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Ultrafine grain refinement of AlMn1Cu and AZ 31 alloys by SPD process

Abstract

One of the ways to the more effective use of metallic materials is their processing by forming. At present in this the area the use of the process of severe plastic deformation (SPD process), leading to a refinement of the structure (materials with UFG structure) and thus to achievement of higher level of their utility value, is expanding. AlMn1Cu alloy is commercially produced aluminum alloy by the company Al Invest Bridlicna (the cast strip with a mild reduction by rolling up to 10% to the thickness of 10 and 15 mm, which has its uses especially in engineering. AZ31 alloy is commercially produced aluminum alloy after casting and extrusion at 400 C on final rod with 20 mm diameter. For experimental purposes from the belts of alloys the test samples of the underlying dimensions of 10 10 mm length 40 mm (geometry with channel deflection 20 ) and 15 15 mm length 60 mm (geometry with helix matrix) in the direction of rolling were made. All three instruments are made of high tool steel - HOTVAR. For compare the influence of geometry ECAP tool on structure refining was used AlMn1Cu and AZ31 alloys were used three specially made tools ECAP, differing mainly in the construction design.

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Ultrafine grain refinement of AlMn1Cu and AZ 31 alloys by SPD process

Author: Rusz, Stanislav
Publisher: De Gruyter
Year: 2014
DOI: 10.2478/amm-2014-0060
Source: https://dspace.vsb.cz/bitstreams/90ae4379-6198-4791-b3d1-87dc7884fa04/download
ARCHIVES OF METALLURGY AND MATERIALS
Volume 59 2014 Issue 1
DOI: 10.2478/amm-2014-0060
S. RUSZ∗, L. CIZEK∗, M. SALAJKA∗, S. TYLSAR∗, J.KEDRON∗, V. MICHENKA∗∗ , T. DONIC∗∗∗ , E. HADASIK∗∗∗∗ , M. KLOS∗
ULTRAFINE GRAIN REFINEMENT OF ALMn1Cu AND AZ 31 ALLOYS BY SPD PROCESS
ROZDROBNIENIE ZIARN STOPÓW AlMn1Cu I AZ 31 DO ROZMIARÓW ULTRAMETRYCZNYCH Z ZASTOSOWANIEM
PROCESU SPD
One o he ways o he mo e e ec i e use o me allic ma e ials is hei p ocessing by o ming. A p esen in his he a ea
he use o he p ocess o se e e plas ic de o ma ion (SPD p ocess), leading o a e inemen o he s uc u e (ma e ials wi h
UFG s uc u e) and hus o achie emen o highe le el o hei u ili y alue, is expanding. AlMn1Cu alloy is comme cially
p oduced aluminum alloy by he company Al In es B idlicna ( he cas s ip wi h a mild educ ion by olling up o 10% o
he hickness o 10 and 15 mm, which has i s uses especially in enginee ing. AZ31 alloy is comme cially p oduced aluminum
alloy a e cas ing and ex usion a 400◦C on inal od wi h 20 mm diame e . Fo expe imen al pu poses om he bel s o
alloys he es samples o he unde lying dimensions o 10×10 mm leng h 40 mm (geome y wi h channel de lec ion 20◦) and
15×15 mm leng h 60 mm (geome y wi h helix ma ix) in he di ec ion o olling we e made. All h ee ins umen s a e made
o high ool s eel - HOTVAR. Fo compa e he in luence o geome y ECAP ool on s uc u e e ining was used AlMn1Cu
and AZ31 alloys we e used h ee specially made ools ECAP, di e ing mainly in he cons uc ion design.
