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The High-Velocity Impact Behaviour of Kevlar Composite Laminates Filled with Cork Powder

Abstract

The literature reports benefits when the cork powder obtained from industrial by-products is used as the filler of composite laminates. For example, while the fatigue life is insensitive to the presence of cork in the resin, significant improvements are achieved in terms of to low-velocity impact strength. However, in terms of ballistic domain, the literature does not yet report any study about the e ect of incorporating powdered cork into resins. Therefore, this study intended to analyse the ballistic behaviour and damage tolerance of Kevlar/epoxy reinforced composites with matrix filled by cork powder. For this purpose, high-velocity impacts were studied on plates of Kevlar bi-directional woven laminates with surfaces of 100 100 mm2. It was possible to conclude that the minimum velocity of perforation is 1.6% higher when the cork powder is added to the resin, but considering the dispersion, this small di erence can be neglected. In terms of damage areas, they are slightly lower when cork dust is added, especially for velocities below the minimum perforation velocity. Finally, the residual bending strength shows that these composites are less sensitive to impact velocity than the samples with neat resin. In addition to these benefits, cork powder reduces the amount of resin in the composite, making it more environmentally friendly.

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The High-Velocity Impact Behaviour of Kevlar Composite Laminates Filled with Cork Powder

Author: Amaro, Ana Martins,Reis, Paulo Nobre Balbis,Ivañez, Ines,Sánchez-Saez, Sonia,Garcia-Castillo, Shirley Kalamis,Barbero, Enrique
Publisher: MDPI
Year: 2020
DOI: 10.3390/app10176108
Source: https://estudogeral.uc.pt/bitstream/10316/105792/1/The-highvelocity-impact-behaviour-of-kevlar-composite-laminates-filled-with-cork-powderApplied-Sciences-Switzerland.pdf
applied
sciences
A icle
The High-Veloci y Impac Beha iou o Ke la
Composi e Lamina es Filled wi h Co k Powde
Ana Ma ins Ama o 1,* , Paulo Nob e Balbis Reis 2, Ines I añez 3, Sonia Sánchez-Saez 3,
Shi ley Kalamis Ga cia-Cas illo 3and En ique Ba be o 3
1CEMMPRE, Depa men o Mechanical Enginee ing, Uni e si y o Coimb a, 3030-788 Coimb a, Po ugal
2C-MAST, Depa men o Elec omechanical Enginee ing, Uni e si y o Bei a In e io ,
6201-100 Co ilhã, Po ugal; [email p o ec ed]
3Depa men o Con inuum Mechanics and S uc u al Analysis, Uni e si y Ca los III o Mad id,
28911 Leganés, Spain; [email p o ec ed] (I.I.); [email p o ec ed] (S.S.-S.);
[email p o ec ed] (S.K.G.-C.); [email p o ec ed] (E.B.)
*Co espondence: [email p o ec ed]; Tel.: +351-239-790-700
Recei ed: 25 June 2020; Accep ed: 31 Augus 2020; Published: 3 Sep embe 2020


Abs ac :
The li e a u e epo s bene i s when he co k powde ob ained om indus ial by-p oduc s
is used as he ille o composi e lamina es. Fo example, while he a igue li e is insensi i e o he
p esence o co k in he esin, signi ican imp o emen s a e achie ed in e ms o o low- eloci y impac
s eng h. Howe e , in e ms o ballis ic domain, he li e a u e does no ye epo any s udy abou
he e ec o inco po a ing powde ed co k in o esins. The e o e, his s udy in ended o analyse he
ballis ic beha iou and damage ole ance o Ke la /epoxy ein o ced composi es wi h ma ix illed by
co k powde . Fo his pu pose, high- eloci y impac s we e s udied on pla es o Ke la bi-di ec ional
wo en lamina es wi h su aces o 100
×
100 mm
2
. I was possible o conclude ha he minimum
eloci y o pe o a ion is 1.6% highe when he co k powde is added o he esin, bu conside ing
he dispe sion, his small di e ence can be neglec ed. In e ms o damage a eas, hey a e sligh ly
lowe when co k dus is added, especially o eloci ies below he minimum pe o a ion eloci y.
Finally, he esidual bending s eng h shows ha hese composi es a e less sensi i e o impac eloci y
han he samples wi h nea esin. In addi ion o hese bene i s, co k powde educes he amoun o
esin in he composi e, making i mo e en i onmen ally iendly.
Keywo ds: Ke la composi e lamina es; ballis ic impac ; co k powde ; mechanical es ing
1. In oduc ion
The indus ial wo ld is unde eno mous p essu e o use mo e sus ainable ma e ials in hei
p oduc s, in o de o alle ia e p oblems ela ed o ai pollu ion, global wa ming and sho ages o ossil
uels. Acco ding o s udies published in 2015, o example, he anspo sec o alone is esponsible o
25% o g eenhouse emissions in Eu ope, 16% in Aus alia and 23% in he USA [
1
], and his endency is
o inc ease i no hing is done o coun e i .
Fib e- ein o ced polyme s a e a ac i e candida es o eplace he adi ional ma e ials,
because hey ha e high speci ic s eng h and s i ness, and excellen a igue esis ance and s abili y.
Howe e , hese ma e ials a e also subjec ed o he same sus ainable p essu es, and oday, i is possible
o obse e a signi ican inc ease in he use o na u al ib es. They a e enewable, biodeg adable and
a ailable h oughou he wo ld. The a ious e iew a icles a ailable in he open li e a u e deno e his
eno mous in e es [2–7], e en in e ms o impac s eng h [8–10].
Na u al ib es a e s ong enough, ligh in weigh , abundan , non-ab asi e and cheap [
11
–
13
].
When compa ed o o he ib es, hey ha e a speci ic weigh ha is abou hal o a glass ib e’s weigh
Appl. Sci. 2020,10, 6108; doi:10.3390/app10176108 www.mdpi.com/jou nal/applsci
Appl. Sci. 2020,10, 6108 2 o 12
and a ensile modulus qui e simila o ha o a amid ib es [
14
]. Mo eo e , ib es wi h highe cellulose
con en , highe deg ees o polyme isa ion and lowe mic o ib illa angles exhibi highe ensile
s eng h and moduli [
15
]. On he o he hand, he main disad an ages a e hei lowe he mal s abili y,
which limi s hei use wi h some he moplas ics, and low esis ance o mois u e and dimensional
s abili y, which can lead o debonding and mic oc acking in he composi e [16].
