 4.70
3/1 78.00% 67.93% 21.52% 4.42% 17.10% 2.88% 5.94
4/1 78.00% 70.17% 14.51% 2.54% 11.97% 1.74% 6.89
As seen in Table 4, he a e age e lec ance (R) is ha o he mean alue conside ing he e lec ance o walls, loo and opening
o he cou ya d o a ium. As ou lined in he calcula ion assump ions, he a iable SCB·R is de ined o each scale model,
acco ding o he heo y o he in eg a ing sphe e [36]. These a iables will help o de e mine he p edic i e me hod o he IRC.
In o de o conclude a scala which de ines he me hod, he a io o SCB·R o IRC is also shown in Table 4.
4.2.3. Cu e i ing o he e lec ed componen
As can be deduced om he dayligh ac o esul s obse ed in he scale models, he e is a co ela ion be ween he IRC and he
heigh o leng h a io o he cou ya d. The IRC speci ically ends o ise p opo ionally o he SC as he heigh o leng h a io
inc eases. The e o e, his a io will ac as a a iable o he p edic i e me hod equa ion. In o de o quan i y he weigh o his
a iable, a scala and an exponen o he heigh o leng h a io a iable a e de ined acco ding o a cu e i ing p ocess, shown
in Table 5.

16
Table 5: Fi ing o he SCB·R / IRC unc ion acco ding o he heigh o leng h a io.
Ra io H/L SCB·R / IRC
· (H/L)1.0
SCB·R / IRC
· (H/L)0.9
SCB·R / IRC
· (H/L)0.8
SCB·R / IRC
· (H/L)0.7
SCB·R / IRC
· (H/L)0.6
SCB·R / IRC
· (H/L)0.5
SCB·R / IRC
· (H/L)0.4
1/1 3.34 3.34 3.34 3.34 3.34 3.34 3.34
2/1 2.31 2.47 2.65 2.84 3.05 3.26 3.50
3/1 1.96 2.19 2.44 2.73 3.04 3.40 3.79
4/1 1.57 1.80 2.07 2.38 2.73 3.14 3.60
1/1 2.66 2.66 2.66 2.66 2.66 2.66 2.66
2/1 2.00 2.14 2.29 2.46 2.63 2.82 3.02
3/1 1.67 1.86 2.08 2.32 2.59 2.89 3.22
4/1 1.54 1.77 2.04 2.34 2.69 3.08 3.54
1/1 2.42 2.42 2.42 2.42 2.42 2.42 2.42
2/1 2.35 2.52 2.70 2.89 3.10 3.33 3.56
3/1 1.98 2.21 2.47 2.75 3.07 3.43 3.83
4/1 1.72 1.98 2.27 2.61 3.00 3.45 3.96
A i hme ic
mean 2.13 2.28 2.45 2.65 2.86 3.10 3.37
S anda d
de ia ion 1.29 1.06 0.84 0.70 0.77 1.07 1.55
As seen in Table 5, he lowes s anda d de ia ion co esponds o an exponen o 0.7, wi h an a i hme ic mean o 2.65.
The e o e, i can be concluded ha he IRC a he cen e poin o he cou ya d loo can be de ined as ollows (12):
𝐼𝑅𝐶≅𝑓(𝑆𝐶·𝑅,𝐻/𝐿)≅2.6·𝑆𝐶·𝑅·(𝐻/𝐿). =2.6𝐿𝑅
2𝐿+2.4𝐻·𝐻
𝐿. =2.6𝐿.𝐻.𝑅
2𝐿+2.4𝐻(12)
whe e 2.6 co esponds o he scala equi alen o he a i hme ic mean, L is he mean leng h o he cou ya d, H he heigh o he
cen e poin o he loo plan and R he a e age e lec ance o he inne su aces.
Acco ding o equa ions (7) and (12), he dayligh ac o o he cen e o he cou ya d loo co esponds o (13):
𝐷𝐹=𝑆𝐶+𝐼𝑅𝐶≅𝐿
𝐿+2.4𝐻+2.6𝐿.𝐻.𝑅
2𝐿+2.4𝐻 (13)
whe e L is he mean leng h o he cou ya d, H he heigh o he cen e poin o he loo plan and R he a e age e lec ance o
he inne su aces.