Keywo ds: se e e plas ic de o ma ion, ECAP me hod, ha dness, mic os uc u e
Jednym ze sposobów ba dziej e ek ywnego ksz ał owania plas ycznego me ali jes me oda dużych odksz ałceń plas ycz-
nych. Ak ualnie do ego celu wyko zys ywany jes p oces SPD, w wyniku k ó ego osiąga się wysokie wa ości odksz ałcenia
ma e iału z ul a d obnozia nis ą s uk u ą. P owadzi o do wz os u właściwości wy zymałościowych, p zy nieznacznym obniże-
niu plas yczności. W a ykule p zeds awiono wyniki badań dwóch s opów – s op aluminium AlMn1Cu, k ó y jes p odukowany
w o mie blachy g ubości 10 lub 15 mm z zas osowaniem w p zemyśle maszynowym o az s op magnezu AZ31, k ó y po od-
laniu jes wyciskany w empe a u ze 400◦C z p ę a o ś ednicy 60 mm na ś ednicę 20 mm. Do ekspe ymen ów uży o p óbek
o ozmia ach 10×10-40 mm z odchyleniem kanału na zędzia ECAP o 20◦od kie unku poziomego o az p óbki o ozmia ach
15×15-60 mm z nową geome ią kanału na zędzia ECAP (część kanału w ksz ałcie ś uby) dla zwiększenia odksz ałcenia w
poszczególnych p zejściach p óbki na zędziem ECAP. Uzyskane wyniki wa dości o az s uk u y, p zy użyciu wyżej podanych
geome ii na zędzia ECAP, były po ównywane oddzielnie u obu s opów.
1. In oduc ion
The p ocess o plas ic de o ma ion, which leads o a e-
inemen o he s uc u e, depends on se e al ac o s. The mos
impo an mechanism o cold and ho plas ic de o ma ion is
disloca ion slip, which is he mos e iden unde he shea
s ess load. I is one o he main p e- equisi es a designing he
me hods based on he use o he SPD p ocess. The e ec was
obse ed mainly in me als and alloys wi h cubic ace-cen ed
la ice, cha ac e ised by a high numbe o slip sys ems (Al,
Cu, Ni) [1,4,5,6].
In addi ion o he men ioned la ice s uc u e he ollowing
ac o s a e in ol ed: he s uc u e be o e de o ma ion (g ain
size, mic os uc u e), he second phase pa icles, s ain a e
and empe a u e o de o ma ion, magni ude o de o ma ion,
he ou e o de o ma ion. Mechanisms o g ain e inemen
a y depending on he magni ude o de o ma ion di ided he
in luence o he magni ude o an inc ease o de o ma ion in o
ou a eas [2,3]. This conce ns e alua ion o esul s achie ed
du ing de o ma ion o me als wi h cubic ace-cen ed la ice
ECAP (ECAP-p inciple – see below a desc ip ion o he p o-
posed p ojec ), using he de o ma ion ou e BC: small s ain
in ensi y (εV M <2), small o mode a e s ain in ensi y (εV M =
2 - 4), mode a e o high s ain in ensi y (εV M =4 - 6), ex eme
s ain in ensi y – SPD (εV M >6) [5].
Ul a ine-g ained ma e ials (UFG) a e de ined as
poly-c ys als wi h a e age g ain size in he ange om 100 nm
- 1000 nm, i.e. less han 1µm. UFG ma e ials include also
nano-ma e ials wi h g ain sizes anging om 10 nm - 100 nm.
G owing in e es in UFG ma e ials a ises mainly o wo ea-
∗VSB – TECHNICAL UNIVERSITY OF OSTRAVA, FACULTY OF MECHANICAL ENGINEERING, CZ 708 33 OSTRAVA PORUBA, CZECH REPUBLIC
∗∗ RESEARCH INSTITUTE OF IRON AND METALLURGY DOBRA, CZ 738 01 DOBRA, CZECH REPUBLIC
∗∗∗ TECHNICAL UNIVERSITY OF ZILINA, 010 26 ZILINA, SLOVAKIA
∗∗∗∗ SILESIAN UNIVERSITY OF TECHNOLOGY KATOWICE, FACULTY OF MATERIALS ENGINEERING AND METALLURGY, KATOWICE, POLAND
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360
sons. Fi s ly, i is known ha in all he alloys he Hall-Pe ch
mechanism [4] con ibu es o s eng hening o he ma e ial a
oom empe a u e acco ding.
The basic me hods o p oduc ion o UFG ma e ials a e
he ollowing [3,7]:
ECAP – Equal Channel Angula P essing
DCAP – Dissimila Channel Angula P essing
HPT – High P essu e To sion
CCDC – Cyclic Channel Die Comp ession
CEC – Cyclic Ex usion Comp ession
CONFORM – Con inuous Ex usion Fo ming
ARB – Accumula i e Roll Bonding
CGP – Cons ained G oo e P essing
TE – Twis Ex usion
Designing a new concep o geome y ool
The ECAP me hod is based on ex usion o he sample
h ough he ool wi h an in e nal L-shaped channel, wi hou
any change o c oss-sec ion o he sample, as i is e iden om
Figu e 1. The sample is inse ed om abo e in o he e ical
channel and hen ex uded h ough he ool [7,14]. This ope -
a ion is hen epea ed in o de o achie e he equi ed deg ee
o de o ma ion o he ma e ial leading o a e inemen o he
s uc u e. I is possible o use in he p ocess a ious ypes o
changes o he ou e o de o ma ion [11].
