dc.contributor.advisor |
Grabe, P.J. (Hannes) |
en |
dc.contributor.postgraduate |
Du Plooy, Rudolph |
en |
dc.date.accessioned |
2016-10-27T07:28:48Z |
|
dc.date.available |
2016-10-27T07:28:48Z |
|
dc.date.created |
2016-09-01 |
en |
dc.date.issued |
2015 |
en |
dc.description |
Dissertation (MEng)--University of Pretoria, 2015. |
en |
dc.description.abstract |
Train speeds and heavy haul axle loads are constantly increasing the forces and stresses experienced
by track structures. This is especially true for track transitions that generate high dynamic forces on
both the track and vehicles as a result of differing track stiffness values on either side of the track
transition. Reducing differential settlement between the two track structures at a track transition is
one method of improving the life of the track and increasing maintenance intervals. Ballast attrition
and breakdown at these track transition zones is also of major concern as ballast fouling can lead
to reduced drainage performance of the ballast as well as a potential loss of strength as the ballast
becomes increasingly fouled.
In this study rigid polyurethane foam was used as a means to reinforce ballast. Various tests were
conducted using a dynamic load hydraulic load frame in a large ballast box test at heavy haul axle
loads. Unreinforced, reinforced and 50 % reinforced ballast layers of 300 mm depth were tested to
approximately 5,000,000 load cycles.
The results showed that rigid polyurethane foam reinforced ballast exhibited in the order of 60 %
less settlement for a fully reinforced layer and 42 % less settlement for a half reinforced layer. The
increase in layer stiffness with increasing load cycles was also observed for the reinforced ballast
layers which is contrast with the decrease in layer stiffness for conventional unreinforced ballast. The
use of rigid polyurethane foam (RPF) to reinforce ballast has a number of benefits which could result
in better track geometry and longer maintenance cycles resulting in lower overall costs. |
en_ZA |
dc.description.availability |
Unrestricted |
en |
dc.description.degree |
MEng |
en |
dc.description.department |
Civil Engineering |
en |
dc.description.librarian |
tm2016 |
en |
dc.identifier.citation |
Du Plooy, R 2015, Characterisation of rigid polyurethane foam reinforced ballast through cyclic loading box tests, MEng Dissertation, University of Pretoria, Pretoria, viewed yymmdd <http://hdl.handle.net/2263/57518> |
en |
dc.identifier.other |
S2016 |
en |
dc.identifier.uri |
http://hdl.handle.net/2263/57518 |
|
dc.language.iso |
en |
en |
dc.publisher |
University of Pretoria |
en_ZA |
dc.rights |
© 2016 University of Pretoria. All rights reserved. The copyright in this work vests in the University of Pretoria. No part of this work may be reproduced or transmitted in any form or by any means, without the prior written permission of the University of Pretoria. |
en |
dc.subject |
UCTD |
en |
dc.subject |
Reinforced ballast |
|
dc.subject |
Rigid polyurethane foam |
|
dc.subject |
Box tests |
|
dc.subject |
Railway ballast |
|
dc.subject |
Rail infrastructure |
|
dc.subject |
Material characterization |
|
dc.subject.other |
Engineering, built environment and information technology theses SDG-09 |
|
dc.subject.other |
SDG-09: Industry, innovation and infrastructure |
|
dc.subject.other |
Engineering, built environment and information technology theses SDG-11 |
|
dc.subject.other |
SDG-11: Sustainable cities and communities |
|
dc.subject.other |
Engineering, built environment and information technology theses SDG-12 |
|
dc.subject.other |
SDG-12: Responsible consumption and production |
|
dc.title |
Characterisation of rigid polyurethane foam reinforced ballast through cyclic loading box tests |
en_ZA |
dc.type |
Dissertation |
en |