Following he same cu e i ing p ocess o he es o he s udy poin s, i can be concluded ha he scala chosen a ies
acco ding o he loca ion o he measu emen . In ac , conside ing an exponen o 0.7 o he heigh o leng h a io a iable, he
a i hme ic mean o he middle poin o he wall is 2.29 o a s anda d de ia ion o 0.61, whe eas he mean alue o he co ne
is equi alen o 2.07 o a s anda d de ia ion o 0.59. The e o e, he dayligh ac o s o he midpoin o he wall and he co ne
a e equi alen o equa ions (14) and (15) espec i ely:
𝐷𝐹=𝑆𝐶+𝐼𝑅𝐶≅𝐿
2𝐿+2.4𝐻+2.3𝐿.𝐻.𝑅
2𝐿+2.4𝐻 (14)
17
𝐷𝐹=𝑆𝐶+𝐼𝑅𝐶≅𝐿
4𝐿+2.4𝐻+2𝐿.𝐻.𝑅
2𝐿+2.4𝐻 (15)
whe e L is he mean leng h o he cou ya d, H he heigh o he cen e poin o he loo plan and R he a e age e lec ance o
he inne su aces.
5. Con as ing he p edic i e me hod
5.1. Con as ing wi h scale models
Once he p edic i e me hod is de ined, i s accu acy is de e mined acco ding o he p ocedu es p oposed. As desc ibed in he
me hodology, he i s p ocedu e o con as ing he me hod is o measu e dayligh ac o s in scale models in an a i icial sky,
which ep oduces he ideal condi ions o an o e cas sky.
As deduced om he cu e i ing p ocess shown in he me hod de ini ion, he IRC was de ined ollowing he scale model
p ocedu e, he e o e, high accu acy is expec ed in he con as ing o he me hod in his p ocedu e.
The ela i e di e ence o he dayligh ac o s ob ained by he p edic i e me hod wi h espec o hose measu ed in he scale
model is shown in Figu e 9. The heigh o leng h a io is ep esen ed in he X-axis, acco ding o he wall e lec ance o each
scale model, whe eas he Y-axis shows he ela i e di e ence be ween he me hod and he measu emen s o dayligh ac o s
in he cen e o he loo plan (DFA), middle poin o he wall (DFB) and co ne o he cou ya d (DFC).
Figu e 9: Rela i e di e ence o he p edic i e me hod o dayligh ac o s wi h espec o he measu emen s in he scale model
p ocedu e.
18
As Figu e 9 shows, he a e age di e ence be ween he p edic i e me hod and he dayligh ac o s measu ed in he scale model
is 4.18%, while he s anda d de ia ion is 2.19%. Fu he mo e, he maximum di e gence be ween bo h app oaches is equal o
9.96%. I is he e o e concluded ha he p edic i e me hod is p ope ly i ed o he measu emen s o he scale model.
5.2. Con as ing wi h eal models
As can be deduced, con as ing he p edic i e me hod wi h he measu emen s o dayligh ac o s in eal models is less accu a e
han he p e ious p ocedu e gi en he di e gence o he eal cloudy sky wi h ega d o he Moon-Spence de ini ion [44].
Howe e , su icien accu acy is p edic ed, as deduced om Figu e 10, which shows he ela i e di e ence o he dayligh
ac o s de ined by he p edic i e me hod wi h espec o he alues measu ed in eal cou ya ds. Each ial is ep esen ed in he
X-axis, om 1 o 5, ollowed by a le e A, in he case o measu emen s a 0 m abo e loo le el, o B, in he case o
assessmen s a 2 m abo e loo le el. As in he p e ious compa ison, he Y-axis shows he ela i e di e ence be ween he
me hod and he measu emen s o dayligh ac o s in he cen e o he loo plan (DFA), middle poin o he wall (DFB) and
co ne o he cou ya d (DFC).
Figu e 10: Rela i e di e ence o he p edic i e me hod o dayligh ac o s wi h espec o he measu emen s in he eal model
p ocedu e.
