scieee Science in your language
[en] (orig)

Transverse prestressing and reinforced concrete as the key to restoration of masonry arch bridges

Abstract

There is still a large number of masonry arch bridges on the road and railway network. More than 80 % of arch bridges are over 100 years old so their service life has been exceeded significantly. The general focus of the paper is to show the method for strengthening and restoration of these bridges, especially if they have been damaged by longitudinal cracks. The restoration is performed using new spandrel walls from reinforced concrete stabilized by transverse prestressed cables. This paper illustrates the strengthening process with four examples of restored road or railway bridges. In addition, it includes examples of basic cable arrangements and a design of the new concrete walls, which are used as anchorage areas for transverse prestressing. The efficiency of this method will be determined using data measured during the prestressing and a load test. The measurements have shown an extremely favourable effect of the addition of horizontal prestressing within the new reinforced concrete walls. After an evaluation of the deformation of the top cross-section reduced up to 40 % of the values before strengthening.

Read accessible full text

Transverse prestressing and reinforced concrete as the key to restoration of masonry arch bridges

Author: Klusáček, Ladislav; Nečas, Radim; Požár, Michal; Pěkník, Robin; Svoboda, Adam
Publisher: Elsevier
Year: 2021
DOI: 10.1016/j.engstruct.2021.112898
Source: https://dspace.vut.cz/bitstreams/f8229e49-93c2-4a2d-b82f-9c81abf6f530/download
Enginee ing S uc u es 245 (2021) 112898
0141-0296/© 2021 The Au ho s. Published by Else ie L d. This is an open access a icle unde he CC BY-NC-ND license
(h p://c ea i ecommons.o g/licenses/by-nc-nd/4.0/).
Con en s lis s a ailable a ScienceDi ec
Enginee ing S uc u es
jou nal homepage: www.else ie .com/loca e/engs uc
T ans e se p es essing and ein o ced conc e e as he key o es o a ion o
mason y a ch b idges
Ladisla Klusáček, Radim Nečas, Michal Požá , Robin Pěkník, Adam S oboda∗
Ins i u e o Conc e e and Mason y S uc u es, B no Uni e si y o Technology, Ve eří 331/95, 602 00 B no, Czech Republic
ARTICLE INFO
Keywo ds:
A ch b idge
T ans e se p es essing
Wall
Res o a ion
Pos - ensioning
Mason y
ABSTRACT
The e is s ill a la ge numbe o mason y a ch b idges on he oad and ailway ne wo k. Mo e han 80 % o
a ch b idges a e o e 100 yea s old so hei se ice li e has been exceeded signi ican ly. The gene al ocus o
he pape is o show he me hod o s eng hening and es o a ion o hese b idges, especially i hey ha e
been damaged by longi udinal c acks.
The es o a ion is pe o med using new spand el walls om ein o ced conc e e s abilized by ans e se
p es essed cables. This pape illus a es he s eng hening p ocess wi h ou examples o es o ed oad o
ailway b idges. In addi ion, i includes examples o basic cable a angemen s and a design o he new conc e e
walls, which a e used as ancho age a eas o ans e se p es essing. The e iciency o his me hod will be
de e mined using da a measu ed du ing he p es essing and a load es .
The measu emen s ha e shown an ex emely a ou able e ec o he addi ion o ho izon al p es essing
wi hin he new ein o ced conc e e walls. A e an e alua ion o he de o ma ion o he op c oss-sec ion
educed up o 40 % o he alues be o e s eng hening.
1. In oduc ion
In he oad and ail ne wo k, he e a e s ill ens o housands
o b idge a ches made o s one o b ick mason y h oughou Eu ope
(Fig. 1) olde han 120 yea s. Many b idges do no mee he cu en
s anda ds and ha e eached he end o hei heo e ical du abili y [1].
Howe e , he eplacemen o all hese s uc u es is economically un e-
alis ic, since he disposi ion, low p o ile and mason y quali y o he
a ch b idges o en comply wi h he espec i e s anda ds. Howe e ,
hey a e oo na ow and hei la e al alignmen ends o be b oken
by longi udinal c acks, mos o en caused by he ea h p essu es o
he oad embankmen , as well as by ans e se ensile s esses, oc-
cu ing a ound he cen e and a he edges o he a ches, caused
by o e laying and inc eased li e load (mul iple inc ease o ehicle
axle loads and a ic in ensi y). T ans e se p es essing ep esen s one
op ion o ein o cemen o such damaged a ches. This op ion is e ec i e
o cylind ical oad b idges and ail a ches, which a e, con a y o
he a ches in building cons uc ion, damaged by longi udinal c ack
sys ems. The c acks b eak he a ch no only a he connec ing poin s
o he spand el walls and he a ch, bu also in he middle o s uc u e
wid h, oughly in he axis o he ans e ed oad.
Res o a ion o a ch b idges using he pos - ensioning me hod p e-
sen ed in his pape is pa ially de i ed om pos - ension echniques
∗Co esponding au ho .
E-mail add esses: [email p o ec ed] (L. Klusáček), [email p o ec ed] (R. Nečas), [email p o ec ed] (M. Požá ), [email p o ec ed]
(R. Pěkník), [email p o ec ed] (A. S oboda).
o s eng hening o ein o ced conc e e b idges, as shown o example
in [2]. This echnique o addi ional p es essing is based on he d illed
subs i u e duc s which enable ac ing o adial o ces di ec ly o he mass
o he s uc u e wi hou any ancho ed weldmen s o auxilia y mechan-
ical de ices. The subs i u e cable duc echnique is a he unique while
he s anda d ex e nal p es essing echnique using ex e nal endons
is e y well known a ound he wo ld. Fo example, in a icles [3]
and [4] Recupe o e al. p esen ed an applica ion o ex e nal p es essing
echnique o s eng hening o a single span conc e e ailway b idge in
I aly. Pe angeli e al. [5] published a pape ocused on s eng hening o
con inuous ein o ced conc e e b idge ac oss he Gibe i e in E hiopia
also using ex e nal p es essing endons. In a icles [6] and [7] Daly
e al. p esen ed wo applica ions o s eng hening composi e b idges in
Indonesia using ex e nal p es essing. In his hesis, Nilimaa e al. [8]
ocused on s eng hening o conc e e ailway b idges (in Sweden) in
ans e se di ec ion using p es essed ba s ins alled in addi ionally
d illed holes in he exis ing conc e e o p e en shea ailu e. I is also
possible o see he use o an ex e nal pos - ensioning sys em using
p es essed cables in o de o educe s uc u al ulne abili y and o
p ese e he a is ic and aes he ical alues o his o ical s uc u es. In
a icle [9] is discussed he igid block analysis o modelling such
h ps://doi.o g/10.1016/j.engs uc .2021.112898
Recei ed 1 Feb ua y 2021; Recei ed in e ised o m 13 July 2021; Accep ed 21 July 2021
Enginee ing S uc u es 245 (2021) 112898
2
L. Klusáček e al.
a sys em. O he in o ma ion abou s eng hening using p es essing
me hod can be ound in [10,11] o [12].
The seismic p o ec ion o mason y s uc u es by implemen a ion o
e ical p es essing a key loca ions is p esen ed in esea ches [13–15]
and [16] . The main idea o his p es essing echnique is o imp o e
he seismic pe o mance by he applica ion o a uni o m dis ibu ion o
comp essi e s esses which is e y a ou able o hese s uc u es.
O he echniques use mode n composi e ma e ials (FRP, CFRP,
GFRP) o s eng hening o s uc u es, o example [17–21] o [22]. The
echnique o GFRP was also esea ched expe imen ally o he pu poses
o s eng hening o RC a ch b idge as shown in a icle [23]. The
esea ch o applica ion o he FRP me hod o s eng hening o mason y
aul s is p esen ed in [24] and an example o usage o he CFRP
me hod o s eng hening o mason y aul s is p esen ed in [25]. Design
app oaches o calcula ing o he addi ional s eng hening o mason y
a ches using he S u -and-Tie model and he applicable s anda ds
and hei compa ison o he expe imen s can be ound in [26]. In
pape [27] a non-linea con inuum model o he analysis o mason y
a ches s eng hened wi h FRP composi es is p esen ed. The p oposed
nume ical models o one uns eng hened and one FRP-s eng hened
mason y a ch we e calib a ed based on expe imen al es s. Also he
FEM model was han used o heo e ical esea ch o s eng hening o
P es wood b idge o which expe imen al da a om a des uc i e es
was a ailable.
Ano he inno a i e app oaches o s eng hening mason y a ches
used in expe imen al s udies a e FRCM ( ib e ein o ced cemen i ious
ma ix) o SFRM (s eel ib e ein o ced mo a s) me hod. The ad an-
age o hese me hods is ha hey can be easily applied in in ados
he aul s while he b idge s uc u e is in ope a ion. The e ec i eness
o FRCM s eng hening is examined in [28] and compa ison be ween
bo h is shown in [29].
A ch b idges ha e a a he signi ican load-bea ing capaci y o
e ical loads. Resea ch o he load-bea ing capaci y o hese b idges
o esis ho izon al impac is p esen ed in [30].
