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Synthesis and Optimization of Fractional-Order Elements Using a Genetic Algorithm

Abstract

This study proposes a new approach for the optimization of phase and magnitude responses of fractional-order capacitive and inductive elements based on the mixed integer-order genetic algorithm (GA), over a bandwidth of four-decade, and operating up to 1 GHz with a low phase error of approximately +/- 1 degrees. It provides a phase optimization in the desired bandwidth with minimal branch number and avoids the use of negative component values, and any complex mathematical analysis. Standardized, IEC 60063 compliant commercially available passive component values are used; hence, no correction on passive elements is required. To the best knowledge of the authors, this approach is proposed for the first time in the literature. As validation, we present numerical simulations using MATLAB (R) and experimental measurement results, in particular, the Foster-II and Valsa structures with five branches for precise and/or high-frequency applications. Indeed, the results demonstrate excellent performance and significant improvements over the Oustaloup approximation, the Valsa recursive algorithm, and the continued fraction expansion and the adaptability of the GA-based design with five different types of distributed RC/RL network.

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Synthesis and Optimization of Fractional-Order Elements Using a Genetic Algorithm

Author: Kartci, Aslihan; Herencsár, Norbert; Brančík, Lubomír
Publisher: IEEE
Year: 2019
DOI: 10.1109/ACCESS.2019.2923166
Source: https://dspace.vut.cz/bitstreams/f2c59184-04dd-4042-9ce2-40f9a39a653d/download
Recei ed Ap il 9, 2019, accep ed May 21, 2019, da e o publica ion June 14, 2019, da e o cu en e sion July 2, 2019.
Digi al Objec Iden i ie 10.1109/ACCESS.2019.2923166
Syn hesis and Op imiza ion o F ac ional-O de
Elemen s Using a Gene ic Algo i hm
ASLIHAN KARTCI 1,2, (S uden Membe , IEEE), AGAMYRAT AGAMBAYEV 3,
MOHAMED FARHAT3, NORBERT HERENCSAR 2, (Senio Membe , IEEE),
LUBOMIR BRANCIK1, (Senio Membe , IEEE), HAKAN BAGCI 3, (Senio Membe , IEEE),
AND KHALED N. SALAMA3, (Senio Membe , IEEE)
1Depa men o Radio Elec onics, B no Uni e si y o Technology, 616 00 B no, Czech Republic
2Depa men o Telecommunica ions, B no Uni e si y o Technology, 616 00 B no, Czech Republic
3Compu e , Elec ical and Ma hema ical Sciences & Enginee ing Di ision, King Abdullah Uni e si y o Science and Technology, Thuwal 23955, Saudi A abia
Co esponding au ho : Aslihan Ka ci ([email p o ec ed].cz)
Resea ch desc ibed in his pape was suppo ed by he King Abdullah Uni e si y o Science and Technology, Saudi A abia, he Na ional
Sus ainabili y P og am unde g an LO1401, he Minis y o Educa ion, and he Czech Science Founda ion unde g an no. 19-24585S.
Fo he esea ch, in as uc u e o he SIX Cen e was used.
ABSTRACT This s udy p oposes a new app oach o he op imiza ion o phase and magni ude esponses o
ac ional-o de capaci i e and induc i e elemen s based on he mixed in ege -o de gene ic algo i hm (GA),
o e a bandwid h o ou -decade, and ope a ing up o 1 GHz wi h a low phase e o o app oxima ely ±1◦.
I p o ides a phase op imiza ion in he desi ed bandwid h wi h minimal b anch numbe and a oids he use o
nega i e componen alues, and any complex ma hema ical analysis. S anda dized, IEC 60063 complian
comme cially a ailable passi e componen alues a e used; hence, no co ec ion on passi e elemen s
is equi ed. To he bes knowledge o he au ho s, his app oach is p oposed o he i s ime in he
li e a u e. As alida ion, we p esen nume ical simula ions using MATLAB R
and expe imen al measu emen
esul s, in pa icula , he Fos e -II and Valsa s uc u es wi h i e b anches o p ecise and/o high- equency
applica ions. Indeed, he esul s demons a e excellen pe o mance and signi ican imp o emen s o e he
Ous aloup app oxima ion, he Valsa ecu si e algo i hm, and he con inued ac ion expansion and he
adap abili y o he GA-based design wi h i e di e en ypes o dis ibu ed RC/RL ne wo k.