Howe e , he e is eal e idence ha o es s in de eloped coun ies a e dwindling and o he na u al
p oduc s a e eme ging, especially hose ob ained om ag icul u al by-p oduc s o ag o-was e ma e ials.
In his con ex , he di e en co k was es esul ing om he manu ac u e o a ious co k-based p oduc s
a e e y a ac i e because hey main ain he same in insic cha ac e is ics o co k, such as low speci ic
weigh , g ea elas ici y, lexibili y and du abili y, speci ic s i ness and s eng h, impe meabili y o
liquid and gases, esis ance o wea and i e, dimensional s abili y and esis ance o eac i e agen s
and mic oo ganisms [
17
–
20
]. These co k was es p esen di e en densi ies, amoun s o mois u e,
g anulome ies, sizes, le els o ash con en and annin concen a ions [
21
,
22
], and all o hem we e
con enien ly cha ac e ized by Gil [
23
]. Fo example, co k powde is he mos impo an was e om co k
p ocessing, whe e only he co k-s oppe p oduc ion is esponsible o 25% o 30% o he aw ma e ial.
Acco ding o he Po uguese S anda ds NP-114 and NP-273, co k powde has dimensions lowe han
0.25 mm and he e a e di e en ypes acco ding o hei o igin: he g inding powde , om g anula ion
o p e-g inding; he cleaning powde , wi hou impu i ies; he inishing powde , om cu and sanding
ope a ions; he agglome a ed co k panels’ inishing powde ; he agglome a ed co k s oppe s and
disks’ inishing powde ; he insula ion co k boa d powde [
23
,
24
]. These powde s ha e been used
mainly as combus ion uels (due o i s high hea ing alue) [
22
,
23
]. A small ac ion a e also used as
illing agen s ( o imp o e he quali y o co k-s oppe s) [
23
,
24
]; in he p oduc ion o linoleum [
23
,
24
];
in applica ions in agglome a es [
23
,
24
]; as b ique es [
23
,
24
]; as ag icul u al subs a es [
23
,
24
]; and mo e
ecen ly, co k powde s ha e been used as pollu an adso ben s o as abso ben s in oil spli s due o
hei good adso p ion p ope ies [
24
–
26
], and in he p oduc ion o composi es due o hei physical
and mechanical p ope ies [27,28].
Sanchez-Saez e al. [
29
] de eloped an expe imen al s udy, whe e he mul i-impac beha iou o
agglome a ed-co k specimens was analysed. They obse ed a g ea capabili y o agglome a ed co k o
abso b ene gy e en a e se e al consecu i e impac s. The damage esis ance o sandwich s uc u es
wi h agglome a ed co k co e and lax/epoxy lamina es ace shee s subjec ed o low- and high- eloci y
impac s was e alua ed by Sa asini e al. [
30
]. They obse ed ha co k cell walls expe ienced buckling,
and in his con ex , he ene gy abso p ion a high s ains can be qui e conside able wi hou signs
o cell walls b eakage. This sugges an almos comple e eco e y o hei o iginal shape and size.
Mo eo e , he composi e s uc u es du ing i s se ice li e can be damaged due o impac loading,
and his damage in composi e ma e ial is o p ima y conce n because i leads o la ge educ ion in
s eng h and comp omises hei s uc u al in eg i y [30,31].
Reis e al. [
32
], o example, de eloped s udies in composi es inco po a ing co k powde , ob ained
om indus ial by-p oduc s, and obse ed bene i s in e ms o impac s eng h and glass ansi ion
empe a u e (T
g
). When 2.5 w .% was added o he polyes e esin, he impac s eng h inc eased
o a ound 18.5% and he T
g
o abou 7.3% compa ed o he alues ob ained wi h he p is ine esin.
In ano he expe imen al s udy [
33
], hese au ho s ob ained bene i s in e ms o elas ic ecupe a ion and
damaged a ea when co k powde was added o an epoxy esin, and highe pene a ion h eshold and
esidual ensile s eng h o he lamina es ha inco po a e he co k powde . Fo example, he elas ic
ecupe a ion inc eased by abou 26%, o a 21 J impac ene gy, and he damaged a ea dec eased by
a ound 15% o he same impac ene gy and compa ed o he alues ob ained o lamina es wi h nea
esin. Rega ding he pene a ion h eshold, hese alues we e abou 15% while he esidual s eng h
dec eased a ound 47% o lamina es subjec ed o an impac ene gy o 21 J [33].
In e ms o a igue p ope ies, independen ly o he lowe s a ic bending s eng h (a ound 10%
lowe when 3 w .% o co k powde was added o he esin), Reis e al. [
34
] obse ed, based on a
s a is ical analysis o a igue da a, ha a igue li e is insensi i e o he p esence o co k in o he esin.
Appl. Sci. 2020,10, 6108 3 o 12
Finally, due o he iscoelas ic p ope ies o co k and polyme ic ma ices, Reis e al. [
35
] pe o med a
s udy whe e he s ess elaxa ion and c eep beha iou o mul iphase composi es inco po a ing co k
powde we e analysed in de ail. Fo his pu pose, composi es wi h he same lay-up bu wi h di e en
ib es we e p oduced. They concluded ha highe alues o elaxa ion and c eep displacemen occu
when Ke la ib es a e used, bu , independen ly o he ib es, highe alues we e also obse ed when
co k powde was in oduced in o he esin.
The e o e, based on he bene i s achie ed wi h his indus ial by-p oduc , he main goal o his
wo k was o s udy he high- eloci y impac beha iou o Ke la composi e lamina es illed by co k
powde , in o de o ob ain ull knowledge o all loading modes. These ib es a e o pa icula in e es
o mili a y and ci ilian pu poses, due o hei high deg ee o oughness and good impac /ballis ic
pe o mance. In ac , a amid ib es ail by a se ies o small ib il ailu es ha abso b a signi ican
amoun o ene gy, esul ing in e y high oughness. Fo ha pu pose, his wo k ocused on he
ballis ic beha iou and damage ole ance o Ke la /epoxy ein o ced composi es, in which he epoxy
ma ix is illed wi h co k powde . The pe o a ion eloci y and ene gy abso p ion we e es ima ed om
expe imen al es s and damaged a ea was ob ained by bo h C-scan ul asound echnique and isual
inspec ion om impac ed specimens. In o de o e alua e he damage ole ance, bending a e impac
(BAI) es s we e ca ied ou .