I ein o ced conc e e spand el walls a e used, pos - ensioning ep-
esen s a signi ican ly sa e me hod o obus cap u e o spand el walls
in compa ison o o he me hods. Lowe p obabili y o ealiza ion e o s
and simul aneous ac i e co ec ion o he cu en condi ion o he
s uc u e a e o he ad an ages o pos - ensioning. Ho izon al ans e se
p es essing comple ely es o es he exis ing s uc u e o he a ch b idge
(a e a p e ious injec ion o c acks). The c acks a e being sealed and
a gene al imp o emen o he condi ion o he load-bea ing s uc u e
caused by he in oduc ion o s ess ese e occu s. In compa ison o
o he me hods, he obus ness o his me hod lies in he ac ha he
ensile s ess in he mason y o he o iginal s uc u e in he ans e se
di ec ion can be comple ely elimina ed.
Passi e me hods such as FRCM, FRP and SFRM a e su ely app o-
p ia e unde ce ain s uc u al condi ions, bu i longi udinal c acks
a e al eady opening and deg aded spand el walls al eady lean ou , he
in oduc ion o p essu e o ce h ough newly buil conc e e spand el
walls wi h ancho a eas o pos - ensioning is i ually he only op ion
o hei conse a ion and comple e es o a ion.
2. Causes o b idge a ches damage
Damage ypical o hese b idges is shown in Fig. 2. The a ches a e
damaged by c acks in planes pa allel o he oad axis o (wi h he span
plane), i.e. by longi udinal c acks. The wid h o hese c acks can be
up o se e al ens o mm and hese longi udinal c acks hen di ide
he a ch in o se e al sepa a e a ch s ips. The bea ing s eng h o such
a ches in he longi udinal di ec ion de e mined on common calcula ion
models ends o be high; he a ches in he longi udinal di ec ion ha e a
su icien load-ca ying capaci y o mee a ic equi emen s. Bo h he
e ec o ele a ed ea h p essu e on he spand el walls and he spa ial
e ec o he s uc u e can be iden i ied as a cause o he longi udinal
c acks in he cou se o he su ey o damaged s uc u es.
Fig. 1. Example o s one mason y a ch b idge.
His o ical mason y a ch b idges we e designed in acco dance wi h
ame models and he e o e, he en i e ans e se ension was ne-
glec ed, espec i ely, hese e ec s we e conside ed negligible. Ne e -
heless, hese s uc u es ha e been se ing o 100 o mo e yea s, and
he ans e se ensions a e caused by he long- e m e ec o cons an
s ess in which he cen e o he a ch is s essed by he embankmen
(o he cons an s ess) mo e han he edges. In ac , he s uc u e wo ks
as a shell sys em and he de lec ion line in he ans e se di ec ion is
bulging downwa d. This means ha ans e se momen s and ans e se
no mal o ce, which cause ensile no mal s esses in he ans e se
di ec ion o he a ches, occu wi hin he s uc u e. The e o e, a ound
he cen e o he s uc u e, he c acks we e p edominan ly caused
by he spa ial e ec o he s uc u e. C acks obse es in a ch edges
(app ox. 0.5 m o 1.5 m om he ou e edge) can also be suppo ed by
he long- e m s ess in addi ion o he spa ial e ec , he e ec s o ea h
p essu e on he spand el walls and by he e ec s o he empe a u e
s esses. In he a ch edges, he shell igidi y p e en s ee expansion
o spand el walls and ha is how ensions a e c ea ed e en in hese
a eas. The e ec o he a ic is compounded wi h he a o emen ioned
e ec s o cons an s esses ( he weigh i sel , o he cons an s esses,
ea h p essu es), a igue and clima e s esses (especially hose caused
by he empe a u e). Compu a ional op ions o oday allow us o swi ch
om he ame model o he spa ial (shell) model, which, con a y o
he o iginal assump ions, mani es s ans e se ensions and ans e se
momen s wi h ensions on he bo om s ands which can be analysed in
his way. The addi ionally inse ed p es essing ein o cemen is usually
led a ine o he de lec ion line o he ans e se di ec ion, which is e y
sui able.
Inc eased ea h p essu e occu s especially in oad a ches, whose
le els ha e been inc eased by con inuous o e laying by up o 1,2 m
(Fig. 3). The inc ease o he ea h p essu e is u he suppo ed by he
inc eased axle p essu es o cu en ehicles, which go di ec ly o he
edges o he b idge, and by he a ic in ensi y, which is se e al imes
highe han in he ime o he b idge cons uc ion (see [31]). Inc eased
ea h p essu e o he embankmen abo e he a ch g adually pushes
away he spand el walls, which damage ou e edges o he a ches wi h
wid hs anging om 0.8 o 1.5 m. In case o ailway a ches, o e laying
o embankmen s o li e load s esses nea he a ch edges do no occu ,
bu hey a e o en damaged by longi udinal c acks passing h ough
he cen e o he a ches, no by he causes men ioned abo e. Ins ead,
ans e se h us s and ans e se bending momen s esul ing om he
spa ial e ec o he a ch causes hese c acks, which can be illus a ed
by a spa ial nume ical shell o olume models (Fig. 17). Obse a ions
om se ice load es ing indica e ha he de elopmen o c acking and
non-linea i ies unde se ice loads can be a signi ican indica o o he
capaci y o he s uc u e [32].
Enginee ing S uc u es 245 (2021) 112898
3
L. Klusáček e al.
Fig. 2. Typical damage in a ch b idges caused by longi udinal c acks.
Fig. 3. Example o inc eased oad le el by asphal o e lay.
Longi udinal c acks c ea e na u al c e ices o pene a ion and pe -
manen d ainage o ainwa e . Massi e e osion o he embankmen
abo e he a ch and behind he suppo s can o en be eco ded. The
expansion o longi udinal c acks accele a es wi h ime, mainly be-
cause o he e ec s o ice in looded c acks in win e . Lea ing he
s uc u e wi hou epai leads o a collapse o edges o he a ches
and o necessa y eme gency measu es, al hough hei unc ion in he
longi udinal di ec ion is unimpai ed. I is clea ha longi udinal c acks
o en elimina e e en some a ch b idges wi h su icien load-bea ing
capaci y ou o se ice and ha a eliable es o a ion o hese c acks,
i.e. s eng hening he a ches in he ans e se di ec ion, is desi able.
The pape is ocused on a ch b idges wi h una ec ed longi udinal
di ec ion.
3. Design o epai
T ans e se p es essing o he a ches can be applied as a pa o
a s uc u al sys em consis ing o new spand el walls and p es essing
cables (Figs. 4–6) [33]. Connec ion o hese wo ea u es is bene icial,
because in he new ein o ced conc e e spand el walls, he cables can be
ancho ed in a p o en way and an almos uni o m dis ibu ion o o ces
in he ancho s o he a ch mason y can be achie ed. S abili y o he
new walls is ensu ed by he o ces in he ancho s, by he wall s i ness
o he abu men s and by he spa ial s i ness o he al eady ein o ced
a ch.
In his use case, he new ein o ced conc e e spand el walls ul il 3
possible oles:
Fig. 4. A ch b idge wi h a new spand el wall.
Fig. 5. T ans e se pos - ensioning a angemen .
1. They p o ide es o a ion and s abili y o he o iginal c umbling
spand el walls.
2. They allow ancho ing o ans e se p es essing, which can hus
be designed in compliance wi h p ocedu es acco ding o echni-
cal s anda ds.
3. I necessa y, hey also allow expansion o he ope a ional space,
which is o en e y desi able in case o his o ical oadway
a ches. In new ein o ced conc e e walls, can ile e s uc u es
o walkways o e en o expansion o sake o ans e ed
oadway can easily be cons uc ed.
The p inciple o he design is based on he app oach o conside ing
he ancho s as elas ic suppo s and on he design o he p es essing
o ces, which mus include app op ia e sa e y ma gins and s ill exceed
he ac i e e ec s o eac ions in suppo s in he nume ical model.
In he a o emen ioned applica ions, he o ces in ancho s a e de-
signed using a slab model (o a shell one), which is suppo ed wi h
elas ic suppo s in he expec ed ancho ing loca ions o he addi ional
p es essing ein o cemen . The model is unde cons an s ess, ea h
p essu e o he embankmen and he added s ess caused by a ic is
being aken in o conside a ion. The s eng hs o he suppo eac ions
on he a o emen ioned design model hen s a e he necessa y sizes
o p es essing o ces in he gi en loca ions. The ac ual p es essing
o ce is hen de i ed om hese eac ions while allowing o sa e y
coe icien s and p es essing changes.
The o ces in he ancho s o m an equilib ious sys em in he ho i-
zon al di ec ion. T ans e se p es essing sys em uses a ailable common
cons uc ion de ails and p ocedu es o he subs i u e cable duc me hod.
In addi ion o he s abili y o he spand el walls, i is necessa y o
check he maximum amoun o p es essing in he a ch wall and he
abu men s, which ac in pa allel o he bed join o he mason y.