As obse ed in Figu e 10, he a e age di e ence be ween he p edic i e me hod and he esul s ob ained in he measu emen s
in eal cou ya ds is equal o 6.75%, sligh ly highe han in he p ocedu e abo e. Fu he mo e, he s anda d de ia ion o he
ela i e di e ence is de ined as 4.27%, conside ing he en i e sample o eal cou ya ds and measu emen s, so i can be
19
deduced ha he me hod is p ope ly i ed o he esul s ob ained. Conside ing he p e ious s a emen s, i is concluded ha he
p edic i e me hod is sui able o de ine he dayligh ac o s based on he measu emen de eloped in eal cou ya ds.
6. Analysis o ene gy e iciency
6.1. Calcula ion p ocedu e
In o de o quan i y he ene gy sa ing in elec ic ligh ing achie ed by cou ya ds and a iums, he dayligh au onomy (DA)
mus be de e mined. As shown in he s a e o he a , his me ic is de ined as he pe cen age o he yea when a minimum
illuminance h eshold is me by dayligh alone. The e o e, he highe he dayligh au onomy, he lowe he ene gy consump ion
in elec ic ligh ing. Acco dingly, his me ic can be de ined as equa ion (16):
𝐷𝐴𝑚=∑𝑤𝑓 ·𝑇
∑𝑇 ∈󰇟0,1󰇠; 𝑤𝑓=1 𝑖𝑓 𝐸≥𝐸
0 𝑖𝑓 𝐸<𝐸 (16)
whe e Ti is he occupancy du ing he yea , w i is he weigh ing ac o which depends on he illuminance h eshold, ED is he
dayligh illuminance measu ed a a gi en poin , and EL is he illuminance h eshold.
The dayligh au onomy alues can be deduced om he dayligh ac o s ob ained by using he p edic i e me hod, conside ing a
con inuous o e cas sky, which ep esen s he wo s case scena io o he assessmen o he ene gy e iciency. The hou s o
occupancy de e mine he sola al i ude h oughou he yea , allowing he calcula ion o he ex e io illuminance unde o e cas
sky condi ions. Subsequen ly, he dayligh ac o s de ined by he p edic i e me hod can se e o de e mine he in e io
illuminance o each ime pe iod. Finally, he in e io illuminance is compa ed wi h he illuminance h eshold and he dayligh
au onomy unde o e cas sky condi ions is quan i ied.
The quan i ica ion o ene gy consump ion no only depends on he geome y and quali ies o he cou ya d o a ium, bu he
size o he window and he inne su aces o he oom also a ec he esul s ob ained. Following p e ious esea ch on dayligh
au onomy alues measu ed h ough windows [45], he ene gy consump ion has been calcula ed conside ing he ollowing
assump ions:
• The oom and he window a e cen e ed in he middle poin o he wall o he a ium o cou ya d.
• The window o acade a io co esponds o 60%. The window is squa e.
• The a e age e lec ance o he inne su aces o he oom is 70%, o a g ey loo (60%) and ligh g ey walls and
ceiling (80%). The op ical ansmi ance o he glass co esponds o 70%.
• The measu emen a ea co esponds o he a ea nea he window, om he acade o a dis ance o 3 me e s.
20
As can be deduced, he al e a ion o hese a iables would p o ide di e en esul s in he quan i ica ion o he ene gy
consump ion. The e o e, he esul s ob ained only se e o a speci ic scena io, al hough hey would be use ul in es ima ing he
impac o cou ya d and a ium design in he ene gy pe o mance o buildings.
Since he sola al i ude a ies acco ding o he la i ude o he loca ion, he dayligh au onomy is assessed acco ding o his
a iable.
6.2. Ene gy e iciency in b igh cou ya ds
Following he calcula ion p ocedu e shown abo e, he dayligh au onomy unde o e cas sky condi ions is quan i ied,
conside ing an illuminance h eshold o 500 lx and occupancy hou s om 8 am o 5 pm. Table 6 shows he dayligh au onomy
alues measu ed a he middle poin o he wall o b igh cou ya ds, acco ding o an a e age e lec ance o he inne su aces
o 70% and a glass ansmi ance o 70%.