INDEX TERMS Caue ne wo k, cons an phase elemen , con inued ac ion expansion, dis ibu ed RC
ne wo k, dis ibu ed RL ne wo k, Fos e ne wo k, ac ional-o de capaci o , ac ional-o de elemen ,
ac ional-o de induc o , gene ic algo i hm, impedance op imiza ion, phase op imiza ion, RC ne wo k, RL
ne wo k, ecu si e algo i hm, Valsa ne wo k.
I. INTRODUCTION
Recen ly, emendous e o s ha e been made o design
ac ional-o de elemen s (FOEs). Indeed hey o e addi-
ional deg ees o eedom and e sa ili y in elec ical ci -
cui s [1]–[4], such as il e s [5]–[7], oscilla o s [8]–[11],
con olle s [12]–[15], bioimpedance modeling [16], li hium-
ion ba e y modeling [17], ansmission line design [18],
eluc ance induc i e ansduce ealiza ion [19], dc–dc boos
con e e s [20] and e e ences ci ed he ein. The e sa ili y
o ac ional-o de ci cui s leads esea che s o belie e ha
he u u e o disc e e elemen ci cui design will unde go a
The associa e edi o coo dina ing he e iew o his manusc ip and
app o ing i o publica ion was Hisao Ishibuchi.
pa adigm shi in a o o FOEs [21]. Fig. 1shows he unda-
men al componen s and possible FOEs in ou quad an s [22],
[23]. Thei impedance is desc ibed as Z(s)=Ksα, whe e
ωis he angula equency in s=jω, and ob iously has a
eal pa dependen on he non-ze o equency. In pa icula ,
he impedance o Type IV FOEs, i.e. ac ional-o de capac-
i o s (FOCs), is p o ided wi h an o de o −1< α < 0 and
pseudocapaci ance o Cα=1/K, whe eas ac ional-o de
induc o s (FOIs) in quad an I (Type I) ha e an o de o 0 <
α < 1 and pseudoinduc ance o Lα=K. These wo FOEs
a e he key componen s in ac ional-o de ci cui design and
ou main objec o in es iga ion in his wo k. Thei cha ac e -
is ics such as pseudocapaci ance, pseudoinduc ance, cons an
phase zone (CPZ), cons an phase angle (CPA – de ined phase
VOLUME 7, 2019 This wo k is licensed unde a C ea i e Commons A ibu ion 3.0 License. Fo mo e in o ma ion, see h p://c ea i ecommons.o g/licenses/by/3.0/ 80233
A. Ka ci e al.: Syn hesis and Op imiza ion o F ac ional-O de Elemen s Using a Gene ic Algo i hm
FIGURE 1. Desc ip ion o ac ional-o de elemen s in ou quad an s
[22], [23].
angle in CPZ), and phase angle de ia ion (PAD – maximum
di e ence be ween a designed/measu ed phase and a a ge
phase) p o oundly impac he ans e unc ion o hose sys-
ems [1], [2], [4], [22].
Di e en app oaches o he ealiza ion o an FOC using
dielec ic ma e ials [24]–[27], a liquid elec ochemical capac-
i o [28], [29], and o he ac i e emula o s [30] exis in
he open li e a u e. Howe e , hey a e in he concep ual
s age and s ill equi e much wo k be o e hey mee he
expec a ions o ci cui designe s. One me hod o imple-
men ing an FOC is o app oxima e he a ional unc-
ion o sin a desi ed bandwid h using he me hods o
Ca lson [31], Ma suda [32], El-Khazali [33], Maione [34],
Ous aloup [35], Con inued F ac ion Expansion (CFE) [36],
and Recu si e Algo i hms (RAs) [37], [38] among o h-
e s [39]–[43]. Once a a ional unc ion is ob ained, i can
be syn hesized by he use o a weigh ed sum o i s -
o de il e sec ions [44], ac i e building blocks [45], con-
olle s [46], bilinea sec ions [47], ee s uc u es [48],
RC ladde ne wo ks [36], o a Valsa s uc u e [37]. Sub-
sequen ly, by de ining he Cα, hei o e all ans e unc-
ion mimics he impedance o FOCs a a speci ic equency
ange. On he o he hand, he e a e ew app oaches ha
mimic he FOI esponse such as RL-ne wo ks [20], equi ip-
ple and El-Khazali app oxima ions [33], using gene alized
impedance con e e s (GICs) [19], [23], [23], [49]–[52],
o o he ac i e emula o s [45]–[47]. Howe e , he ade-o
be ween an ope a ing equency ange and he numbe o
ci cui elemen s equi ed in he FOC o FOI design limi s
he use o passi e o ac i e emula o s in many applica ions.