2. Expe imen al P ocedu e
Composi e lamina e pla es in ol ing Ke la bi-di ec ional wo en ab ics ( a e a wi h 281 g/cm
2
)
and an Amp eg 22 epoxy esin wi h an Amp eg 22 ha dene s anda d (bo h supplied by Gu i ) we e
manu ac u ed wi h a use ul size o 300
×
300
×
3.3 mm
3
by hand lay-up echnique. Fo his pu pose,
nine ply lamina es, all in he same di ec ion, we e used. A e ha , he sys em was placed inside
a acuum bag and a load o 2.5 kN was applied o 48 h o ensu e a uni o m lamina e hickness.
Du ing he i s 10 h he bag emained a ached o a acuum pump o elimina e possible ai bubbles in
he composi e lamina es. Finally, he pos -cu e was ca ied ou in an o en a 45
◦
C o 48 h o gua an ee
a con enien cu ing s age.
Simila composi e lamina es wi h epoxy ma ix illed by co k powde we e also p oduced by he
same me hodology. The co k powde used consis s o a esidue ob ained du ing he inal sanding
phase o co k-s oppe s and i was collec ed a Amo im Co k S.A. (Valada, Po ugal) indus ial acili ies.
The co k powde p esen s a pa icle size, in e ms o pe cen ile, o d (0.1) =18.6
µ
m, d (0.5) =78.9
µ
m
and d (0.9) =208.3
µ
m; a bulk densi y o 0.1095 g.cm
−3
; and a humidi y o
≈
5.1%. The low mois u e
con en obse ed is explained by he ac ha he aw ma e ial om which he co k powde was
ob ained unde wen se e al hea ing and d ying ope a ions [
23
]. Rega dless o he low mois u e
con en obse ed, o imp o e he adhesion wi h he esin, he co k powde was s ill d ied in an o en
(He aus, model UT 6060) a 120
◦
C o 2 h and s o ed un il used in a desicca o . Finally, he co k
powde (3 w .% o he epoxy esin-ha dene mix u e) and epoxy esin we e mixed a 900 pm o
2 h, wi h esou ce o an elec ical mixe , in an ul asonic ba h o an uni o m dis ibu ion o he co k
pa icles in o he esin. In o de o a oid he o ma ion o ai bubbles, he mix u e was degassed in a
acuum o en, ollowed by addi ion o ha dene agen . Howe e , mo e de ails abou he co k ac ion
used and espec i e manu ac u ing p ocess can be ound in [32–34].
Acco ding o Pin o e al. [
24
], co k’s s uc u e is o med by hollow polyhed al p isma ic cells,
which ha e a honeycomb shape when obse ed om he adial di ec ion and ec angula when
obse ed om he ans e sal di ec ion [
9
]. The a ea o he p ism base is 4 o 6
×
10
−6
cm
2
, wi h a mean
p ism edge o 13–15
µ
m and a p im heigh o 30–40
µ
m. The mean cell olume is a ound 2
×
10
−8
cm
3
and he numbe o cells pe uni is 4 o 7
×
10
7
cm
−3
. The cell walls a e hin, wi h a hickness o 1 o
1.5
µ
m, in which is concen a ed he solid mass olume ac ion o he co k [
36
]. The co k powde
keeps he same cellula s uc u e in ac ; howe e , when he size o co k pa icles deceases, he numbe
o closed cells dec eases and he ex e nal su ace a eas o he pa icles inc ease, and consequen ly,
he numbe o open h ough-cu cells inc eases [
36
]. Based in s udies epo ed by Pe ei a [
36
], a co k
Appl. Sci. 2020,10, 6108 4 o 12
pa icle o olume 0.015 mm
3
(a ound 0.25
×
0.25
×
0.25 mm
3
) con ains abou 500 cells (7–9 cell pe
one ow) in which only a ac ion o 6 o 8 cells in one ow a e closed. This e idence and espec i e
pa icle shape and mo phology a e well epo ed by scanning elec on mic og aphs, in a e iew pape
compiled by Pe ei a [36], o co k pa icles simila o hose used in his s udy.
The high- eloci y impac s we e ca ied ou on pla es o Ke la bi-di ec ional wo en lamina es
wi h su ace o 100
×
100 mm
2
. The specimen’s size was big enough ha he damaged a ea did no
each he bo de o he lamina e. The p ojec ile used o impac es s was o s eel wi h a sphe ical
geome y o 7.5 mm diame e and a densi y o 7800 kg/m
3
. In o de o ca y ou he impac es s, a gas
gun (Figu e 1) was used o impulse he p ojec ile a he equi ed eloci y. This gas gun consis s o
se e al clea ly di e en ia ed zones: he load and accommoda ion a ea o he p ojec ile, he p essu e
chambe ha impulses he p ojec ile agains he a ge , a launch ube and a ame whe e he lamina e
is embedded.
Appl. Sci. 2020, 10, x FOR PEER REVIEW 4 o 13
pa icle shape and mo phology a e well epo ed by scanning elec on mic og aphs, in a e iew
pape compiled by Pe ei a [36], o co k pa icles simila o hose used in his s udy.
The high- eloci y impac s we e ca ied ou on pla es o Ke la bi-di ec ional wo en lamina es
wi h su ace o 100 × 100 mm2. The specimen’s size was big enough ha he damaged a ea did no
each he bo de o he lamina e. The p ojec ile used o impac es s was o s eel wi h a sphe ical
geome y o 7.5 mm diame e and a densi y o 7800 kg/m3. In o de o ca y ou he impac es s, a
gas gun (Figu e 1) was used o impulse he p ojec ile a he equi ed eloci y. This gas gun consis s
o se e al clea ly di e en ia ed zones: he load and accommoda ion a ea o he p ojec ile, he p essu e
chambe ha impulses he p ojec ile agains he a ge , a launch ube and a ame whe e he lamina e
is embedded.
Figu e 1. Pho o o he equipmen used in he high- eloci y impac es s.
To impulse he p ojec ile, he p essu e o he gas used was egula ed and wo di e en ypes o
gas we e used: helium o achie e he highes eloci ies, and S a gon® a mix u e o a gon, ca bon
dioxide and oxygen manu ac u ed by NIPPON GASES ESPAÑA, S.L.U. (Mad id, Spain) o he
lowes eloci ies.