New walls can be designed as ela i ely hin ein o ced conc e e walls,
bu he p edominan s ess is o a slab ype. Thei weigh du ing
cons uc ion is ans e ed by small la ounda ions (indi idual o
con inuous oo ings). A e p es essing using he mason y a ch, he
s ess is g adually edis ibu ed, and hei weigh is ans e ed by he
ounda ions o he o iginal b idge suppo s. Shape o he spand el walls
can be easily adap ed o he obs acle (c oss d aining canal, e c.). A g ea
ad an age o his cons uc ion sys em lies in he easy expansion o he
Enginee ing S uc u es 245 (2021) 112898
4
L. Klusáček e al.
Fig. 6. A ch wi h newly ein o ced spand el walls and p es essing cables —
pe spec i e model.
Fig. 7. Example o he econs uc ion — mason y a ch oad b idge in Sem ín ( he
Czech Republic).
oadway on he b idge, e en ually in a cons uc ion o pa emen s by
means o massi e can ile e s ha can easily be placed on bo h sides
o he spand el walls. Figs. 7,8,24,27 and 43 show examples o
comple ed econs uc ions o a ched b idges on oads.
Mechanical compa ibili y o he addi ional sys em is based on a co -
ec solu ion o ancho a eas in new conc e e spand el walls (s anda d
p oposal). In addi ion, i is based on such an amoun o ans e se
p es essing, which usually ep esen s a 0.2–0.3 mul iple o he s eng h
o he mason y in ension pe pendicula ly o he bed join , which is
a e y sa e limi a ion ( e i ied by ealiza ions). Compa ibili y o he
o iginal s uc u e wi h he addi ionally applied sys em is also based on
he ans e o adial o ces om de ia o s h ough he a ch s eng h.
In e ms o ma e ials, he compa ibili y is based on an injec ion o
all c acks in he mason y so ha pa asi e mo emen s, which could
damage he a ch s uc u e, we e elimina ed. Th ough he applica ion
o p es essing, ensile s esses, which a e he only ones which damage
he a ch mason y, a e elimina ed. T ans e sally led p es essing cables
a e p o ec ed agains co osion, because cables o he monos and ype
a e used as well as he closed sys em including he ‘‘encapsula ed’’
ancho s. Edge local p essu es, which damage he monos and shea h,
a e elimina ed by he use o de ia o s wi h he sui able adius o
cu a u e.
3.1. Design o spand el walls and p es essing o ces
Magni ude o he o e s aining o ces is connec ed o he s abili y
o he spand el walls. The new spand el walls a e s abilized by he
Fig. 8. Example o he econs uc ion — s one mason y a ch oad b idge in Ransko
( he Czech Republic).
Fig. 9. Loca ions o p es essing o ces.
o ces in he ancho s ha push hem o he o iginal walls, e en ually o
he a ch i sel . These o ces can be examined as o ces in he in ended
suppo s, which a e he ancho s on he ac ual s uc u e. Suppo s mus
be modelled as nonlinea (only p essu e) in o de o p ope ly simula e
leaning o he wall agains he a ch and no o hinde i s de o ma ion
in he di ec ion away om he a ch. The o ces in he ancho s mus be
designed o be la ge han he suppo eac ions examined. In s anda d
cases, he new spand el walls can be examined as slabs subjec ed o
he ea h p essu e o he oad body and embankmen , suppo ed in he
Enginee ing S uc u es 245 (2021) 112898
5
L. Klusáček e al.
Fig. 10. Loads on spand el wall.
e y ancho si es and on he ounda ion le el (Figs. 9 and 10). The
ea h p essu e mus be inc eased by he e ec o he li e load. The
ea h p essu e pa e n is hen apezoidal and inc eases linea ly wi h
dep h. Fo sa e y pu poses, he s i ness o he o iginal spand el walls
is neglec ed. Because o he a iable shape o he spand el walls and he
inc easing load wi h he dep h o he embankmen , i is ecommended
o model he spand el walls using he Fini e Elemen Me hod (FEM)
and o choose a slab elemen which conside s he shea e ec as he
basic elemen . On his model, he suppo eac ions and in e nal o ces
(momen s) o he ein o cemen design a e de e mined. The model can
also be used o e i y de o ma ions o new spand el walls (Fig. 17). I
can be ecommended ha he de o ma ion o he spand el wall end
does no ho izon ally exceed he alue
𝑤ℎ=𝑙𝑠
350 (1)
whe e 𝑙𝑠is he span o a subs i u e ho izon al can ile e wi h a igid
suppo in he a ch axis.
The in ensi y o he ans e se p es essing in he c oss-sec ion o
he a ch can be assessed in he same way as mason y s uc u es. In yp-
ical cases, 20% o he calcula ed comp essi e s eng h o he mason y
should no exceed pe pendicula o he loading a ea. The in ensi y o
he ans e se p es essing in he a ch can be easily de e mined in
he same manne as in a c oss-sec ion: he a ea o he esis ing c oss-
sec ion is he a ea o he longi udinal c oss-sec ion o he a ch and he
abu men s, he ac ing o ce is he esul an o ce om all he ancho s,
and he poin o ac ion is he cen e o g a i y o all ancho s. Mo e
speci ically, he in ensi y o he p es essing o ce can once again be
de e mined on he shell a ch model using FEM p og ams ha model
he a ch including he new spand el walls.
3.2. Cons uc ion solu ion
When ein o cing he s uc u es wi h addi ional p es essing, i is
necessa y o apply he app op ia e cons uc ion de ails so ha all con-
di ions o eliable ope a ion o bo h he o iginal ein o ced s uc u e
and he addi ionally a ached o e s aining sys em a e main ained. This
can be achie ed wi h a p ope design and pe o mance o cons uc ion
de ails. Wi hou p ope de ails, nei he can he e ec o addi ional ein-
o cing in acco dance wi h heo e ical assump ions be ensu ed, no can
he long- e m eliabili y o he applied p es essing be gua an eed [34].
3.2.1. Subs i u e cable duc s
P es essing cables (mos ly single-s and cables; some imes mul i-
s and cables) a e a anged in a polygonal ajec o y. Subs i u e cable
duc s o m a pa o he ajec o y, and he cen al pa o he ajec o y
is guided in ca ed slo s on he ob e se side o he a ch (Fig. 11).
This solu ion signi ican ly imp o es he p oduc i i y o he p epa a o y
Fig. 11. Slo s on he ob e se side o he a ch.
Fig. 12. Ancho age a ea in new monoli hic ein o ced spand el walls.
wo ks by educing d illing leng hs. Duc s can be d illed using an impac
o a diamond d illing. D illing wi h a diamond d ill is used o mul i-
ope cables wi hou excep ion. Radial o ces a he de ia o loca ion
do no endange he mason y o he a ch because he adial o ces
a e small when duc slopes a e used wi h 𝛼= 5◦ o 8◦. The cables
a e a anged app oxima ely uni o mly o e adial planes o he a ch
in dis ances anging om 600 o 1200 mm. Theo e ically, he en i e
leng h o he cable can be s o ed in a cable duc al e na ely c ea ed
by diamond d illing a he le el o he cen e o g a i y o he a ch
c oss-sec ion, bu his is no economically ad an ageous o s a ically
necessa y.
3.2.2. De ia o s
The design o he p es essing sys em mus also include he design o
he de ia o s, indica ing all he pa ame e s necessa y o he design and
cons uc ion o he de ia o [35]. Diamond d illing is equi ed o make
he langing su aces o he g oo es and de ia o s, especially because
o he gen le app oach o he a ch mason y. In es iga ion o ul ima e
s eng h o cu ed s and endons is also p esen ed in [36].
3.2.3. Ancho s
New monoli hic ein o ced conc e e spand el walls also pe o m he
unc ion as ancho age a eas. Rein o cemen o ancho ing a eas can hen
be designed and ealized acco ding o he ules commonly applied in

Enginee ing S uc u es 245 (2021) 112898
6
L. Klusáček e al.
Fig. 13. Newly made ein o ced conc e e spand el wall.
case o p es essed conc e e. B idge a ches a e s uc u es exposed o
en i onmen s wi h inc eased agg essi eness, so i is essen ial o use
encapsula ed ancho sys ems. Ancho s o he indi idual s ands a e
dis ibu ed in he pass o he spand el wall. Fo his pu pose, ancho ing
weldmen s a e used, which p o ide ancho posi ions du ing pou ing o
conc e e o g ou ing and dis ibu e o ces om he ancho s in o he
conc e e o he spand el wall (Fig. 12).
3.2.4. Monoli hic walls
The s uc u al design o he ein o cemen o he a ches by ans-
e se p es essing elies on he newly made ein o ced conc e e span-
d el walls, which, in addi ion o ein o cing hemsel es, also es o e
he o iginal s one spand el walls (Fig. 13). Thus, he hickness o he
new wall luc ua es, and he e o e, illing o possible ca e ns and ixing
o loose blocks o he o iginal mason y will occu . The o iginal b ick
spand el walls o m a lea e-in-place o mwo k. New spand el walls
may be ela i ely hin (400 o 600 mm); hei s abili y is ensu ed by he
esul an o ces o he p es essing cables in he ancho s. A hickness o
a leas 500 mm is ecommended because o he one-sided app oach
o moun ing o he ein o cemen .