In addi ion, all abo e men ioned app oxima ion me hods a e
analy ical and equi e no s anda d IEC 60063 complian
alues o esis o s, capaci o s, and induc o s o ha e be e
esul s. I he used alues a e eplaced by he closes s an-
da dized alues, he accu acy o he app oxima ion dec eases,
which leads o an inc ease o PAD and o e all deg ada ion o
he pe o mance o he FOE ( o ins ance [15], [20], [23]).
Up un il now, e olu iona y compu ing algo i hms ha e
been used o educe he d awbacks in adi ional op imiza ion
me hods and o sol e complex p oblems whe e con en ional
echniques ail in many a eas o he ac ional-o de domain
such as chaos [53], con ol [54], o ex ac ing he design
pa ame e s o il e s [55]. In his ega d, lowe pollina ion
algo i hms [56], pa icle swa m op imiza ion [57], o gene ic
algo i hms (GA) [58] a e used. In his wo k, a mixed in ege -
o de GA in MATLAB R
is used. Ins ead o app oxima ing
sαusing he abo e men ioned app oxima ions a a ce ain
equency (o bandwid h), we op imize he phase and/o mag-
ni ude esponses o RC/RL ne wo ks in he whole desi ed
equency ange. In b ie , he GA is a powe ul compu a ional
echnique, which mimics he p ocess o na u al selec ion he-
o y. I consis s o a popula ion o ep esen a ions o candida e
solu ions o an op imiza ion p oblem, which e ol e owa d
enhanced solu ions. I is impo an o men ion ha he GA
uses he objec i e unc ion i sel , no de i a i es o o he aux-
ilia y knowledge based on p obabilis ic/de e minis ic cha -
ac e iza ion. These ea u es make his op imiza ion me hod
he mos sui able echnique o op imize he CPA in dis-
ibu ed RC/RL ne wo ks. Fu he mo e, he equi ed alues
a e ob ained wi h GA, e en i he passi e componen alues
a e es ic ed o comme cially a ailable ki alues de ined by
s anda d IEC 60063, and s ill main ain supe b esul s. Hence,
he pape aims o in oduce an FOE op imiza ion me hod ha
achie es a b oad ope a ing equency ange wi h CPA de i-
a ion o app oxima ely ±1◦using comme cially a ailable
passi e componen alues in RC and RL s uc u es wi h i e
b anches o Fos e -I, Fos e -II, Caue -I, Caue -II, and Valsa
ne wo ks. Mos c ucially, he p esen ed app oach a oids he
use o nega i e componen alues, GICs, o andom passi e
elemen alues. Thus, his a icle deals wi h he op imal
emula ion o an FOE cu en ly a ailable in he li e a u e.
In pa icula , Fos e -II and Valsa ne wo ks a e selec ed as
ou main objec i e, because he o me o e s a minimum
o al capaci ance alue and he la e p o ides a minimum
CPA de ia ion. He e i is also wo h no ing ha , o he bes
knowledge o au ho s, an FOI design using he lis ed i e RL
ne wo ks is s udied o he i s ime in he li e a u e.
The es o his wo k is o ganized as ollows. Sec ion II
desc ibes he p oposed op imiza ion app oach using GA as
well as design conside a ions. In Sec ion III, i e ypes o
RC ne wo ks o FOC design wi h op imized passi e com-
ponen alues a e analyzed nume ically and he pa icula
cases expe imen ally. Fu he mo e, he FOC esul s o com-
pa isons wi h o he algo i hms (CFE, Ous aloup, and RA)
a e p esen ed. A nume ical s udy o FOI wi h i e ypes o
RL ne wo ks using GA is p esen ed o he i s ime in he
li e a u e in he Sec ion IV. As an example, he beha io o he
op imized Valsa s uc u e is measu ed. Sec ion Vdiscusses
he esul s and pe o mance cha ac e is ics o all examples,
whe eas he Sec ion VI concludes he s udy.
II. DESCRIPTION OF THE GA APPROACH USED IN
OPTIMIZATION OF FOE
Table 1summa izes he FOC and FOI app oxima ion me h-
ods used in his wo k wi h hei syn hesized RC and RL ne -
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A. Ka ci e al.: Syn hesis and Op imiza ion o F ac ional-O de Elemen s Using a Gene ic Algo i hm
TABLE 1. FOC and FOI app oxima ion me hods used in his s udy (no e: all below ne wo ks a e op imized using GA).