Table 6: Dayligh au onomy in b igh cou ya ds, conside ing o e cas sky condi ions, an illuminance h eshold o 500 lx and
occupancy hou s om 8 am o 5 pm.
Ra io H/L La i ude
0 º 10 º 20 º 30 º 40 º 50 º 60 º
1/1 94% 94% 92% 92% 90% 85% 72%
4/3 94% 93% 91% 91% 88% 83% 69%
5/3 94% 92% 91% 90% 87% 81% 65%
2/1 92% 91% 90% 86% 85% 77% 62%
7/3 88% 90% 89% 84% 81% 73% 58%
8/3 86% 87% 87% 83% 78% 68% 55%
3/1 84% 84% 83% 82% 76% 62% 51%
10/3 84% 84% 81% 80% 73% 58% 47%
11/3 84% 81% 78% 75% 68% 54% 44%
4/1 83% 80% 78% 72% 65% 50% 41%
As can be seen in Table 6, he dayligh au onomy is no iceably highe o low la i udes, dec easing o high a ios. Acco ding
o hese esul s, he minimum ene gy sa ing in elec ic ligh ing is quan i ied in Table 7, conside ing a ypical ene gy e iciency
alue o LED lamps o 1.8 W/m2/100 lx.

21
Table 7: Minimum ene gy sa ings in elec ic ligh ing o b igh cou ya ds, acco ding o an illuminance h eshold o 500 lx
and occupancy hou s om 8 am o 5 pm. Measu ed in kWh/m2.
Ra io H/L La i ude
0 º 10 º 20 º 30 º 40 º 50 º 60 º
1/1 178.17 178.17 174.38 174.38 170.59 161.11 136.47
4/3 178.17 176.27 172.48 172.48 166.80 157.32 130.78
5/3 178.17 174.38 172.48 170.59 164.90 153.53 123.20
2/1 174.38 172.48 170.59 163.00 161.11 145.95 117.51
7/3 166.80 170.59 168.69 159.21 153.53 138.36 109.93
8/3 163.00 164.90 164.90 157.32 147.84 128.89 104.25
3/1 159.21 159.21 157.32 155.42 144.05 117.51 96.67
10/3 159.21 159.21 153.53 151.63 138.36 109.93 89.08
11/3 159.21 153.53 147.84 142.16 128.89 102.35 83.40
4/1 157.32 151.63 147.84 136.47 123.20 94.77 77.71
As deduced om Table 7, he minimum ene gy sa ing a ies om 13% o 75% acco ding o he heigh o wid h a io. This
a ia ion is mo e no able in high la i udes.
6.3. Ene gy e iciency in da k cou ya ds and a iums
The minimum ene gy sa ing in da k cou ya ds and a iums is assessed ollowing he p ocedu e explained abo e and
conside ing he same illuminance h eshold and occupancy hou s. Table 8 shows he dayligh au onomy alues o he
midpoin o he wall o da k cou ya ds o a iums, assuming an a e age e lec ance o he inne su aces o 30% and a glass
ansmi ance o 70%.
Table 8: Dayligh au onomy in da k cou ya ds and a iums, conside ing o e cas sky condi ions, an illuminance h eshold o
500 lx and occupancy hou s om 8 am o 5 pm.
Ra io H/L La i ude
0 º 10 º 20 º 30 º 40 º 50 º 60 º
1/1 93% 92% 91% 91% 87% 82% 66%
4/3 92% 91% 90% 86% 85% 77% 62%
5/3 87% 89% 88% 84% 79% 71% 57%
2/1 84% 84% 83% 81% 76% 62% 51%
7/3 84% 82% 79% 77% 70% 56% 45%
8/3 83% 79% 77% 71% 63% 50% 40%
3/1 77% 77% 73% 68% 54% 44% 34%
10/3 72% 70% 67% 61% 48% 39% 29%
11/3 70% 66% 63% 52% 42% 32% 23%
4/1 64% 63% 57% 45% 35% 27% 17%
As in he p e ious ial, he dayligh au onomy shown in Table 8 is highe o low la i udes, dec easing o na ow cou ya ds
o a iums. Conside ing he alue o ene gy e iciency o LED lamps de ined be o e, he minimum ene gy sa ing is shown in
Table 9.