The impac es s we e eco ded wi h a high- eloci y came a (Figu e 2), which was used o pick
up essen ial in o ma ion such as he impac and esidual eloci ies. The came a used was a Pho on
Fas cam ATX, which is able o each 250,000 ames pe second. In hese es s he acquisi ion da a
eloci y was 90,000 ps. The came a was placed pa allel o he ame o essays. An ARRI ARRISON
12 PLUS lamp was used o ligh ing. This lamp has a powe o 1200 W.
A e he impac es s, non-des uc i e es ing (NDT) was ca ied ou on all impac ed specimens,
in o de o e alua e he damage ex ension by ul asonic inspec ion, speci ically C-scan. Fo his
pu pose, he ai -coupled scan echnique was used, because i is a good al e na i e o he adi ional
ul asonic imme sion C-scan echnique when he de ec ion o small de ec s (ma ix c acking,
ib e/ma ix in e ace debonding, e c.) is no equi ed, as in he p esen s udy [37,38]. The e o e, a
pai o ansduce s wi h 400 kHz cen e equency, 38 mm ocus and 25 mm ac i e diame e we e
used in a h ough- ansmission con igu a ion.
Figu e 1. Pho o o he equipmen used in he high- eloci y impac es s.
To impulse he p ojec ile, he p essu e o he gas used was egula ed and wo di e en ypes o gas
we e used: helium oachie e he highes eloci ies, andS a gon
®
amix u eo a gon, ca bon dioxideand
oxygen manu ac u ed by NIPPON GASES ESPAÑA, S.L.U. (Mad id, Spain) o he lowes eloci ies.
The impac es s we e eco ded wi h a high- eloci y came a (Figu e 2), which was used o pick
up essen ial in o ma ion such as he impac and esidual eloci ies. The came a used was a Pho on
Fas cam ATX, which is able o each 250,000 ames pe second. In hese es s he acquisi ion da a
eloci y was 90,000 ps. The came a was placed pa allel o he ame o essays. An ARRI ARRISON
12 PLUS lamp was used o ligh ing. This lamp has a powe o 1200 W.
Appl. Sci. 2020, 10, x FOR PEER REVIEW 5 o 13
Figu e 2. Pho o o he high- eloci y impac es se up.
Finally, esidual s eng h was ob ained by h ee-poin bending (3PB) s a ic es s pe o med wi h
a spam o 80 mm in a Shimadzu AG-10 (Ri e wood D i e Columbia, SC, USA) uni e sal es ing
machine equipped wi h a 5 kN load cell, s ain a e o 5 mm/s and a oom empe a u e.
3. Resul s and Discussion
Figu e 3 shows he abso bed ene gy ega ding impac ene gy o all he specimens. The a ia ion
o he abso bed ene gy wi h impac ene gy is e y simila o bo h ype o pla es. Below pe o a ion,
he pla es abso b all he kine ic ene gy o he p ojec ile, mainly by damage. When he impac ene gy
inc eases abo e pe o a ion, he abso bed ene gy dec eases asymp o ically.
I was no possible o calcula e he minimum pe o a ion eloci y in a de e minis manne , as an
impac - eloci y in e al exis s in which he s uc u e may o may no be en i ely pe o a ed. In
addi ion, he esidual eloci y o he p ojec ile om he gas gun canno be ully con olled. Fo his
eason, a high le el o sca e was ound in he da a ob ained om he expe imen al es s a ound he
minimum pe o a ion eloci y. To ob ain his eloci y, a leas -squa es me hod was used, by i ing
Equa ion (1) which is simila o ha p oposed in he model o Rech and Ipson [39]. This me hod has
been used success ully o p edic he minimum pe o a ion eloci y in lamina e and sandwich
s uc u es subjec ed o high eloci y impac s [30,40–42].
𝑣𝑣𝑟𝑟=�0 𝑖𝑖𝑖𝑖 0 ≤𝑣𝑣𝑖𝑖<𝑣𝑣𝑏𝑏𝑏𝑏
𝑣𝑣𝑟𝑟=𝐴𝐴∙�𝑣𝑣𝑖𝑖𝑝𝑝−𝑣𝑣𝑏𝑏𝑏𝑏
𝑝𝑝�
1
𝑝𝑝
� 𝑖𝑖𝑖𝑖 𝑣𝑣𝑖𝑖>𝑣𝑣𝑏𝑏𝑏𝑏
(1)
whe e: is he esidual eloci y, i he impac eloci y, bl he minimum eloci y o pe o a ion and
p and A a e i ing pa ame e s.
Figu e 2. Pho o o he high- eloci y impac es se up.
Appl. Sci. 2020,10, 6108 5 o 12
A e he impac es s, non-des uc i e es ing (NDT) was ca ied ou on all impac ed specimens,
in o de o e alua e he damage ex ension by ul asonic inspec ion, speci ically C-scan. Fo his pu pose,
he ai -coupled scan echnique was used, because i is a good al e na i e o he adi ional ul asonic
imme sion C-scan echnique when he de ec ion o small de ec s (ma ix c acking, ib e/ma ix
in e ace debonding, e c.) is no equi ed, as in he p esen s udy [
37
,
38
]. The e o e, a pai o
ansduce s wi h 400 kHz cen e equency, 38 mm ocus and 25 mm ac i e diame e we e used
in a h ough- ansmission con igu a ion.
Finally, esidual s eng h was ob ained by h ee-poin bending (3PB) s a ic es s pe o med wi h a
spam o 80 mm in a Shimadzu AG-10 (Ri e wood D i e Columbia, SC, USA) uni e sal es ing machine
equipped wi h a 5 kN load cell, s ain a e o 5 mm/s and a oom empe a u e.
3. Resul s and Discussion
Figu e 3shows he abso bed ene gy ega ding impac ene gy o all he specimens. The a ia ion
o he abso bed ene gy wi h impac ene gy is e y simila o bo h ype o pla es. Below pe o a ion,
he pla es abso b all he kine ic ene gy o he p ojec ile, mainly by damage. When he impac ene gy
inc eases abo e pe o a ion, he abso bed ene gy dec eases asymp o ically.
Appl. Sci. 2020, 10, x FOR PEER REVIEW 6 o 13
Figu e 3. Impac ene gy s. abso bed eloci y.