Algo i hm 1 Gene ic Algo i hm Pseudocode
1: o i=1 o NumO Gene a ions (o un il an
accep able solu ion is ound) do
2: i i s gene a ion hen
3: Gene a e he ini ial popula ion wi h p imi i es
(CPZ, CPA, pseudocapaci ance, pseudoinduc ance,
numbe o b anches, esis o , capaci o , and
induc o se )
4: else
5: Wi h cu en popula ion, gene a e a new one using
c osso e and mu a ion ope a o s
6: end i
7: Calcula e i ness o popula ion membe s
8: i i ness 6= 0 hen
9: Re u n o gene a e new popula ion
10: else
11: B eak he loop
12: end i
13: end o
Re u n bes indi idual in las popula ion
wo ks and equi alen admi ances o impedances. The admi -
ances o some o he RC ne wo ks can be ound in [4], [36].
The impedance and phase op imiza ion o all s uc u es using
TABLE 2. Gene ic algo i hm pa ame e s.
he GA is ob ained wi h p ede ined Rand C alues. The
desi ed cons an phase and/o pseudocapaci ance, pseudoin-
duc ance, numbe o b anches, and equency ange (i.e. CPZ)
a e de ined as design pa ame e s.
To p o ide mo e de ail ega ding he exac s eps ha we e
pe o med by he GA app oach, we p esen i s pseudocode in
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A. Ka ci e al.: Syn hesis and Op imiza ion o F ac ional-O de Elemen s Using a Gene ic Algo i hm
Algo i hm 1 based on [58]. Table 2p esen s he pa ame e s
employed du ing he aining phase o he GA app oach. Fi -
ness, also known as he cos unc ion o he solu ion se ,
is de e mined using he ollowing equa ion:
F=
ϕsim −ϕ a g
,(1)
whe e ϕsim and ϕ a g exp ess he simula ed and a ge phase,
espec i ely.
III. OPTIMIZATION AND VERIFICATION OF FOC
As an exempla y s udy, p ima ily he Fos e -II [36] and
Valsa [37] ne wo ks a e op imized wi hin his sec ion. Fo
he eason ha ; Fos e -II ne wo k o e s a minimum o al
capaci ance alue and Valsa ne wo k p o ides a minimum
PAD.
A. OPTIMIZATION OF FOSTER-II STRUCTURE FOR FOC
DESIGN
Fo a Fos e -II ealiza ion, he componen alues a e gi en by
he pa ial ac ion expansion and i s admi ance is exp essed
in Table 1. He e, nis he numbe o b anches, R0is he
ini ial esis o , and Riand Cia e he esis ances and capaci-
ances o i- h b anch. Fi s ly, he pe o mance o he ne wo k
ob ained using he GA wi h he Ous aloup and CFE me hods
is compa ed o show he ad an age o he GA. The desi ed
bandwid h, numbe o b anches which is equi alen o a i h-
o de admi ance unc ion (n=5), and CPA a e espec i ely
se as 100 Hz−1 MHz, 5, and −45◦wi h a pseudocapaci ance
o Cα=100 nF·s−0.5. As a popula ion, he andom and
comme cially a ailable passi e elemen s de ined in Table 2
a e used. The cen al equency in case o CFE is se o
10 kHz. I can be obse ed om Fig. 2(a) ha all h ee
app oxima ions p o ide a cons an phase esponse wi h a ge
CPA nea a cen al equency, speci ically be ween 1 kHz
and 100 kHz. Howe e , e o s in phase o he app oxi-
ma ion models inc ease signi ican ly when he equency is
2 decades abo e and below he cen al equency, whe eas
he phase esponse ob ained using he GA is sa is ied in he
whole equency ange o in e es . Fu he mo e, Fig. 2(b)
shows ela i e phase e o s and co esponding no malized
his og ams (%) o phase angle de ia ion om CPA as an
inse . I can be seen ha he maximum de ia ion in he GA
is limi ed o only ±2◦, whe eas in bo h CFE and Ous aloup,
±25◦e o s occu . Because no di ec con ol exis s o e he
Rand C alues ob ained om he las wo app oxima ions,
a co ec ion o use he comme cially a ailable RC ki alues
is obliga o y o build he FOCs. Howe e , his co ec ion is
no needed o he esul s ob ained by he GA since i di ec ly
p o ides he s anda d IEC 60063 complian RC alues as he
esul s. Indeed, i is possible o include in he popula ion,
i.e. a ailable Rand C alues o MATLAB R
and he GA
pe o ms he op imiza ion using only gi en alues. Fig. 2(c)
shows he simula ed phase esponse o co ec ed RC ne wo k
alues using he Ous aloup, CFE, and op imized ne wo k
using he GA, while he comme cially a ailable 0603 size
Rand Cki alues de ined in Table 2a e used. The es o
FIGURE 2. (a) Nume ical phase esponse plo s o he Fos e -II RC ne wo k
using he Ous aloup, CFE, and GA me hods wi h andom alues,
(b) ela i e phase e o s and co esponding no malized his og ams (%) o
phase angle de ia ion om CPA as inse , (c) phase angle esponse o he
RC ne wo k using he Ous aloup and CFE me hods a e RC alue
co ec ion, and he GA op imized o comme cially a ailable RC ki alues,
(d) ela i e phase e o s and co esponding no malized his og ams (%) o
phase angle de ia ion om CPA as inse . Phase esponses a e op imized
in he equency ange o 100 Hz–1 MHz.