3.2.5. Possibili ies o b idge widening
By u ilizing he o e hang o he can ile e s, he exis ing a ch can
be ad an ageously widened in acco dance wi h he equi emen s o he
econs uc ion. The can ile e s can be designed as massi e, p e e ably
wi h haunches, which is aes he ically pleasing wi h ega d o he
massi eness o he o iginal a ch s uc u e (Figs. 4,5and 14). As a
esul , he a ches can be expanded by up o 2.5 m on each side o he
b idge.
3.2.6. P es essing ein o cemen
Fo ans e se p es essing, cables dis ibu ed e e y 1.2 o 1.5 m
along he pe ime e o he a ch can be used; s a ic analysis o he s uc-
u e p o ides he numbe o s ands necessa y. I is usually possible o
use h ee- ope o ou - ope cables made up o monos ands (Figs. 4–
6). The use o p o ec ed ein o cemen (monos ands) is a equi emen
because o he ambien agg essi eness and humidi y. Absence o co-
he ence be ween he o iginal mason y and he p es essing cables does
no cause any di icul ies since he elas ic de o ma ions o he a ch and
he abu men s in he ans e se di ec ion caused by he li e load a e
comple ely negligible.
The used p es essing le els a e low and he analysed p es essing
losses ( e i ied wi h an expe imen al measu ing) a e unde 15%.
Fig. 14. The exis ing a ch can be ad an ageously expanded.
3.2.7. C ack injec ion
C acks mus be illed be o e he o e s aining o ce is in oduced
(Figs. 15 and 16). The o ma ion o c acks has occu ed o e a long
pe iod o ime and wi h a con ibu ion o he mason y c eeping. The e-
o e, hey canno be closed by p es essing, as his would lead o
undesi able displacemen s o he sepa a ed pa s o he a ch and he
suppo s, as well as o an eme gence o new c acks. By illing he
c acks, all unwan ed mo emen s and shi s du ing p es essing a e
minimized, and wi h a sligh ho izon al p essu e ension, es o a ion
o he monoli hic cha ac e and in eg i y o he damaged mason y will
be ensu ed.
Injec ion o c acks wi h wid h abo e 0.5 mm is usually pe o med
wi h a cemen ed ac i a ed injec ion mix u e. Smalle c acks i ually
canno be injec ed. Al e na i ely, injec ion o non- oamy polyu e hane
esin ( ensile s eng h in a bend o e 100 MPa) can be used.
3.3. Ma e ial cha ac e is ics
The ein o cemen o he a ches using he a o emen ioned s uc u al
sys em is necessa ily dependen on he cha ac e is ics o he used ma-
e ial. The main condi ion is he su icien quali y o he a ch mason y
as i de e mines he u he se ice li e o he ein o ced b idge and
o he ans e o he ans e se p essu es om he p es essing. The
cha ac e is ics o he used ma e ial mus be de e mined wi h a de ailed
cons uc ion diagnos ics. Examples o non-des uc i e mason y es ing
a e p esen ed in [37].
Diagnos ics a e he necessa y inpu o econs uc ion design.
Wi hin he diagnos ics, a gene al knowledge o c acks (mapping o he
en i e s uc u e) and hei de elopmen mus be achie ed. This in o -
ma ion is necessa y o a compila ion o a de ec mechanism, whose
knowledge is he key o he ac ual es o a ion design. In o ma ion
o he ma e ial cha ac e is ics o he indi idual building ma e ials,
mo a and he ac ual mason y in acco dance wi h he usual p ocedu es
based on p ocedu es acco ding o echnical s anda ds (‘‘eu ocodes’’)
a e ano he necessa y ou pu o he diagnos ic esea ch. The diagnos ic
Enginee ing S uc u es 245 (2021) 112898
7
L. Klusáček e al.
Fig. 15. G ou ing o c acks.
Fig. 16. G ou ed a ea in he back side o he a ch b idge.
esea ch usually also includes some d illing o p obes o he pu pose
o de e mina ion o o he wise inaccessible dimensions (dimensions o
suppo s, heigh o a ch c oss sec ion, hickness o he o iginal spand el
walls). Examples o ma e ial cha ac e is ics o s eng hened b idges
ob ained by diagnos ic su eys a e gi en in Table 1.
Unlike conc e e, mason y is an aniso opic ma e ial, i.e. a ma e ial
whose p ope ies a y in di e en di ec ions. Some imes i is e e ed
o as o ho opic, i.e. a ma e ial whose p ope ies a e di e en in wo
pe pendicula di ec ions. Fo mason y, i is usually i al o es i s
mechanical p ope ies in wo main, mu ually pe pendicula di ec ions,
espec i ely pe pendicula ly o he bed join s o he mason y (usually
in he e ical di ec ion) and pa allel o hem (usually in he ho izon al
di ec ion). Basic de o ma ion p ope ies o mason y include he modu-
lus o elas ici y and he c eep coe icien . The s uc u e diagnosis be o e
he design o epai mus iden i y he ollowing da a:
•The quali y o he a ch mason y in e ms o i s long- e m use:
The a ch b idges a e made o s one o b ick mason y. S one
mason y uses g ani e, gneiss, limes one, sla e and sands one;
b ick mason y mos o en used bu n ull b icks wi h inc eased
esis ance o wa e abso p ion and os b eakdown. I is p ecisely
he esis ance o damage caused by os b eakdown ha is he
decisi e condi ion o a u he use o he a ch s uc u e and o
s eng hening o he a ches a all. Mason y consis ing o b icks
om igneous and me amo phic ocks; sedimen ocks a e sui able
condi ionally. The mason y can also be o med om sands one o
g eywacke, which a e comple ely una ec ed by os e en in he
condi ions o se e al yea s o leakage in o he mason y a ch om
he oadway. In con as , some less cohesi e sands ones can be
damaged by b eakdown by os ac ion o a dep h o 80 mm o
mo e. Simila ly, b ick mason y is gene ally highly abso ben and
hus poo ly esis an . F os b eakdown occu s as a esul o oad
leakage. The o iginal insula ion o he b idge a ches was made o
laye s o compac ed clay. A e mo e han 100 yea s, hese laye s
a e al eady washed ou and do no ul il he insula ion unc ion
any mo e. A new wa e p oo ing laye is es ablished as a pa o
he econs uc ion by ans e se p es essing; he e o e, he issue
o u he leakage is no impo an a he momen o and sho ly
a e he econs uc ion. The e o e, we can summa ize ha a ches
om s one mason y (g ani e, gneiss, limes one, sands one) a e
sui able o s eng hening and widening o a ches; he condi ion
o mo a is o en no a c ucial ac o . B ick mason y a ches
a e condi ionally app op ia e because hey almos always equi e
oadway exca a ion and implemen a ion o wa e p oo ing.
•The s eng h o he mason y suppo ing s uc u e o he a ch: he
classi ica ion o he b icks and he mo a has o be pe o med ac-
co ding o he s anda ds and using in si u s eng h measu emen s.
The s eng h o he b icks can be de e mined by a non-des uc i e
ebound me hod o by aking samples o p essu e es ing in
a p ess. Mos ly, jus he non-des uc i e me hod is su icien
because he a ia ion in he s eng h o he building ma e ial
leads o minimum di e ences in he esul ing design s eng h o
he mason y. In o de o de e mine he s eng h o he mason y,
we ha e o de e mine he s eng h o he mo a , o example by
using a modi ied d ill-based es ing. F om he acqui ed s eng hs
o he b icks and he mo a , he design s eng h o he mason y
is de e mined.
The s eng h o he mason y ension is usually de ined e ically
o he bed join . In he pa allel di ec ion o he bed join , he
ension is e y small, ha d o measu e o no de ined a all. In
pe iodically s essed mason y s uc u es o s uc u es s essed o
a long pe iod o ime, he ensile s eng h in he di ec ion pa allel
o he bed join is almos ze o.
•The hickness o he oadway and all laye s abo e he a ch, in-
cluding he p ecise de e mina ion o he a ch hickness: Laye size
de e mina ion should be done by d illing ial pi s in o he oad
using diamond cu ing echnology o by bo e holes. Mo eo e , i
is necessa y o d ill a bo e hole h ough he a ch o de e mine he
a ch hickness. De e mina ion o he ac ual dimension o he a ch
is necessa y because he hickness o he a ch inside he s uc u e
may no be iden ical o he a ch depic ed on he o iginal spand el
wall.
•De ec s and ailu es o he b idge a ch be o e ein o cemen and
econs uc ion: These include de e mining he ex en and sou ce
o leaking in o he a ch. These a e he de aul da a o he inal
design o wa e -p oo ing o he e e se side o he a ch.