The e o e, he minimum eloci y o pe o a ion is abou 206.35 ± 4.20 m/s o Ke la lamina es
wi h nea esin, while o ha wi h esin illed wi h co k powde is a ound 209.71 ± 4.63 m/s.
Rega dless o he small di e ence in e ms o a e age alues (1.6%), bo h alues a e simila because
hey a e wi hin he expe imen al dispe sion. In ac , co k is a hyd ophobic ma e ial wi h a su ace
ene gy o 18 mN.m−1, while he ypical cu ed epoxies ha e su ace ene gy o abou 45 mN.m−1 and a
poo adhesion occu s o subs a es wi h a su ace ene gy o 30 mN.m−1 o lowe . Howe e , his
weakness is coun e ed by he la ge ex e nal su aces o he pa icles [36]. Rega dless o he
imp o emen s ob ained in e ms o su ace ene gy using su ace ea men s [43,44], Ba bosa e al. [44]
epo ha some o hem des oy pa o he honeycomb s uc u e o he co k cells (e osion o co k
cell walls). In his case, he damage caused o he pa icles can acili a e he pene a ion o he esin
wi h he consequen dec ease on he abso p ion o ene gy, because he damping e ec o co k is los .
The e o e, while he bonds ha occu when he adhesi e di uses in o cell walls o build chemical
bonds wi h he cell’s chemical componen s a e weake , he pa icles’ mo phology p omo es he
physical bonds wi h he pene a ion o he epoxy esin in o he open cells and consequen mechanical
in e locking. In his con ex , he co k pa icles a e su ounded by esin, and he closed cells ha
con ain ai inside can de o m when hey su e an impac o ce and abso b ha impac [44]. Fo his
eason, small pa icles show less imp o emen han la ge pa icles, because he numbe o open
h ough-cu cells inc eases, and he esin does no allow he cell de o ma ion. Consequen ly, hey
canno abso b as much ene gy. The e o e, he esponse o he co k/ esin composi e is in luenced by
he numbe o closed cells in he pa icle [44].
In addi ion o he bene i ob ained in e ms o impac , i is unques ionable ha he co k powde
educes he amoun o esin in he composi e, making i mo e en i onmen ally iendly. These esul s
a e in good ag eemen wi h he open li e a u e, whe e Reis e al. [34] obse ed, o example, ha
a igue li e is insensi i e o he p esence o co k powde in o he esin. Simul aneously, hese au ho s
ob ained bene i s in e ms o impac s eng h and glass ansi ion empe a u e [32,33].
To unde s and hese esul s, he ailu e mechanisms a e shown in de ail and Figu es 4 and 5.
They show ypical images ob ained om isual inspec ion o he back side o he pla es. Figu e 4
shows he specimens o Ke la and Ke la wi h co k powde impac ed a simila eloci ies, close o
he pe o a ion eloci y, while he specimens o Figu e 5 we e impac ed a highe eloci ies.
Figu e 3. Impac ene gy s. abso bed eloci y.
I was no possible o calcula e he minimum pe o a ion eloci y in a de e minis manne , as an
impac - eloci y in e al exis s in which he s uc u e may o may no be en i ely pe o a ed. In addi ion,
he esidual eloci y o he p ojec ile om he gas gun canno be ully con olled. Fo his eason,
a high le el o sca e was ound in he da a ob ained om he expe imen al es s a ound he minimum
pe o a ion eloci y. To ob ain his eloci y, a leas -squa es me hod was used, by i ing Equa ion (1)
which is simila o ha p oposed in he model o Rech and Ipson [
39
]. This me hod has been used
success ully o p edic he minimum pe o a ion eloci y in lamina e and sandwich s uc u es subjec ed
o high eloci y impac s [30,40–42].
=






0i 0≤ i< bl
=A· p
i− p
bl1
pi i> bl
(1)
whe e:
is he esidual eloci y,
i
he impac eloci y,
bl
he minimum eloci y o pe o a ion and p
and Aa e i ing pa ame e s.
The e o e, he minimum eloci y o pe o a ion is abou 206.35
±
4.20 m/s o Ke la lamina es wi h
nea esin, while o ha wi h esin illed wi h co k powde is a ound 209.71
±
4.63 m/s. Rega dless o

Appl. Sci. 2020,10, 6108 6 o 12
he small di e ence in e ms o a e age alues (1.6%), bo h alues a e simila because hey a e wi hin
he expe imen al dispe sion. In ac , co k is a hyd ophobic ma e ial wi h a su ace ene gy o 18 mN.m
−1
,
while he ypical cu ed epoxies ha e su ace ene gy o abou 45 mN.m
−1
and a poo adhesion occu s
o subs a es wi h a su ace ene gy o 30 mN.m
−1
o lowe . Howe e , his weakness is coun e ed by
he la ge ex e nal su aces o he pa icles [
36
]. Rega dless o he imp o emen s ob ained in e ms o
su ace ene gy using su ace ea men s [
43
,
44
], Ba bosa e al. [
44
] epo ha some o hem des oy
pa o he honeycomb s uc u e o he co k cells (e osion o co k cell walls). In his case, he damage
caused o he pa icles can acili a e he pene a ion o he esin wi h he consequen dec ease on he
abso p ion o ene gy, because he damping e ec o co k is los . The e o e, while he bonds ha occu
when he adhesi e di uses in o cell walls o build chemical bonds wi h he cell’s chemical componen s
a e weake , he pa icles’ mo phology p omo es he physical bonds wi h he pene a ion o he epoxy
esin in o he open cells and consequen mechanical in e locking. In his con ex , he co k pa icles a e
su ounded by esin, and he closed cells ha con ain ai inside can de o m when hey su e an impac
o ce and abso b ha impac [
44
]. Fo his eason, small pa icles show less imp o emen han la ge
pa icles, because he numbe o open h ough-cu cells inc eases, and he esin does no allow he
cell de o ma ion. Consequen ly, hey canno abso b as much ene gy. The e o e, he esponse o he
co k/ esin composi e is in luenced by he numbe o closed cells in he pa icle [44]
In addi ion o he bene i ob ained in e ms o impac , i is unques ionable ha he co k powde
educes he amoun o esin in he composi e, making i mo e en i onmen ally iendly. These esul s
a e in good ag eemen wi h he open li e a u e, whe e Reis e al. [
34
] obse ed, o example, ha a igue
li e is insensi i e o he p esence o co k powde in o he esin. Simul aneously, hese au ho s ob ained
bene i s in e ms o impac s eng h and glass ansi ion empe a u e [32,33].