he simula ion se up is iden ical o he simula ion se up o
Fig. 2(a). Fig. 2(d) plo s he ela i e phase e o s and co e-
sponding no malized his og ams (%) o phase angle de ia ion
om CPA as an inse . As i can be obse ed, he maximum
de ia ion in he GA is limi ed o ±2.8◦, whe eas ±30◦e o
is ob ained in bo h Ous aloup and CFE app oxima ion esul s.
No ably, he maximum e o in he phase ob ained om bo h
app oxima ion me hods a e u he inc eased compa ed wi h
he esul s in Fig. 2(b) wi h no RC alue co ec ion. Howe e ,
no signi ican change is obse ed in he phase o he ci cui
ob ained using he GA.
Figs. 3(a) and (c) show he a ge , simula ed, and mea-
su ed phase angle and pseudocapaci ance esponses o he RC
ne wo k op imized using he GA. The same passi e elemen
alues a e used om he comme cially a ailable RC ki s
as depic ed in Fig. 2(c) (see ‘‘This wo k’’) wi h he se up
lis ed in Appendix A. The expe imen al e i ica ion uses he
Agilen 4294A P ecision Impedance Analyze . S anda d cali-
b a ion es s (open and sho ci cui s) o he Keysigh 16048G
Tes Leads a e pe o med o calib a e he ins umen . F om
he esul s in Figs. 3(b) and (d), i can be seen ha he
maximum CPA de ia ion be ween a ge (ideal) and simu-
la ed as well as measu ed alues is only ±2.8◦and ±3.2◦,
espec i ely, whe eas he pseudocapaci ance is ±6.6 nF·s−0.5
and ±7.3 nF·s−0.5.
80236 VOLUME 7, 2019
A. Ka ci e al.: Syn hesis and Op imiza ion o F ac ional-O de Elemen s Using a Gene ic Algo i hm
FIGURE 3. Ta ge (ideal), simula ed, and measu ed (a) phase esponses,
(b) ela i e phase e o s and co esponding no malized his og ams (%) o
phase angle de ia ion om CPA as an inse , (c) pseudocapaci ance
esponses, and (d) ela i e pseudocapaci ance e o s and co esponding
no malized his og ams (%) o pseudocapaci ance de ia ion om CPA as
an inse , espec i ely, o he Fos e -II ne wo k op imized using GA.
Impedance and phase esponses a e op imized in he equency ange
o 100 Hz–1 MHz.
S a is ical analysis o Mon e Ca lo (MC) was pe o med
in O CAD PSpice R
simula ion so wa e wi h passi e ele-
men ole ances based on hei da ashee s [59], [61] and
200 uns o obse e e ec s due o manu ac u ing p ocesses.
The his og am shown in Fig. 4demons a es he a ia ion
o he phase a 100 kHz o he Fos e -II ne wo k op imized
using GA. The mean alue wi h s anda d de ia ion 0.555 is
−44.8109◦, which is e y close o he heo e ical alue −45◦
con i ming ha he p oposed ne wo k has low sensi i i y
cha ac e is ic on passi e componen s. The analysis esul s o
MC o all s udied ne wo ks a hei middle equency a e
lis ed in Appendix A.