3.4. Nume ical model
In o de o e i y he a ch beha iou and epai design, he ideal
app oach is o pe o m a h ee-dimensional (3D) disc e e analysis using
he ini e elemen s me hod wi h nonlinea ma e ial beha iou . Such
analysis will allow calcula ion o limi s a es and de e mina ion o
ailu e mechanisms, bu i is e y demanding in e ms o inpu pa-
ame e s — cons uc ion geome y, mason y p ope ies, back ill soil
p ope ies and con ac elemen pa ame e s [38–40]. C ea ion o a
h ee-dimensional spa ial model consis ing o plana and beam ele-
men s is su icien o use in p ac ice (Fig. 17 — a ch b idge in Rybná
nad Zdobnicí). This sample nume ical model was c ea ed om 302
Enginee ing S uc u es 245 (2021) 112898
8
L. Klusáček e al.
Table 1
Ma e ial cha ac e is ics o s eng hened a ch b idges a e diagnos ic su eys.
Ma e ial cha ac e is ics Loca ion o he a ch b idge
Sem ín Ransko B no-Špi álka Rybná nad
Zdobnicí
Comp essi e s eng h o building ma e ial 𝑓𝑢25 MPa
(bu n clay b.)
120 MPa
(g ani e b.)
25 MPa
(bu n clay b.)
60 MPa
(sands one b.)
Comp essi e s eng h o mo a 𝑓𝑚1.2 MPa
(lime m.)
0.4 MPa
(lime m.)
1.4 MPa
(lime m.)
1.2 MPa
(lime m.)
Comp essi e s eng h o mason y 𝑓𝑘3.6 MPa 6.2 MPa 3.8 MPa 5.2 MPa
Secan modulus o elas ici y (sho - e m) 𝐸3.6 GPa 6.2 GPa 3.8 GPa 5.2 GPa
Fig. 17. Shell model de o ma ion caused by s a ic load (a ch b idge in Rybná nad
Zdobnicí).
beam elemen s, 6716 shell elemen s and a o al o 7202 nodes. The
basic elemen size was chosen o be 0.3 m. Examples o ma e ial p ope -
ies used in shell model o a ch b idge in Rybná nad Zdobnicí a e shown
in Table 2, whe e 𝐸is modulus o elas ici y, 𝐺is modulus o shea , 𝜈is
he Poisson’s a io, 𝛾is densi y and 𝛼is he mal expansion coe icien .
Ma e ials can be en e ed as iso opic, elas ic and linea in o his model.
In case o homogenized mason y, i is necessa y o check he ensile
s ess so ha no ensile bea ing s eng h is exceeded in any di ec ion
( he usual alue is 0.05–0.1 MPa). The e is a pa allel con ac be ween
he exis ing s one spand el wall and he new ein o ced conc e e, in
which he ansmission o o ces is expec ed because o he applied
p es essing and he ic ion be ween he su aces. I is ad isable o
c ea e a simpli ied slab model o design he hickness o he spand el
walls and p es essing cables (see Sec ion 3.1). The p es essing cables
a e modelled using beam elemen s. P es essing is in oduced in o he
s uc u e h ough ancho s in new ein o ced conc e e walls and buil -
in de ia o s. In he case o de ia o s, i is necessa y o check o a oid
local con ac b eaking o he mason y. In his model, i is also necessa y
o cap u e he beha iou o he su ounding back ill, which a ec s he
load dis ibu ion on he mason y a ch and he bounda y condi ions o
he model, i.e. suppo s. Gene ally, he soil exhibi s a so e esponse
o he load han he a ch. The e o e, i he maximum load on he
mason y a ch is no exhaus ed, he su ounding soil has minimum
e ec on he model. I he ensile load-bea ing capaci y is exceeded, a
Fig. 19. C acks be ween spand el wall (blocks) and mason y caused by buckling.
mechanism is c ea ed, and he a ch in e ac s wi h he su ounding soil.
In hese cases, i is no enough o model only he co esponding s i ness
o he ounda ion, bu you also ha e o model a comple e elas ic–
plas ic back ill. Fo hese needs, i is necessa y o p o ide a de ailed
hyd ogeological su ey o de e mine all he necessa y pa ame e s o
he nume ical model. The model is suppo ed by nonlinea suppo s
wi h adequa e s i nesses, which a e ine ec i e in ension.
The inabili y o he mason y a ch o esis ensile s esses was
simula ed by inse ing linea join s and hus he non-linea beha iou
o he his o ical mason y o he b idge a ches was subs i u ed.
Tensile s esses a e comple ely elimina ed by he ans e se p e-
s essing and a he same ime, comp essu e in en ionally induced
by p es essing is designed a low le els wi h ega d o he mason y
s eng h. The e o e, use o elas ically linea model complies comple ely
wi h he esul ing beha iou o he s uc u e. This basic p esump ion o
s uc u es ein o ced in his way was e i ied by he measu ing.
Fig. 18. Road b idge in Sem ín, econs uc ion by pos - ensioning.
Enginee ing S uc u es 245 (2021) 112898
9
L. Klusáček e al.
Table 2
Examples o ma e ial p ope ies used in nume ical shell model o a ch b idge in Rybná nad Zdobnicí (Fig. 17).
Type o ma e ial Ma e ial p ope ies
E [GPa] G [GPa] 𝜈[–] 𝛾[kN/m3]𝛼[1∕◦C]
Mason y (sands one, lime mo a ) 15 5.7 0.3 24.0 9.0E06
Rein o ced conc e e (C30/37) 33 13.7 0.2 25.0 1.0E05
P es essing endon (Y1860-S7-15.7) 195 75.0 0.3 78.5 1.0E05
Fig. 20. Measu ing o ho izon al s ain du ing pos - ensioning.
4. De o ma ion o a ch mason y du ing p es essing
An impo an ques ion is how does he mason y o he o iginal
a ch and he mason y o suppo s eac o he ho izon al p es essing,
i.e. pa allel o he bed join o he b icks. I is necessa y o know he
mason y s ain o a co ec es ima ion o p es essing losses. Because
o he low p es essing le els (up o 20% o mason y s eng h, 0.1 o
0.3 MPa in p ac ice), he s ain can be expec ed o no be la ge and
a he simila o he s ain in case o a s ess applied in a pe pendicula
di ec ion upon he loading su ace. The in e ac ion o he adjacen
embankmen s and back ills behind he a ch o suppo is also unknown
as well as he in e ac ion o he base o ounda ion.
The au ho s o he a icle a e p obably he i s o conduc a sho -
e m measu emen o a de o ma ion esponse o ho izon al p es essing
o b idge a ches. The ob ained esul s a e p esen ed o wo cases o
s eng hening o he a ch b idge.
4.1. B idge a ch in he ci y o Sem ín
The b idge consis s o a cylind ical a ch wi h a cen e line in he
shape o a ci cula segmen o b ick mason y wi h a hickness o
450 mm. Sands one blocks o m he suppo o a ch mason y on each
side o he b idge span. The o iginal spand el walls and suppo s we e
made o s one mason y. The o iginal mo a is lime, pa ly washed ou ,
o he 0.2 o 0.4 MPa s eng h class. The a ch span is 4.5 m, he a ch
wid h is 10 m, and he leng h o he newly made spand el walls is 18.4
m. Schema ic sec ions o he s uc u e a e shown in Fig. 18.
The basic eason o he econs uc ion was he leaning ou o bo h
spand el walls o he b idge and ledges, ollowed by he o ma ion
o longi udinal c acks be ween he a ch and spand el walls wi h a
wid h o 20–30 mm on he downs eam side o he b idge (Fig. 19)
and a ound 10 mm wide on he ups eam side. In acco dance wi h
he na u e o he de ec s men ioned abo e, he ein o cemen o he
a ch was designed in such way so ha new ein o ced conc e e walls
Fig. 21. Rela i e s ain o a ch mason y du ing ho izon al p es essing.
Fig. 22. Road b idge in Ransko, econs uc ion by pos - ensioning.
Enginee ing S uc u es 245 (2021) 112898
16
L. Klusáček e al.
Fig. 40. Rela i e s ains a he op o he a ch du ing c ossing on ack no. 2 (be o e
and a e s eng hening).
Fig. 41. Rela i e s ains a he op o he a ch du ing c ossing on ack no. 1 (be o e
and a e s eng hening).
minimum o −174.10 μm/m o −68.36 μm/m on he e e se side and
om he measu ed minimum o −34.68 μm/m o −10.59 μm/m on
he ob e se side. The inc ease o he a ch s i ness in he ans e se
di ec ion be o e and a e he es o a ion can be s a ed p opo ionally
as 2.55:1 o he e e se side o he a ch and as 3.27:1 o he ob e se
side o he a ch. Gene ally, i can be s a ed ha he s i ness o he a ch
in place o ack no. 2 abo e he moun ed MA1 inc eased app oxima ely
h ee imes.
Simila ly o he ack no. 1 abo e he moun ed MA2, when he
ain was c ossing on he ack no. 2, he s ain almos did no change
on he ob e se side o he a ch ( ensile o ces we e c ea ed), and on
he e e se side o he a ch, he s ain dec eased om he measu ed
minimum −86.31 μm/m o −30.19 μm/m, i.e. in he a io o 2.86:1.