Fig. 1. The p inciple o he ECAP me hod [7]
New concep – me hod ECAP wi h wis ex usion
TE is based on ex usion o he sample o p isma -
ic c oss-sec ion h ough he ool wi h he p o ile consis ing
o wo p isma ic pa s sepa a ed by a helical pa (Fig. 2).
C oss-sec ion a TE emains unchanged. This ea u e makes
i possible o ex ude he sample epea edly in o de o ac-
cumula e he s ain needed o change he mic o-s uc u e and
mechanical p ope ies o he sample ma e ial.
Fig. 2. P inciple o he Twis Ex usion P ocess [10,12]
Technological possibili ies o he TE me hod compa ed
wi h he ECAP me hod [12]. Magni ude o e mina ion o he
de o med a ea o he sample a he inpu and ou pu pa o he
sample is much lowe in TE han in ECAP. This is a ea u e,
which is e y impo an o epea ing o passes. Change o he
sample p o ile occu s a he cen al pa o he axial channel
TE can be easily ins alled on he s anda d equipmen o he
p ess by eplacemen o adi ional ools by he ool wi h o-
a y channel (helix). Tool (TE) does no change he di ec ion
o mo emen o he sample, which enables i s simple inclu-
sion in o he exis ing ools on he p esses and hus in eg a ion
o his equipmen in o a p oduc ion line [6,13]. The p oposed
p ojec will e i y he o ally new concep o he o ming ool –
called ECAP +TE (ECAP ool wi h buil -helix in he ho izon-
al channel – Fig. 3). This new app oach will make i possible
o signi ican ly inc ease he e iciency o he p ocess o se e e
plas ic de o ma ion (SPD). The ma e ial will be s eng hened
e y in ensely, allowing us o achie e a high deg ee o de o -
ma ion o ma e ial a a lowe numbe o passes h ough he
o ming ool [8]. A he same ime high homogenei y o he
s uc u e will be achie ed.
Fig. 3. Inse o he ECAP ool wi h buil -in helix
2. Expe imen al ma e ials
AlMn1Cu alloy is comme cially p oduced aluminum al-
loy by he company Al In es ( he cas s ip wi h a mild e-
duc ion by olling up o 10% o he hickness o 10 and 15
mm, which has i s uses especially in enginee ing. Chemical
composi ion o he AlMn1Cu alloy is gi en in Tab.1. AZ31
alloy is comme cially p oduced aluminum alloy a e cas ing
and ex usion a 400◦C on inal od wi h 20 mm diame e .
Chemical composi ion o he AZ31 alloy is gi en in Tab.2.
Fo expe imen al pu poses om he bel s o alloys he es
samples o he unde lying dimensions o 10×10 mm leng h
40 mm (geome y wi h channel de lec ion 20◦) and 15×15 mm
leng h 60 mm (geome y wi h helix ma ix) in he di ec ion
o olling we e made.
TABLE 1
Chemical composi ion o AlMn1Cu alloy (weigh %)
Si Fe Cu Mn O he Al
00.55 00.45 00.15 11.1 00.15 Res
TABLE 2
Chemical composi ion o he AZ31 alloy (weigh %)
Al Zn Cu Mn O he Mg
33.07 00.765 00.0016 00.246 00.15 Res
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361
3. ECAP design ools used in he expe imen s
Fo compa e he in luence o geome y ECAP ool on
s uc u e e ining was used AlMn1Cu and AZ31 alloys we e
used h ee specially made ools ECAP, di e ing mainly in he
cons uc ion design. All h ee ins umen s a e made o high
ool s eel – HOTVAR. The i s ool used in he expe imen
is a classic ool o ECAP wi h e ical and ho izon al channel
connec ions a an angle ϕ=90◦, ou e adius R1 =2.5 mm,
inne adius R2 =0.2 mm and 10×10 mm c oss-sec ion o he
channel (Fig. 1). The second ool is based on geome y om
he i s ype [9]. To he modi ica ion o ins umen s occu ed
in he ho izon al pa o channel – de lec ion o he ho izon al
channel wi h 20◦a ound axis ”z” (Fig. 4). The hi d modi i-
ca ion o ool used in he expe imen is a new ool o ECAP
wi h helix pa in he ho izon al pa o channel (Fig. 5). The
helix angle is 10◦and 30◦. Value o he ou e channel adius
is R1 =2.5 mm, inne adius R2 =0.5 mm and he angles o
he channel ha e alues ϕ=90◦,ψ=90. The main bene i
o he new geome y is a ising o he backp essu e and he
inc easing deg ee o de o ma ion. The ools used a e shown
in Fig. 4,5,6 and 7.