B. OPTIMIZATION OF VALSA STRUCTURE FOR FOC
DESIGN
The Valsa ne wo k in Table 1[37] is p oposed o emula e FOC
beha io and ealized using RA. The possibili y o designing
his ne wo k using comme cially a ailable Rand C alues
was claimed by he au ho s [37]. Howe e , he RA allows
us o se only ini ial alues and he emaining b anch alues
mus be adjus ed acco ding o comme cially a ailable passi e
elemen alues. Wi h his in mind, simila o wi h he Fos e -II
s uc u e, he GA is applied o he Valsa ne wo k in his sub-
sec ion. The admi ance unc ion is gi en in Table 1, whe e
compa ed o Fos e -II ne wo k he addi ional C0deno es an
ini ial capaci o . In ou s udy, o p o ide a ai compa ison
wi h [37], he phase esponses o RA and he GA o an
FIGURE 4. Mon e Ca lo analysis: Phase a ia ion a 100 kHz o he
Fos e -II ne wo k op imized using GA ( alues used in Fig. 3(a)).
FIGURE 5. (a) Measu ed phase esponses o he Valsa s uc u e using he
RA and GA me hods (comme cially a ailable ki s a e used), and
(b) ela i e phase e o s and co esponding no malized his og ams (%) o
phase angle de ia ion om CPA as an inse . Impedances a e measu ed in
he equency ange o 100 Hz–10 MHz.
o de o α= −0.67 using comme cially a ailable 0603 size
RC ki alues a e expe imen ally e alua ed. The used pas-
si e elemen alues a e lis ed in Appendix B (see ‘‘Fig. 5’’
columns). Du ing he expe imen al e i ica ion, he same
ins umen s lis ed in Sec ion III(A) a e used. Wi h he phase
e o equal o ±2.1◦, he app oxima ion wi h he GA expe -
imen ally eaches a wide bandwid h o 100 Hz −5 MHz,
as shown in Fig. 5(a). Conside ing he ull equency band up
o 10 MHz, he e o is s ill only ±3.2◦(see Fig. 5(b)).
Fu he mo e, he measu emen esul s o α=−0.5 o de
FOCs using an ENA Se ies Ne wo k Analyze E5071C
(300 kHz−20 GHz) in h ee di e en equency anges [case
s udy (a) in 1 MHz −100 MHz, (b) 5 MHz −500 MHz,
and (c) 50 MHz −1 GHz] a e shown in Fig. 6. Two a ian s
o he FOE de ice wi h dimensions o 20 mm ×20 mm
we e designed ( o 0402 and 0603 size passi e compo-
nen s) employing a subminia u e e sion A (SMA) coax-
ial RF connec o . The ab ica ed p in ed ci cui boa d o
0402 size ki alues is shown in Fig. 6(c) as an inse . Con-
side ing an inpu impedance 50 o he connec o , he phase
is measu ed by de ining he equa ion o impedance as
Z=50·[(1 +S11)/(1 −S11)]. As passi e elemen s, RF- ype
esis o s om Vishay [60] and capaci o s om Keme [62]
a e used. Because o he p oduce s ab ica ion bounda ies,
used passi e componen s ha ing CPA in limi ed equency
VOLUME 7, 2019 80237

A. Ka ci e al.: Syn hesis and Op imiza ion o F ac ional-O de Elemen s Using a Gene ic Algo i hm
FIGURE 6. Measu emen esul s o an α= −0.5 o de FOC implemen ed using he Valsa ne wo k op imized using GA o wo decades in di e en
equency anges: (a) 1 MHz–100 MHz, (b) 5 MHz–500 MHz, and (c) 50 MHz–1 GHz.
FIGURE 7. Mon e Ca lo analysis: Phase a ia ion a 30 MHz o he Valsa
ne wo k op imized using GA ( alues used in Fig. 6(a)).
ange, ope a e up o a maximum o 5 GHz. In addi ion, his
equency ange is in e sely p opo ional o he esis ance
alues. Fo ins ance, a 100  esis o wo ks un il 8 GHz,
whe eas a 1 k esis o has a cons an ze o-deg ee phase
esponse up o 800 MHz and so o h. A high equencies,
he ansmission line e ec becomes dominan ; he e o e,
we main ain he dis ance be ween passi e elemen s he leas .
Despi e he abo e men ioned limi a ions, we ob ained he
esul s un il 1 GHz wi h low phase angle de ia ions as shown
in Figs. 6(a)–(c).
MC analysis was pe o med in O CAD PSpice R
simula-
ion so wa e wi h 0402 ki esis o s [60] and capaci o s [62]
wi h ole ance acco ding o hei da ashee s, and 200 uns.