C ossings on ack no. 1 — MA2 (Fig. 41)
On he basis o he measu ed alues, i is clea ha when c ossing
ack no. 1 abo e he moun ed mechanical ampli ie MA2, he a ch
in he place o he moun ed MA1 was pushed on he e e se side
and pulled on he ob e se side be o e and a e he es o a ion. A e
s eng hening, he ela i e s ain was educed om he measu ed mini-
mum o −28.59 μm/m o −12.33 μm/m on he e e se side o he a ch.
The ela i e s ain on he ob e se side o he a ch dec eased om he
measu ed maximum o 10.94 μm/m o 3.15 μm/m. The inc ease o he
a ch s i ness in he ans e se di ec ion be o e and a e he es o a ion
can be p opo ionally s a ed as 2.32:1 o he e e se side o he a ch
and as 3.47:1 o he ob e se side o he a ch. In gene al, i can be
s a ed ha he s i ness o he a ch in he place o moun ed MA1 was
inc eased app oxima ely h ee imes.
In he case o ack no. 1 abo e he moun ed MA2, he s ain was
educed while c ossing on ack 1 om he measu ed maximum o
51.61 μm/m o 10.51 μm/m o he a ch ob e se side, i.e. in he a io o
4.91:1. On he e e se side o he a ch, he ela i e s ain was educed
om he measu ed minimum o −430.57 μm/m o −89.53 μm/m, i.e. in
he a io o 4.81:1.
The pe o med measu emen con i med he high e iciency o he
es o a ion by in oducing he p es essing in o he b idge a ch. By
in oducing he p es essing in he ans e se di ec ion, he s i ness
has been p o en o inc ease, and he sepa a ed pa s o he b idge a ch
once again ac as a single uni — con inuously and mu ually dependen .
Fig. 42. A ch b idge in Rybná nad Zdobnicí — be o e econs uc ion.
Fig. 43. Rein o ced a ch b idge in Rybná nad Zdobnicí wi h new spand el walls.
The es o a ion has signi ican ly educed he s ain a he op o he
a ch du ing c ossing o ains o abou 1/2 o 1/5, which esul s in an
p olonged se ice li e o he s uc u e.
6. The e ec o empe a u e upon measu ing
Du ing he measu emen , he e a e de ia ions om he heo e ical
assump ions in he eco d. These de ia ions ange om uni s o h o
uni s o %. The o a ion o he mechanical ampli ie s, changes o he
ambien empe a u e, he ib a ions caused by he echnical seismici y,
and he human ac o , o name a ew, a e among he mos c i ical
ac o s in luencing he accu acy o he measu ed da a.
The compensa ion o he in luence o empe a u e changes du ing
he measu emen can be shown in he beha iou o he b idge a ch in
he ci y o Rybná nad Zdobnicí, Czech Republic [42]. The main eason
o he econs uc ion o he b idge a ch was he leaning ou o bo h
he spand el walls by up o 180 mm, ollowed by a disin eg a ion o
he mason y and alling ou o he s one blocks. The s abili y o bo h
spand el walls was dis up ed, and he s abili y o he en i e s uc u e
was endange ed. The b idge a ch was also dis up ed by longi udinal
c acks o a hickness om 2 o 5 mm, which di ided he a ch in o
sel -ac ing sec ions.

Enginee ing S uc u es 245 (2021) 112898
17
L. Klusáček e al.
Fig. 44. The mechanical ampli ie s we e ins alled a wo places on he a ch.
Fig. 45. Mechanical ampli ie ins alled a he op o he a ch.
Fig. 46. A ully loaded uck was used as a bu den o s a ic and dynamic
measu emen s.
6.1. Desc ip ion o measu ed b idge, pe o med measu emen s and es s
The suppo ing s uc u e o he b idge consis s o an o iginal s one
a ch wi h a clea span o 5.7 m and a clea cambe o 2.85 m (Fig. 42).
The heigh o he a ch base abo e he ein o ced bank o he s eam
is 3.2 m, and he heigh o he a ch op abo e he s eam is 7.43 m.
The a ch hickness is app oxima ely 0.65 m. The new spand el walls
a e 0.6 m hick and a e made o C- / 28 conc e e and ein o cing s eel
10505 (R). The econs uc ion also included an inc ease in he ee
wid h o 12.0 m using sui ably shaped spand el walls and ledge linings
Fig. 47. Rela i e s ain on he ou e ib es o he a ch wi hou il e ing ou he
empe a u e.
Fig. 48. De elopmen o su ounding empe a u e in he cou se o he measu emen .
on which sidewalks a e placed (Fig. 43). Replacemen cable duc s wi h
a diame e o 52 mm we e placed in o he o iginal s one a ch o
accommoda e he p es essing cables. These we e c ea ed by p ecision
d illing wi h diamond co e d ills and diamond cu ing machines. The
de ia o s we e designed om s ip s eel wi h a adius o R = 2.0 m. All
he c acks in he a ch and suppo s had been illed wi h g ou be o e
he monos ands we e s e ched. Also, a sealing injec ion o 0.5 ×0.5 m
g id was ca ied ou , which, o da e, con inues o p e en wa e lowing
in o he suppo ing s uc u e.
The measu emen o he a ch was designed so ha was possible
o ind ou he syne gy o he a ch in he ans e se di ec ion and
a he same ime o e ine he calcula ion model o s a ic analysis
and e alua ion o esul s. Measu emen s using he p e iously desc ibed
mechanical ampli ie s we e pe o med a wo loca ions o he a ch. The
i s loca ion was in he middle o he a ch wid h; he second loca ion
was in he 1/4 o he s one a ch wid h (Figs. 44 and 45). The a ch
de lec ion was also measu ed in he middle o he a ch wid h o e i y
he a ch beha iou . In se e al loca ions a ound he s uc u e and nea
he a ch and senso s, empe a u e was measu ed so ha he 41 e ec s
o he empe a u e could be compensa ed o .
Bo h s a ic and dynamic load measu emen s we e pe o med on he
s uc u e. A ully loaded Liaz 150 uck was used as a bu den (Fig. 46).
To al ehicle weigh was 18.14 ons ( ea axle 11.6 ons; on axle
6.54 ons). In he s a ic load es , he ehicle was placed in he igh
lane wice, in he middle o he oad wice, and in he le lane once.
The ea axle has always been posi ioned abo e he cen e o he a ch
span. Dynamic measu emen s du ing c ossings we e pe o med wice
a 30 km/h in he igh lane and wice in he middle o he oad.
Enginee ing S uc u es 245 (2021) 112898
18
L. Klusáček e al.
Fig. 49. Rela i e s ain a e il e ing ou o he e ec s o olume changes o he a ch
caused by empe a u e.
Fig. 50. Rela i e s ain du ing axle es no. 3 — ehicle in he middle o he oad
abo e MA1.
6.2. Measu emen e alua ion
Co ec ing he eco d o he e ec s o empe a u e change can be
di ided in o wo basic g oups. Du ing he measu emen , because o
empe a u e luc ua ions, he measu ing de ice is in luenced, bu also
he mason y s uc u e i sel is subjec o olume changes because o
he mal ine ia. In Fig. 47, i is possible o see he ela i e s ain on
he ou e ib es o he b idge a ch wi hou il e ing ou he olume
changes o he mason y b idge a ch. The ed and blue colou s show
he esul s om mechanical ampli ie no. 1 in he cen e o he span
and he g een and o ange colou s show he esul s om mechanical
ampli ie no. 2 in he 1/4 o he s one a ch wid h. I is also possible o
easily iden i y indi idual s a ic on axle es s and dynamic es load
c ossings om he igu e. Posi i e s ains o he c oss-sec ion be ween
he indi idual on axle es s (a e emo al o he load) we e measu ed
wi hou il e ing ou o he olume changes o he mason y a ch. These
ensile s ains a e caused by a ying empe a u e. In ou case, du ing
he measu emen , he ambien en i onmen was cooled down (Fig. 48),
which led o olume changes o he mason y a ch. Mo eo e , because
he mechanical ampli ie s a e moun ed on he ou e su ace, posi i e
s ains a e immedia ely eco ded. The ac ual s ain o he a ch a he
om he su ace will be di e en because o he empe a u e ine ia o
he massi e c oss-sec ion. The e o e, he measu ed alues ha e been
adjus ed o compensa e o his empe a u e e ec . Cooling o he
ambien en i onmen causes he p essu e ese e o be pumped ou
in he op o he a ch and has an almos a ine cou se o empe a u e
de elopmen .
A e il e ing ou he e ec s o olume changes o he a ch caused
by empe a u e (Fig. 49), he alues o he s ains in he uppe and
Fig. 51. De lec ion du ing he dynamic c ossings.
lowe ib es a e as expec ed — posi i e s ains (elonga ion) on he
su ace and nega i e s ains (sho ening) on he e e se side o he
a ch. The measu ed alues on bo h su aces a e almos iden ical in
absolu e alues (Fig. 50) — inaccu acies a e caused by he a iable
a ch hickness and he con ibu ion o he su ounding embankmen ,
which shi s he c oss-sec ional cen e o g a i y u he om he ou e
su ace o he a ch.