To unde s and hese esul s, he ailu e mechanisms a e shown in de ail and Figu es 4and 5.
They show ypical images ob ained om isual inspec ion o he back side o he pla es. Figu e 4
shows he specimens o Ke la and Ke la wi h co k powde impac ed a simila eloci ies, close o
he pe o a ion eloci y, while he specimens o Figu e 5we e impac ed a highe eloci ies.
Appl. Sci. 2020, 10, x FOR PEER REVIEW 7 o 13
(a)
(b)
Figu e 4. Damage a ea o he back side. (a) Specimen o Ke la impac ed a 231 m/s and (b) specimen
o Ke la + co k powde impac ed a 230 m/s.
(a)
(b)
Figu e 5. Image o damage a ea o he back side. (a) Specimen o Ke la impac o 438 m/s and (b)
specimen o Ke la + co k powde impac ed o 439 m/s.
F om he isual inspec ions o he back sides o he pla es (Figu es 4 and 5), i is isible ha he
ailu e mechanisms a e: ib e ailu e and delamina ion. Al hough ma ix c acking is no possible o
iden i y by isual inspec ion, his is one o he i s damage mechanisms in composi e lamina es, and
he e o e, i should appea since i induces o he ailu es modes, as delamina ion [45].
The images o he damaged a ea ha we e ob ained by C-scan in he samples subjec ed o
di e en impac eloci ies a e shown in Figu es 6 and 7. The impac eloci ies coincide wi h he
impac eloci ies o he samples showed in Figu es 4 and 5. In all specimens inspec ed by C-scan, i
was possible o obse e ha he damaged a eas had ci cula shapes, a beha iou ha also appea s in
wo en glass lamina es [46].
Figu e 4.
Damage a ea o he back side. (
a
) Specimen o Ke la impac ed a 231 m/s and (
b
) specimen
o Ke la +co k powde impac ed a 230 m/s.
F om he isual inspec ions o he back sides o he pla es (Figu es 4and 5), i is isible ha he
ailu e mechanisms a e: ib e ailu e and delamina ion. Al hough ma ix c acking is no possible o
iden i y by isual inspec ion, his is one o he i s damage mechanisms in composi e lamina es, and
he e o e, i should appea since i induces o he ailu es modes, as delamina ion [45].
The images o he damaged a ea ha we e ob ained by C-scan in he samples subjec ed o
di e en impac eloci ies a e shown in Figu es 6and 7. The impac eloci ies coincide wi h he impac
eloci ies o he samples showed in Figu es 4and 5. In all specimens inspec ed by C-scan, i was
possible o obse e ha he damaged a eas had ci cula shapes, a beha iou ha also appea s in wo en
glass lamina es [46].
Appl. Sci. 2020,10, 6108 7 o 12
Appl. Sci. 2020, 10, x FOR PEER REVIEW 7 o 13
(a)
(b)
Figu e 4. Damage a ea o he back side. (a) Specimen o Ke la impac ed a 231 m/s and (b) specimen
o Ke la + co k powde impac ed a 230 m/s.
(a)
(b)
Figu e 5. Image o damage a ea o he back side. (a) Specimen o Ke la impac o 438 m/s and (b)
specimen o Ke la + co k powde impac ed o 439 m/s.
F om he isual inspec ions o he back sides o he pla es (Figu es 4 and 5), i is isible ha he
ailu e mechanisms a e: ib e ailu e and delamina ion. Al hough ma ix c acking is no possible o
iden i y by isual inspec ion, his is one o he i s damage mechanisms in composi e lamina es, and
he e o e, i should appea since i induces o he ailu es modes, as delamina ion [45].
The images o he damaged a ea ha we e ob ained by C-scan in he samples subjec ed o
di e en impac eloci ies a e shown in Figu es 6 and 7. The impac eloci ies coincide wi h he
impac eloci ies o he samples showed in Figu es 4 and 5. In all specimens inspec ed by C-scan, i
was possible o obse e ha he damaged a eas had ci cula shapes, a beha iou ha also appea s in
wo en glass lamina es [46].
Figu e 5.
Image o damage a ea o he back side. (
a
) Specimen o Ke la impac o 438 m/s and (
b
)
specimen o Ke la +co k powde impac ed o 439 m/s.
Appl. Sci. 2020, 10, x FOR PEER REVIEW 8 o 13
(a)
(b)
Figu e 6. Images o damage a eas by C-scan. (a) Specimen o Ke la impac o 231 m/s and (b)
specimen o Ke la + co k powde impac ed o 230 m/s.
(a)
(b)
Figu e 7. Images o damage a eas by C-scan. (a) Specimen o Ke la impac o 438 m/s and (b)
specimen o Ke la + co k powde impac ed o 439 m/s.
The specimens impac ed a highe eloci ies, a ound 300 m/s, showed ib e b eakage close o he
impac poin , as epo ed in Figu es 5 and 7. Simul aneously, he C-scan images clea ly show ha he
damage caused by he bulle s no only causes local damage (mac o damage), bu also a ec s he
icini y o he damaged a eas clea ly seen in di e en colou s (mic o damage), which ag ees wi h he
s udies de eloped by Dhakal e al. [47]. Mo eo e , he ex ension o damage is mo e loca ed a ound
he impac poin a highe eloci ies, as can be seen in Figu e 7. In his con ex , he ex ension o
damage a ea de e mined by he C-scan inspec ion is la ge han he damage es ablished by he isual
inspec ion on bo h sides o he lamina e ( on and back ace).The e o e, in addi ion o mac o-damage,
2918.31 mm²2571.03 mm²
1235.87 mm²629.81 mm²
41.52 mm²
Figu e 6.
Images o damage a eas by C-scan. (
a
) Specimen o Ke la impac o 231 m/s and (
b
) specimen
o Ke la +co k powde impac ed o 230 m/s.
Appl. Sci. 2020, 10, x FOR PEER REVIEW 8 o 13
(a)
(b)
Figu e 6. Images o damage a eas by C-scan. (a) Specimen o Ke la impac o 231 m/s and (b)
specimen o Ke la + co k powde impac ed o 230 m/s.