The his og am shown in Fig. 7demons a es he a ia ion o
he phase a 30 MHz wi h alues used in Fig. 6(a). The mean
alue wi h s anda d de ia ion 0.793 is −44.8853◦, which is
again e y close o he heo e ical alue −45◦.
One o he ad an age o he p oposed GA o design FOC
is i s sui abili y o any RC ladde opology, such as Caue -I,
Caue -II, o Fos e -I. In gene al, by eplacing he admi ance
unc ion o he desi ed opology, i is possible o de e mine
he equi ed esis ance and capaci ance alues o build an
FOC wi h desi able elec ical p ope ies. No ably, he lis
o admi ances o lis ed ne wo ks can be ound in Table 1.
Fig. 8shows he phase and pseudocapaci ance esponses
FIGURE 8. (a) Simula ed phase and (b) ela i e phase e o s and
co esponding no malized his og ams (%) o phase angle de ia ion om
CPA as an inse , (c) pseudocapaci ance esponses, (d) ela i e
pseudocapaci ance e o s and co esponding no malized his og ams (%)
o pseudocapaci ance de ia ion om CPA as an inse , espec i ely, o ou
RC ne wo ks op imized using GA. Responses a e op imized in he
equency ange o 100 Hz–1 MHz.
wi h co esponding ela i e e o s and no malized his og ams
(%) o de ia ions o ou RC opologies while he a ge
phase, pseudocapaci ance, and equency bandwid h a e se
o −45◦, 10 nF·s−0.5, and 4 decades in he equency ange o
100 Hz−1 MHz, espec i ely. The la ges de ia ion be ween
he desi ed and simula ed phase alues in all opologies is up
o ±2.5◦wi h low pseudocapaci ance de ia ion.
IV. OPTIMIZATION AND VERIFICATION OF FOI
The mos popula echnique o mimic an induc o is using
a GIC employing Op-Amps, esis o s, and capaci o s [19],
80238 VOLUME 7, 2019
A. Ka ci e al.: Syn hesis and Op imiza ion o F ac ional-O de Elemen s Using a Gene ic Algo i hm
TABLE 3. Compa ison o simula ion and measu emen esul s o used me hods o FOC design.
FIGURE 9. Nume ical simula ion esul s o i e-b anches Valsa RL
ne wo k using 0603 ki R and L alues o FOI design: (a) phase,
pseudoinduc ance, and magni ude esponses, (b) ela i e phase e o s
and co esponding no malized his og ams (%) o h ee di e en o de s in
he equency ange o 10 kHz–10 MHz.
[20], [33], [45]–[47], [49]– [52]. Howe e , he pe o mances
o hese GIC-based ac i e induc ance simula o s o en su e
om he non-ideali ies o Op-Amps. The e o e, his sec ion
deals wi h he op imal emula ion o an FOI o he i s ime
in he li e a u e. The FOI design using he GA is s udied
nume ically and expe imen ally e i ied.
A. OPTIMIZATION OF VALSA STRUCTURE FOR FOI DESIGN
The Valsa RC ne wo k in Table 1is modi ied o an RL- ype
s uc u e by eplacing all capaci o s wi h induc o s as shown
in co esponding igu e. I s equi alen impedance unc ion is
gi en in Table 1, whe e nis he numbe o b anches, R0is
he ini ial esis o , L0is he ini ial induc o , Riand Lia e he
esis ances and induc ances o he i- h b anch, espec i ely,
while he i ness unc ion is desc ibed as (1). The equency
esponse o i e-b anch FOIs wi h h ee di e en angles using
FIGURE 10. Measu emen esul s o an α=0.5 o de FOI om Fig. 9and
he ab ica ed de ice wi h dimensions o 15 mm ×17 mm as in inse
(blue line - impedance esponse; ed line - phase esponse).