22
Table 9: A e age ene gy sa ings in elec ic ligh ing o da k cou ya ds and a iums, acco ding o an illuminance h eshold o
500 lx and occupancy hou s om 8 am o 5 pm. Measu ed in kWh/m2.
Ra io H/L La i ude
0 º 10 º 20 º 30 º 40 º 50 º 60 º
1/1 176.27 174.38 172.48 172.48 164.90 155.42 125.10
4/3 174.38 172.48 170.59 163.00 161.11 145.95 117.51
5/3 164.90 168.69 166.80 159.21 149.74 134.57 108.04
2/1 159.21 159.21 157.32 153.53 144.05 117.51 96.67
7/3 159.21 155.42 149.74 145.95 132.68 106.14 85.29
8/3 157.32 149.74 145.95 134.57 119.41 94.77 75.82
3/1 145.95 145.95 138.36 128.89 102.35 83.40 64.44
10/3 136.47 132.68 126.99 115.62 90.98 73.92 54.97
11/3 132.68 125.10 119.41 98.56 79.61 60.65 43.59
4/1 121.31 119.41 108.04 85.29 66.34 51.18 32.22
As in he abo e case, he minimum ene gy sa ing a ies acco ding o he heigh o wid h a io. Howe e , o da k cou ya ds
o a iums, his a ia ion is no iceably highe han in he p e ious ials, a ying om 45% o low la i udes o 288% o high
la i udes.
7. Conclusions
The p edic i e me hod de ined in his esea ch, exp essed in equa ions DFA (13), DFB (14) and DFC (15), p o ides an accu a e
p ocedu e o de e mine he dayligh ac o s o speci ic poin s in a cou ya d o a cen al space o an a ium. In ac , as
obse ed in Figu e 9, he compa ison o he p oposed me hod wi h scale models in an a i icial sky shows an a e age
di e ence o 4.18% and a s anda d de ia ion o 2.19%, demons a ing p ope beha io o he o mula ion de ined h ough
compa ison wi h p e ious esea ch [35,37,39] whe e he ma gin o e o is no iceably highe . Fu he mo e, as seen in Figu e
10, he compa ison o he me hod de eloped wi h ega d o he measu emen s in eal cou ya ds unde eal o e cas sky
condi ions shows a sligh inc ease o he a e age di e ence and a s anda d de ia ion o 4.27%. I is he e o e concluded ha
he equa ions p oposed help de e mine dayligh ac o s wi h sui able accu acy.
Unlike p e ious app oaches, he p oposed me hod de e mines bo h he sky and he e lec ed componen o each s udy poin ,
so ha he e ec o he geome y and he e lec ance o he inne su aces can be quan i ied sepa a ely. Fu he mo e, he
equa ions o he cou ya d o a ium pe ime e , which co espond o DFB (14) and DFC (15), allow dayligh ac o s on e ical
planes o be measu ed, concluding he illuminance caused by he sky dome on di e en poin s o he loo plan and walls.
As deduced om he analysis o ene gy e iciency, his me hod can quan i y he minimum ene gy sa ing in elec ic ligh ing,
acco ding o an illuminance h eshold and occupancy hou s.
The p ac ical applica ion o he p oposed me hod can be e y b oad. I can be used in building in o ma ion modeling (BIM)
p og ams o he simple quan i ica ion o he ene gy pe o mance o cou ya ds and a iums wi hou he need o complex
23
calcula ion. The simple o mulae can se e as a ool o he p e-design s age o hese a chi ec u al esou ces, de e mining he
dimensions needed o ensu e sui able illuminance p o ided by dayligh ing. Mo eo e , his me hod can be implemen ed in
u u e u banism s anda ds o es ablish a simple o mula o de e mining he minimum heigh o wid h a io o cou ya ds and
a iums.
Acknowledgemen s
The au ho s would like o hank José Luis He nández and An onio Pue as o hei collabo a ion in he measu emen o
dayligh ac o s and he cha ac e iza ion o se e al cou ya ds used in he eal model p ocedu e.
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