Fig. 4. The ho izon al channel wi h 20◦a ound axis
Fig. 5. ECAP ool wi h helix ma ix
Fig. 6. Gene al iew on used ECAP ools
Fig. 7. Shape o punches
4. In luence o he numbe o passes on he s ess –s ain
cu es
The esul s o expe imen s conduc ed on hyd aulic p ess
DP 1600 kN, was shown a signi ican e ec modi ica ion o he
geome y ools ECAE cu es de o mable esis ance and hus
ha dening he AlMn1Cu and magnesium AZ31 alloys each
channel passes. Acco ding o he assump ions unde lying he
inc ease de o mable esis ance occu s in all he ins umen s o
ECAP wi h inc easing numbe o passes. Fig. 8 shows selec ed
eadings s ess-s ain cu es a e selec ed passes h ough he
channel o AlMn1Cu alloy. Ve y good esul s we e achie ed
in bo h alloys using geome y ools wi h embedded helix a e
1s and 5 h passes h ough he ECAP ool. Fig. 9 show selec ed
eadings s ess-s ain cu es a e selec ed passes h ough he
channel o magnesium alloy AZ31[8,9].
Fig. 8. S ess-s ain cu es a) a e he i s and b) a e he i h pass
h ough ECAP
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362
Fig. 9. S ess-s ain cu es ECAP wi h helix ma ix
5. Me allog aphic analysis
Fo me allog aphic analyses a se ies o samples a e
passes we e p epa ed by he cu ing pe pendicula o o m-
ing di ec . Me allog aphic analysis o he inal s uc u e o he
AlMn1Cu alloy was pe o med me hods o ligh mic oscopy,
TEM and SAED. Fo he AZ31 alloy he me allog aphic analy-
sis by ligh mic oscopy was ca ied ou . Me allog aphic analy-
sis on ligh mic oscopy NEOPHOT 2 was pe o med. A e
he usual me allog aphic p epa a ion he AlMn1Cu alloy un-
de wen he elec oly ic e ching and magnesium alloy AZ31
was e ched. Resul s o me allog aphic analysis o samples
AlMn1Cu alloy a e shown in Fig. 10 and 11 ( esul s o ligh
mic oscopy). As i is seen om Fig. 10 and 11 he s ep o g ain
size a ises wi h numbe o passes. Me allog aphic analysis
TEM and SAED o AlMn1Cu alloy shows Fig. 12 and 13: a)
ini ial s a e; b) a e 5 h pass classical ECAP ool; c) a e 5 h
pass ECAP ool wi h de lec ion 20◦; d) a e 5 h pass ECAP
ool wi h helix 10◦[8,9].
Fig. 10. Resul s o me allog aphic analysis o he AlMn1Cu alloy
a) ini ial s a e, b) 3 d pass, c) 5 h pass
Fig. 11. Resul s o me allog aphic analysis o he magnesium alloy
AZ31, a) ini ial s a e, b) 3 d pass, c) 5 h pass
Fig. 12. S uc u e o he AlMn1Cu alloy (pe o med me hods o
TEM), a) ini ial s a e, b) 5 h pass, channel wi hou de lec ion,
c) 5 h pass, wi h 10◦helix
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363
Fig. 13. S uc u e o he AlMn1Cu alloy (pe o med me hods o
SAED), a) ini ial s a e, b) 5 h pass, channel wi hou de lec ion,
c) 5 h pass, wi h 10◦helix
6. Discussion
Tes ing pla es wi h a hickness o 3 mm we e used om
samples a e 5 h pass. The pla es we e hen cu and polished
o a inal hickness o 0.13-0.15 mm. AlMn1Cu alloy s uc u e
consis s o g ains o app oxima ely he same size [8,9]. These
g ains con ain c ys als o Mn and Cu and in Fig. 12a a e
colo ed g ay o black. The basic ma ix o Al ac ing like p e-
cipi a es, which ein o ce he ma e ial and p e en seconda y
g ain g ow h. The exis ence o p ecipi a es is e y impo an ,
because pu e aluminum has a endency o ECAP p ocess, g ain
coa sening and loss o mechanical p ope ies achie ed. Ini ial
g ain size eached alues o he o de o 150-200 µm. The
i h classic ex usion ool wi hou de lec ion o med small
g ains wi h la ge diso ien a ion o he median size o 0,5 µm
o 0,7 µm (Fig. 12 b) [8,9]. O igina ed he e many in e me al-
lic inclusions in he icini y o small g ains. Due o he pa -
ial ec ys alliza ion o small de ec s o med wi hin he g ains
and showed he he e ogenei y o he s uc u e he e. shows
a ine-g ained s uc u e wi h mean g ain size o 0,3 µm o
0,6 µm and high diso ien a ion be ween he g ains. A e he e
a lo o i on-con aining in e me allic inclusions o up o 5 µm.