0603 ki R[59] and L[63] alues is s udied nume ically
and shown in Fig. 9. The pseudoinduc ances o o de s α=
{0.25,0.5,0.75}a e 8.52 mH·s−0.75, 834.62 µH·s−0.5, and
89.62 µH·s−0.25, which a e cons an wi h small de ia ions
in he whole equency ange. Fu he mo e, he slope o
magni ude in he inse o Fig. 9(a) shows ha he induc i e
eac ance (impedance) o he FOI inc eases as he supply e-
quency ac oss i inc eases. To es ima e he equi alen o de α,
he simula ed magni ude esponses a e i ed o he unc ion
log10|Z| = αlog +log10(2π)αLαusing he linea leas
squa es me hod. The equi alen equa ions om i ing he
magni ude a e p o ided inside Fig. 9(a). The maximum PAD
and ela i e phase e o s o he ela ed o de s a e {±1.84◦,
±1.66◦,±1.55◦} and {±8.16%, ±3.68%, ±2.29%}, espec-
i ely, as depic ed in Fig. 9(b). The ope a ing equency
ange is chosen be ween 10 kHz and 10 MHz because o
he wo king equency ange o he 0603 ki ce amic chip
induc o s [63]. Conside ing ha he maximum PAD is a ound
±2◦, o de o 0.25 is limi ed om 12 kHz. The used passi e
elemen alues a e lis ed in Appendix C.
Mo eo e , he beha io o an α=0.5 o de FOI,
nume ically simula ed in Fig. 9, was e i ied using he
Agilen 4294A p ecision Impedance Analyze . S anda d cal-
ib a ion es s (open and sho ci cui s) o he 16047E Tes
Fix u e we e pe o med o calib a e he ins umen . Du ing
he expe imen al alida ion in he equency ange 400 kHz−
40 MHz (801 loga i hmically spaced poin s in wo decades),
VOLUME 7, 2019 80239
A. Ka ci e al.: Syn hesis and Op imiza ion o F ac ional-O de Elemen s Using a Gene ic Algo i hm
TABLE 4. Passi e elemen alues o FOC using he Fos e -II ne wo k and hei pe o mance cha ac e is ics.
TABLE 5. Passi e elemen alues o FOC using he Valsa ne wo k and hei pe o mance cha ac e is ics.
80240 VOLUME 7, 2019
A. Ka ci e al.: Syn hesis and Op imiza ion o F ac ional-O de Elemen s Using a Gene ic Algo i hm
TABLE 6. Passi e elemen alues o FOI using he RL ne wo k and hei pe o mance cha ac e is ics.
a sinusoidal inpu signal wi h a de aul AC ol age o 500 mV
and a equency o 1 MHz was applied, while one o e minals
was g ounded. The measu emen esul s and a pho og aph o
he ab ica ed de ice wi h dimensions o 15 mm ×17 mm
a e depic ed in Fig. 10. The measu ed PAD in wo decades o
he equency ange o ou in e es is ±5.82◦.
In addi ion o an α=0.5 o de FOI, a MC s a is ical
analysis was also pe o med in he O CAD PSpice R
simu-
la ion so wa e. The passi e elemen ole ances acco ding o
0603 ki da ashee s [59], [63] and 200 uns we e se o obse e
a ec s due o manu ac u ing p ocesses. The his og am shown
in Fig. 11 demons a es he a ia ion o he phase a 3 MHz.
The mean alue wi h s anda d de ia ion 0.49 is 45.1964◦,
which is e y close o he heo e ical alue 45◦con i ming
ha he p oposed ne wo k has low sensi i i y cha ac e is ic
on passi e componen s.
In addi ion, o he i s ime in he li e a u e, he Fos e -I,
Fos e -II, Caue -I, and Caue -II ype o RL ne wo ks a e also
s udied. The impedance unc ion o all ne wo ks op imized
using GA a e gi en in Table 1. Fig. 12 shows he phase
and pseudoinduc ance esponses wi h co esponding ela i e
e o s and no malized his og ams (%) o de ia ions o ou
RL opologies. The a ge phase and equency bandwid h
a e se o 45◦and 3 decades in he equency ange o
10 kHz −10 MHz, espec i ely, wi h no pseudoinduc ance
FIGURE 11. Mon e Ca lo analysis: Phase a ia ion a 3 MHz o he Valsa
RL ne wo k op imized using GA (α=0.5 o de FOI wi h alues used
in Figs. 9and 10).
speci ica ion o ob ain he bes esul . In summa y, he min-
imal e o is ob ained wi h Fos e -I s uc u e while he leas
sp ead o passi e elemen alues a e obse ed wi h he Fos e -
II. The de ailed analysis including MC esul s o all s udied
ne wo ks is p esen ed in Appendix C.
V. BRIEF DISCUSSION OF RESULTS
Table 3compa es he pe o mance o RC ne wo ks buil
using Ous aloup, CFE, RA, and he GA. Fo ins ance, o
he Fos e -II ne wo k composed o he same numbe o
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