(a)
(b)
Figu e 7. Images o damage a eas by C-scan. (a) Specimen o Ke la impac o 438 m/s and (b)
specimen o Ke la + co k powde impac ed o 439 m/s.
The specimens impac ed a highe eloci ies, a ound 300 m/s, showed ib e b eakage close o he
impac poin , as epo ed in Figu es 5 and 7. Simul aneously, he C-scan images clea ly show ha he
damage caused by he bulle s no only causes local damage (mac o damage), bu also a ec s he
icini y o he damaged a eas clea ly seen in di e en colou s (mic o damage), which ag ees wi h he
s udies de eloped by Dhakal e al. [47]. Mo eo e , he ex ension o damage is mo e loca ed a ound
he impac poin a highe eloci ies, as can be seen in Figu e 7. In his con ex , he ex ension o
damage a ea de e mined by he C-scan inspec ion is la ge han he damage es ablished by he isual
inspec ion on bo h sides o he lamina e ( on and back ace).The e o e, in addi ion o mac o-damage,
2918.31 mm²2571.03 mm²
1235.87 mm²629.81 mm²
41.52 mm²
Figu e 7.
Images o damage a eas by C-scan. (
a
) Specimen o Ke la impac o 438 m/s and (
b
) specimen
o Ke la +co k powde impac ed o 439 m/s.
Appl. Sci. 2020,10, 6108 8 o 12
The specimens impac ed a highe eloci ies, a ound 300 m/s, showed ib e b eakage close o he
impac poin , as epo ed in Figu es 5and 7. Simul aneously, he C-scan images clea ly show ha
he damage caused by he bulle s no only causes local damage (mac o damage), bu also a ec s he
icini y o he damaged a eas clea ly seen in di e en colou s (mic o damage), which ag ees wi h he
s udies de eloped by Dhakal e al. [
47
]. Mo eo e , he ex ension o damage is mo e loca ed a ound he
impac poin a highe eloci ies, as can be seen in Figu e 7. In his con ex , he ex ension o damage
a ea de e mined by he C-scan inspec ion is la ge han he damage es ablished by he isual inspec ion
on bo h sides o he lamina e ( on and back ace).The e o e, in addi ion o mac o-damage, i is e iden
ha he impac also induces in e nal mic o-damage ha is no isible o he naked eye, bu should be
conside ed when quan i ying he damage size [47].
Figu e 8shows he ex ension o damage a ea o all specimens measu ed by C-scan. In all
s uc u es, he la ge damaged a ea was ound o eloci ies a ound he minimum pe o a ion eloci y.
Fo eloci ies below he minimum pe o a ion eloci y, he damaged a ea inc eases wi h eloci y, while
o eloci ies g ea e han he pe o a ion eloci y, he damaged a ea dec eases wi h inc easing eloci y.
Appl. Sci. 2020, 10, x FOR PEER REVIEW 9 o 13
i is e iden ha he impac also induces in e nal mic o-damage ha is no isible o he naked eye,
bu should be conside ed when quan i ying he damage size [47].
Figu e 8 shows he ex ension o damage a ea o all specimens measu ed by C-scan. In all
s uc u es, he la ge damaged a ea was ound o eloci ies a ound he minimum pe o a ion
eloci y. Fo eloci ies below he minimum pe o a ion eloci y, he damaged a ea inc eases wi h
eloci y, while o eloci ies g ea e han he pe o a ion eloci y, he damaged a ea dec eases wi h
inc easing eloci y.
Figu e 8. Ex ension o damage a ea measu ed by C-scan.
This beha iou was obse ed by Bui ago e al. [48] o glass wo en lamina es, and i is p oduced
by he bending o he pla e due o he ans e se wa e a el, which leads o delamina ion. Since he
con ac ime is maximal a he pe o a ion eloci y, he dis ance a elled by he ans e se wa e is
also maximal, and hus he delamina ed a ea is oo [46,49]. On he o he hand, when he damaged
a eas a e compa ed be ween lamina es wi h nea esin and esin illed by co k powde , in all
condi ions he e is a clea endency o he las ones o ha e smalle damaged a eas. Fo example,
compa ing he damaged a eas shown in Figu es 6 and 7, i is possible o obse e ha o impac
eloci ies a ound 230 m/s, hey a e a ound 11.9% lowe o lamina es wi h co k powde . Howe e ,
his alue was a ound 45.7% lowe o impac eloci ies o 438 m/s. Ne e heless, o he highes
impac eloci ies, he damaged a eas end o be simila . This beha iou allows one o a i m ha he e
a e changes in he ene gy abso p ion mechanisms, al hough he e is no much change in he ballis ic
beha iou (Figu e 3). In ac , co k has a high capaci y o abso b ene gy, and as epo ed abo e, he
esponse o he co k/ esin composi e is in luenced by he numbe o closed cells in he co k pa icles.
Sanchez-Saez e al. [29] obse ed a g ea capaci y o abso b ene gy e en a e se e al consecu i e
impac s. In addi ion, Sa asini e al. [30] obse ed in hei s udies ha he abso p ion o ene gy in high
de o ma ions can be qui e conside able wi hou signs o b eaking o he cell walls, because an almos
comple e eco e y o hei o iginal shape and size occu s.
Finally, Figu e 9 shows he esidual bending s eng h, whe e σ is he a e age bending s ess o
each eloci y and σ0 is he a e age bending s ess ob ained om he 3PB s a ic es s o each lamina e.
Figu e 8. Ex ension o damage a ea measu ed by C-scan.