Fig. 50 shows he measu ed alues om he on axle es no. 3
when he ehicle s ops in he middle o he a ch (Fig. 46). Du ing he
on axle es , locally ele a ed c oss-sec ional s ain alues caused by
he egula a ic can be seen; he a ic could no be elimina ed du ing
he measu emen , only limi ed and slowed down o he le ou e lane
o he oad.
Du ing he dynamic c ossings a a speed o 30 km/h, i was possible
o measu e s ain and de lec ion om he indi idual axles o he ehicle
used as a bu den. Fig. 51 illus a es he de lec ions in he middle o he
b idge a ch in all ou c ossings. Fi s , he e is app oxima ely hal he
de lec ion om he ligh e on axle and hen he de lec ion inc eases
because o he hea ie ea axle. A e c ossing o he ehicle, he
measu ed alues e u n o ze o, so he e is no pe manen de o ma ion
o he a ch.
7. Conclusion
The desc ibed me hod o s eng hening and widening o a mason y
b idge a ch using hin ein o ced conc e e spand el walls s abilized
by ans e se p es essing cables has se e al ad an ages. I is simul-
aneously simple, du able and e ec i e. I can be ca ied ou wi h
a ic limi ed o a single lane h ough he cen e o he b idge in case
o oad a ches, o wi h a ic limi ed o only one ack in case o
ailway a ches. The es o a ion wi h only a pa ial limi a ion o a ic is
welcomed by bo h b idge manage s and in es o s. On a e age, he cos s
o econs uc ion ep esen 40% o he p ice o he new b idge. I he
quali y o he mason y is sa is ac o y (s one mason y is almos always
sa is ac o y, b ick mason y is condi ional on quali y), i can always be
ecommended. The au ho s o he pape p o e he eliabili y and long-
e m li e ime o his me hod wi h p ac ical ealiza ions, and he oldes
applica ion has been in ope a ion wi hou any de ec s o mo e han
15 yea s.
The desc ibed s uc u al sys em is also ad an ageous because he e
is no need o demolish any pa o he exis ing s uc u e in he cou se
o he applica ion o he new sys em. The o iginal spand el walls
become a pe manen shu e ing o new ein o ced conc e e spand el
walls, which will co e he o iginal ones (including hei de ec s) hus
au oma ically causing a es o a i e e ec o he addi ional s uc u e.
Enginee ing S uc u es 245 (2021) 112898
19
L. Klusáček e al.
The s ain o he a ch du ing he p es essing p ocess, which has
been e i ied expe imen ally, mani es s e y small o negligible p e-
s essing losses and he p edic abili y o he s a ic calcula ions used.
By using a la ge numbe o mechanical ampli ie s ac oss he a ch,
i is possible o s udy in mo e de ail he syne gy o he pa s o he a ch
a c sepa a ed by c acks. The monoli hic cha ac e o he a ch has been
achie ed by he addi ional la e al p es essing. The desc ibed me hod-
ology can be used o complex moni o ing o he beha iou o he whole
s uc u e, e alua ing i s damage and e ining he compu a ional model
acco ding o he cu en s a e o he damaged s uc u e.
Decla a ion o compe ing in e es
The au ho s decla e ha hey ha e no known compe ing inan-
cial in e es s o pe sonal ela ionships ha could ha e appea ed o
in luence he wo k epo ed in his pape .
Acknowledgemen
This pape has been inancially suppo ed by he Technology
Agency o he Czech Republic unde he p ojec n.
CK01000042 ‘‘Speci ica ion o esidual load-capaci y o p es essed
b idges’’.
Re e ences
[1] O bán Z. Assessmen , eliabili y and main enance o mason y a ch ailway
b idges in eu ope. S uc Des Cons 2004;152–61.
[2] S oboda A, Klusáček L, Olšák M. S eng hening and ehabili a ion o U-shaped
RC b idges using subs i u e cable duc s. Ad Ma e Sci Eng 2019;2019:21. h p:
//dx.doi.o g/10.1155/2019/8920718, URL: h ps://www.hindawi.com/jou nals/
amse/2019/8920718/.
[3] Recupe o A, Spinella N, Colajanni P, Scilipo i CD. Inc easing he capaci y o
exis ing b idges by using unbonded p es essing echnology: A case s udy. Ad
Ci Eng 2014;2014. h p://dx.doi.o g/10.1155/2014/840902.
[4] Recupe o A, Spinella N, Scilipo i CD. Me hod o ex ending li e o exis ing b idge:
A case s udy. In: 8 h in e na ional con e ence in he low ca bon e a. Dundee:
2012.
[5] Pe angeli M, Usai G, Zoppis E. B idge epai by ex e nal p es ess: The gibe
c ossing in e hiopia. In: IABSE symposium epo 96. 2009, p. 10–9. h p:
//dx.doi.o g/10.2749/222137809796078469.
[6] Daly A, Wi a nawan W. A me hod o inc easing he capaci y o sho and
medium span b idges. In: P oceedings o he 10 h REAAACon e ence. Tokyo,
Japan: 2000.
[7] Daly A, Wi a nawan W. S eng hening o b idge using ex e nal pos - ensioning.
In: P oceedings o he con e ence o eas e n asia socie y o anspo a ion. Seoul,
Republic o Ko ea: 1997.
[8] Nilimaa J, Blanks ä d T, Täljs en B, El g en L. Unbonded ans e se pos en-
sioning o a ailway b idge in hapa anda, Sweden. J B idge Eng 2013;19.
h p://dx.doi.o g/10.1061/(ASCE)BE.1943-5592.0000527.
[9] Zampie i P, Te ougueni CD, Pelleg ino C. Rigid-block analysis o a cheological
elemen s e o i ed wi h ex e nal pos - ensioning sys em. P ocedia S uc In eg
2020;29:192–8. h p://dx.doi.o g/10.1016/j.p os .2020.11.156, A Collec ions
2020, Sa e y Issue (ARCO 2020, SAFETY). URL: h ps://www.sciencedi ec .com/
science/a icle/pii/S2452321620308325.
[10] Woodwa d R, Daly A. Design o b idges wi h ex e nal p es essing: Cons uc ion
and es ing o a model b idge. Tl epo 392, Be kshi e: TLR - T anspo
Resea ch Labo a o y; 1999.
[11] Miyamo o A, Tei K, Nakamu a H, Bull J. Beha io o p es essed beam s eng h-
ened wi h ex e nal endons. J S uc Eng 2000;126(9):1033–44. h p://dx.doi.
o g/10.1061/(ASCE)0733-9445(2000)126:9(1033), ci ed By 115.
[12] Mimo o T, Sakaki T, Miha a T, Yoshi ake I. S eng hening sys em using pos -
ension endon wi h an in e nal ancho age o conc e e membe s. Eng S uc
2016;124:29–35. h p://dx.doi.o g/10.1016/j.engs uc .2016.06.003, URL: h p:
//www.sciencedi ec .com/science/a icle/pii/S0141029616302681.
[13] P eciado A, Rami ez-Gay an A, Gu ie ez N, Va gas D, Falcón Me az J,
Ochoa Gonzalez G. Nonlinea ea hquake capaci y o slende old mason y
s uc u es p es essed wi h s eel, FRP and NiTi SMA endons. S eel Compos S uc
2018;26. h p://dx.doi.o g/10.12989/scs.2018.26.2.213.
[14] P eciado A, Ba oli G, Ramí ez-Gay án A. Ea hquake p o ec ion o he
To e G ossa medie al owe o San Gimignano, I aly by e ical ex e -
nal p es essing. Eng Fail Anal 2017;71:31–42. h p://dx.doi.o g/10.1016/
j.eng ailanal.2016.11.005, URL: h ps://www.sciencedi ec .com/science/a icle/
pii/S1350630716304708.
[15] P eciado A, Spe beck ST, Ramí ez-Gay án A. Seismic ulne abili y enhance-
men o medie al and mason y bell owe s ex e nally p es essed wi h un-
bonded sma endons. Eng S uc 2016;122:50–61. h p://dx.doi.o g/10.1016/j.
engs uc .2016.05.007, URL: h ps://www.sciencedi ec .com/science/a icle/pii/
S0141029616302012.
[16] P eciado A, Budelmann H, Ba oli G. Ea hquake p o ec ion o colonial bell-
owe s in colima, Mexico wi h ex e nally p es essed FRPs. In J A chi He i
2015;10:499–515. h p://dx.doi.o g/10.1080/15583058.2014.1003624.
[17] Jung W-T, Pa k J-S, Kang J-Y, Pa k HB. S eng hening e ec o p es essed nea -
su ace-moun ed CFRP endon on ein o ced conc e e beam. Ad Ma e Sci Eng
2018;2018:18. h p://dx.doi.o g/10.1155/2018/9210827.
[18] Zomo odian M, Yang G, Bela bi A, Ayoub A. Beha io o FRP-s eng hened RC
elemen s subjec ed o pu e shea . Cons Build Ma e 2018;170:378–91. h p://
dx.doi.o g/10.1016/j.conbuildma .2018.03.004, URL: h p://www.sciencedi ec .
com/science/a icle/pii/S0950061818304835.