The expe imen al e i ica ion o he ECAP ools wi h 10◦he-
lix in he ho izon al pa o he channel was achie ed e en
wi h he la ges inc ease de o mable esis ance du ing es ing,
e inemen o la ge s uc u es AlMn1Cu alloy (see Fig. 12 c).
Calling back p essu e by o a ion he ho izon al channel o
10◦was o so en he ma e ial in g ain size 250 nm [8,9].
Resul s o TEM analysis a e e i ied using by SAED me hod
(see Fig. 13 a,b,c).
7. Ha dness
Fo he e alua ion o ha dness o o med ma e ial was
used by Vicke s ha dness es , when in es iga ed in he sample
we e ca ied ou i e s i ches on he su ace and cen al po -
ions o he sample. Ini ial ha dness o he alloy AlMn1Cu al-
eady achie ed a signi ican inc ease a e om 1s o 3 d pass
all o he ins umen s used ECAP me hods. When you make
hese measu emen s he e was a g adual inc ease in ha dness
wi h inc easing numbe o passages. A e 5 h esp. 6 h passes
occu s in all h ee ools o inc ease ha dness o he alloy o
almos 100% om baseline in bo h alloys (see Fig. 14 a,b)
Fig. 14. Resul s o ha dness, a) AlMn1Cu alloy, b) AZ 31 alloy
8. Conclusion
The main aim o he expe imen s is a e inemen o he
s uc u e o alloys AlMn1Cu using he minimum numbe o
ECAP passes wi h special ools [8,9]. To inc ease he de-
g ee o dis o ion, he eby achie ing he desi ed s uc u e is
an impo an ac o in app op ia e modi ica ion ool geome y.
Geome ic adjus men o ins umen s is pa icula ly e iden in
he new ins umen ECAP helix is loca ed 10◦and 30◦in he
ho izon al pa o he channel, which shows an o e all inc ease
in e iciency o he SPD p ocess and ob ain signi ican ly be -
e mechanical p ope ies o AlMn1Cu and AZ31 alloys [8,9].
The expe imen al esul s con i med he achie emen o e y
good g ain e inemen o he s uc u e in bo h alloys. S uc u al
design ools ECAP wi h inse ed helix (pi ch angle o 10 and
30◦) subs an ially inc eases he e iciency o he p oduc ion
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364
UFG s uc u e. Especially o AZ31 Mg alloy is gi en e y
impo an inding. I is well-known ha g ain e inemen in
Mg alloys is di icul o achie e a lowe empe a u es (abou
200◦C) [15]. The knowledge achie ed in alloy AZ31 also wan
o check o o he ypes o magnesium alloys used in ae ospace
and mili a y indus ies.
Acknowledgemen s
The esea ch wo k sponso ed by p ojec o Minis y o Indus y
and T ade No. 2A-1TP1/124 and he p ojec o Minis y o Educa-
ion, You h and spo s o Czech Republic, p ojec Nano eam VSB-TU
Os a a, CZ.1.07/2.3.00/20.0038 and he p ojec Financial suppo o
S uc u al Funds in he Ope a ional P og amme – Inno a i e Econ-
omy (IE OP) inanced om he Eu opean Regional De elopmen
Fund – P ojec ”Mode n ma e ial echnologies in ae ospace indus-
y”, No POIG.01.01.02-00-015/08-00.
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