This beha iou was obse ed by Bui ago e al. [
48
] o glass wo en lamina es, and i is p oduced
by he bending o he pla e due o he ans e se wa e a el, which leads o delamina ion. Since he
con ac ime is maximal a he pe o a ion eloci y, he dis ance a elled by he ans e se wa e is also
maximal, and hus he delamina ed a ea is oo [
46
,
49
]. On he o he hand, when he damaged a eas a e
compa ed be ween lamina es wi h nea esin and esin illed by co k powde , in all condi ions he e is a
clea endency o he las ones o ha e smalle damaged a eas. Fo example, compa ing he damaged
a eas shown in Figu es 6and 7, i is possible o obse e ha o impac eloci ies a ound 230 m/s, hey
a e a ound 11.9% lowe o lamina es wi h co k powde . Howe e , his alue was a ound 45.7% lowe
o impac eloci ies o 438 m/s. Ne e heless, o he highes impac eloci ies, he damaged a eas
end o be simila . This beha iou allows one o a i m ha he e a e changes in he ene gy abso p ion
mechanisms, al hough he e is no much change in he ballis ic beha iou (Figu e 3). In ac , co k has
a high capaci y o abso b ene gy, and as epo ed abo e, he esponse o he co k/ esin composi e
is in luenced by he numbe o closed cells in he co k pa icles. Sanchez-Saez e al. [
29
] obse ed a
g ea capaci y o abso b ene gy e en a e se e al consecu i e impac s. In addi ion, Sa asini e al. [
30
]
obse ed in hei s udies ha he abso p ion o ene gy in high de o ma ions can be qui e conside able
wi hou signs o b eaking o he cell walls, because an almos comple e eco e y o hei o iginal shape
and size occu s.
Appl. Sci. 2020,10, 6108 9 o 12
Finally, Figu e 9shows he esidual bending s eng h, whe e
σ
is he a e age bending s ess o
each eloci y and
σ0
is he a e age bending s ess ob ained om he 3PB s a ic es s o each lamina e.
Appl. Sci. 2020, 10, x FOR PEER REVIEW 10 o 13
Figu e 9. Impac eloci y s. a io o bending s ess.
Rega dless o he lowe s a ic bending s eng h (a ound 13.7% less when 3 w .% o co k powde
was added o he esin), which ag ees wi h he s udies de eloped by Reis e al. [34], i is possible o
obse e ha lamina es inco po a ing co k powde a e less sensi i e o impac eloci y han he
samples wi h nea esin. This is explained by he lowe damaged a eas ha we e p e iously epo ed
o lamina es wi h co k powde , due o he high capaci y o abso b ene gy om he ille s. In addi ion
o ha , Ba bosa e al. [44] obse ed ha co k pa icles ac like obs acles o c ack p opaga ion. This
e idence also explains he be e bending pe o mance ob ained o lamina es wi h co k powde . On
he o he hand, and independen ly o he lamina e, i is also e iden ha he maximum bending
s eng h dec eases o eloci ies below he minimum pe o a ion eloci y, and ha he e is a endency
o i o emain cons an o eloci ies g ea e han he pe o a ion eloci y. Howe e , he obse ed
dec ease was mo e exp essi e o lamina es wi h nea esin due o he g ea e damage a eas obse ed
(as epo ed abo e).
4. Conclusions
The high- eloci y impac and pos impac beha iou s o Ke la /epoxy composi es, in which he
epoxy ma ix is illed wi h co k powde , ha e been s udied.
In e ms o a e age alues, he minimum eloci y o pe o a ion was 1.6% highe o lamina es
wi h co k powde , bu his di e ence can be neglec ed in iew o he dispe sion ob ained in he
expe imen al es s. The damage a eas inc ease o eloci ies below he minimum pe o a ion eloci y,
bu he opposi e end occu s o eloci ies g ea e han he pe o a ion eloci y. Howe e , ega dless
he impac eloci y, he C-scan images e eal ha lesse damage a eas a e ob ained o lamina es
wi h co k powde , especially o impac eloci ies close o pe o a ion eloci y. Consequen ly,
conside ing he esidual bending s eng h, hese lamina es a e less sensi i e o impac eloci y han
he samples wi h nea esin. In addi ion o hese bene i s, co k powde educes he amoun o esin
in he composi e, making i mo e en i onmen ally iendly. Finally, in addi ion o hese bene i s,
lamina es wi h co k powde a e mo e en i onmen ally iendly due o hei lowe pe cen ages by
weigh o esin.
Au ho Con ibu ions: A.M.A. pe o med he NDT es s, analysed he esul s and helped o w i e he
manusc ip ; P.N.B.R. p oduced he lamina es and helped o w i e he manusc ip . I.I., S.S.-S., S.K.G.-C. and E.B.
Figu e 9. Impac eloci y s. a io o bending s ess.
Rega dless o he lowe s a ic bending s eng h (a ound 13.7% less when 3 w .% o co k powde was
added o he esin), which ag ees wi h he s udies de eloped by Reis e al. [
34
], i is possible o obse e
ha lamina es inco po a ing co k powde a e less sensi i e o impac eloci y han he samples wi h
nea
esin. This
is explained by he lowe damaged a eas ha we e p e iously epo ed o lamina es
wi h co k powde , due o he high capaci y o abso b ene gy om he ille s. In addi ion o ha ,
Ba bosa e al. [
44
] obse ed ha co k pa icles ac like obs acles o c ack p opaga ion. This e idence also
explains he be e bending pe o mance ob ained o lamina es wi h co k powde . On he o he hand,
and independen ly o he lamina e, i is also e iden ha he maximum bending s eng h dec eases
o eloci ies below he minimum pe o a ion eloci y, and ha he e is a endency o i o emain
cons an o eloci ies g ea e han he pe o a ion eloci y. Howe e , he obse ed dec ease was mo e
exp essi e o lamina es wi h nea esin due o he g ea e damage a eas obse ed (as epo ed abo e).
4. Conclusions
The high- eloci y impac and pos impac beha iou s o Ke la /epoxy composi es, in which he
epoxy ma ix is illed wi h co k powde , ha e been s udied.
In e ms o a e age alues, he minimum eloci y o pe o a ion was 1.6% highe o lamina es
wi h co k powde , bu his di e ence can be neglec ed in iew o he dispe sion ob ained in he
expe imen al es s. The damage a eas inc ease o eloci ies below he minimum pe o a ion eloci y,
bu he opposi e end occu s o eloci ies g ea e han he pe o a ion eloci y. Howe e , ega dless he
impac eloci y, he C-scan images e eal ha lesse damage a eas a e ob ained o lamina es wi h co k
powde , especially o impac eloci ies close o pe o a ion eloci y. Consequen ly, conside ing he
esidual bending s eng h, hese lamina es a e less sensi i e o impac eloci y han he samples wi h
nea esin. In addi ion o hese bene i s, co k powde educes he amoun o esin in he composi e,
making i mo e en i onmen ally iendly. Finally, in addi ion o hese bene i s, lamina es wi h co k
powde a e mo e en i onmen ally iendly due o hei lowe pe cen ages by weigh o esin.