[19] Mos o inejad D, Hosseini SM, Nade Teh ani B, E ekha MR, Dya i M. Inno a i e
wa p and woo s ap (WWS) me hod o ancho he FRP shee s in s eng hened
conc e e beams. Cons Build Ma e 2019;218:351–64. h p://dx.doi.o g/10.
1016/j.conbuildma .2019.05.117, URL: h p://www.sciencedi ec .com/science/
a icle/pii/S0950061819312863.
[20] Choi J. Compa a i e s udy o e ec i e s esses o conc e e beams s eng hened
using ca bon- ib e- ein o ced polyme and ex e nal p es essing endons. S uc
In as uc Eng 2014;10(6):753–66. h p://dx.doi.o g/10.1080/15732479.2012.
759977, ep in : h ps://doi.o g/10.1080/15732479.2012.759977.
[21] Ga mendia L, San-José J, Ga cía D, La inaga P. Rehabili a ion o ma-
son y a ches wi h compa ible ad anced composi e ma e ial. Cons Build
Ma e 2011;25(12):4374–85. h p://dx.doi.o g/10.1016/j.conbuildma .2011.03.
065, Mason y Resea ch and P ac ice. URL: h p://www.sciencedi ec .com/
science/a icle/pii/S0950061811001309.
[22] Ali O, Bigaud D, Fe ie E. Compa a i e du abili y analysis o CFRP-s eng hened
RC highway b idges. Cons Build Ma e 2012;30:629–42. h p://dx.doi.o g/10.
1016/j.conbuildma .2011.12.014, URL: h p://www.sciencedi ec .com/science/
a icle/pii/S095006181100691X.
[23] Khaloo A, Mo adi H, Kazemian A, Sheka chi M. Expe imen al in es iga ion on
he beha io o RC a ches s eng hened by GFRP composi es. Cons Build Ma e
2020;235:117519. h p://dx.doi.o g/10.1016/j.conbuildma .2019.117519, URL:
h p://www.sciencedi ec .com/science/a icle/pii/S095006181932971X.
[24] Wi zany J, Cejka T, Zigle R. S eng hening o mason y s uc u es using FRP
— Expe imen al esea ch. In: Ye L, Feng P, Yue Q, edi o s. Ad ances in FRP
composi es in ci il enginee ing. Be lin, Heidelbe g: Sp inge Be lin Heidelbe g;
2011, p. 943–6.
[25] Anania L, Badalà A, D’Aga a G. The pos s eng hening o he mason y
aul s by he 𝛺-w ap echnique based on he use o C-FRP. Cons Build
Ma e 2013;47:1053–68. h p://dx.doi.o g/10.1016/j.conbuildma .2013.05.012,
URL: h p://www.sciencedi ec .com/science/a icle/pii/S0950061813004108.
[26] Zlámal M, Š ěpánek P. S eng hening o a ched mason y s uc u es by addi ional
ein o cemen : Design app oaches and compa ison o expe imen s. Bal J Road
B idge Eng 2018;13:313–30. h p://dx.doi.o g/10.7250/bj be.2018-13.419.
[27] Simoncello N, Zampie i P, Gonzalez-Lib e os J, Pe boni S, Pelleg ino C. Nu-
me ical analysis o an FRP-s eng hened mason y a ch b idge. F on ie s in Buil
En i onmen 2020;6:7. h p://dx.doi.o g/10.3389/ buil.2020.00007, URL: h ps:
//www. on ie sin.o g/a icle/10.3389/ buil.2020.00007.
[28] Zampie i P. Ho izon al capaci y o single-span mason y b idges wi h in ados
FRCM s eng hening. Compos S uc 2020;244:112238. h p://dx.doi.o g/10.
1016/j.comps uc .2020.112238, URL: h ps://www.sciencedi ec .com/science/
a icle/pii/S0263822319335950.
[29] Zampie i P, Simoncello N, Gonzalez-Lib e os J, Pelleg ino C. E alua ion o he
e ical load capaci y o mason y a ch b idges s eng hened wi h FRCM o SFRM
by limi analysis. Eng S uc 2020;225:111135. h p://dx.doi.o g/10.1016/j.
engs uc .2020.111135, URL: h ps://www.sciencedi ec .com/science/a icle/pii/
S0141029619353817.
[30] P oske D, K aw schuk A, Zeman O, S auss A. Expe imen al in es iga ion o
mason y a ches exposed o ho izon al impac /expe imen elle Un e suchungen
on Maue we ksbögen un e Ho izon alanp all. Maue we k 2015;19(4):298–311.
h p://dx.doi.o g/10.1002/dama.201500667, ep in : h ps://onlinelib a y.wiley.
com/doi/pd /10.1002/dama.201500667, URL: h ps://onlinelib a y.wiley.com/
doi/abs/10.1002/dama.201500667.
[31] A aei S, Jahangi i Alikama M, Kazemiash iani V. E alua ion o axle load
inc easing on a monumen al mason y a ch b idge based on ield load
es ing. Cons Build Ma e 2016;116:413–21. h p://dx.doi.o g/10.1016/j.
conbuildma .2016.04.126, URL: h p://www.sciencedi ec .com/science/a icle/
pii/S095006181630681X.
[32] Fanning PJ, Boo hby TE, Robe s BJ. Longi udinal and ans e se e ec s in
mason y a ch assessmen . Cons Build Ma e 2001;15(1):51–60. h p://dx.
doi.o g/10.1016/S0950-0618(00)00069-6, URL: h p://www.sciencedi ec .com/
science/a icle/pii/S0950061800000696.
[33] Klusáček L, Pěkník R, Nečas R. E ec i e way o econs uc a ch b idges
using conc e e walls and ans e se s ands. IOP Con Se : Ma e Sci Eng
2017;236:1–11. h p://dx.doi.o g/10.1088/1757-899X/236/1/012058.
Enginee ing S uc u es 245 (2021) 112898
20
L. Klusáček e al.
[34] Railway echnical publica ions. UIC code ecommenda ions o he inspec ion,
assessmen and main enance a ch b idges. Tech. ep., Pa is: In e na ional Union
o Railways, 2018.
[35] S oboda A, Klusáček L. Resul s o sho - e m expe iemn s wi h monos ands
in saddles wi h small adii. In: Solid S a e pehnomena, 24 h in e na ional
con e ence conc e e days 2017, ol. 272. Swi ze land: T ans Tech Publica ions;
2018, p. 147–53. h p://dx.doi.o g/10.4028/www.scien i ic.ne /SSP.272.147.
[36] Kollegge J, Gmaine S, Lehne K, Simade J. Ul ima e s eng h o
cu ed s and endons. S uc Conc 2012;13(1):42–50. h p://dx.doi.o g/10.
1002/suco.201100027, ep in : h ps://onlinelib a y.wiley.com/doi/pd /10.1002/
suco.201100027, URL: h ps://onlinelib a y.wiley.com/doi/abs/10.1002/suco.
201100027.
[37] O bán Z, Yako le G, Pe ushin G. Non-Des uc i e Tes ing o mason y a ch
b idges – an o e iew. Bau echnik 2008;85(10):711–7. h p://dx.doi.o g/10.
1002/ba e.200890136, ep in : h ps://onlinelib a y.wiley.com/doi/pd /10.1002/
ba e.200890136, URL: h ps://onlinelib a y.wiley.com/doi/abs/10.1002/ba e.
200890136.
[38] Bień J, Kamiński T. Nume ical modelling o damaged mason y a ch b idges. In:
B idge main enance, sa e y, managemen , li e-cycle pe o mance and cos . 2006,
p. 227–8. h p://dx.doi.o g/10.1201/b18175-80.
[39] Kamiński T, Bień J. Applica ion o kinema ic me hod and FEM in analysis
o ul ima e load bea ing capaci y o damaged mason y a ch b idges. P ocedia
Eng 2013;57:524–32. h p://dx.doi.o g/10.1016/j.p oeng.2013.04.067, Mode n
Building Ma e ials, S uc u es and Techniques. URL: h p://www.sciencedi ec .
com/science/a icle/pii/S187770581300800X.
[40] Be i M, D osopoulos GA, S a oulakis GE. Two non-linea ini e elemen
models de eloped o he assessmen o ailu e o mason y a ches. C R Méc
2008;336(1):42–53. h p://dx.doi.o g/10.1016/j.c me.2007.10.014, Duali y, in-
e se p oblems and nonlinea p oblems in solid mechanics. URL: h p://www.
sciencedi ec .com/science/a icle/pii/S1631072107001969.
[41] S nad J. In luence o pos - ensioning on mason y a ches and me hodology o
measu emen [Ph.D. hesis], B no: B no Uni e si y o Technology; 2009, p. 130.
[42] Pěkník R, Klusáček L. In luence o ho izon al p es essing on mason y a ch
b idge. In: 8 h in e na ional scien i ic con e ence o ci il enginee ing and
a chi ec u e o PhD. s uden s and young scien is below 35 yea s old. Technical
Uni e si y o Košice; 2016, p. 1–8.