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<dc:title>Disclose river morphodynamics processes&#xd;
through experiments</dc:title>
<dc:creator>VISCONTI, FRANCESCO</dc:creator>
<dc:contributor>Visconti, Francesco</dc:contributor>
<dc:subject>Morfodinamica fluviale</dc:subject>
<dc:subject> Esperimenti</dc:subject>
<dc:subject> fiumi</dc:subject>
<dc:subject>Settore ICAR/01 - Idraulica</dc:subject>
<dc:description>Rivers’ behavior is increasingly of interest to wide engineering and scientific communities.&#xd;
In fact, fluvial dynamics have an impact on infrastructure and anthropic&#xd;
environments as well as on natural habitats. In addition, the economic values of river&#xd;
as routes of commerce is great, as is the importance of precious minerals deriving from&#xd;
fluvial sedimentary structures.&#xd;
One of the more fascinating river’s peculiarity is the wide range of space and time&#xd;
scales that impact on the overall fluvial dynamics: from the small scales typical of turbulence&#xd;
that are responsible for the motion of single bed’s grains to wider scales typical&#xd;
of fluvial catchment and climate changes. Such a variety of impacting scales firstly accounting&#xd;
for the difficulties of fluvial investigations. Moreover, a second source of&#xd;
difficulty comes from the wide interactions between the fluvial scales: typical hydrodynamics&#xd;
scales influences and being influenced by the scales of sediment transport&#xd;
and bed deformation. It follows that non-linear and non-trivial behavior characterizes&#xd;
the river dynamic. Notwithstanding, great improvements in the fluvial knowledges&#xd;
have been done up to now. Nowadays, fluvial engineer and researchers can take advantage&#xd;
of field studies, laboratory experiments and hydrodynamic models to improve and&#xd;
deepen the study of the various fluvial phenomena. A rough chronology of fluvial advances&#xd;
dates back to 50s the development of field studies and laboratory experiments,&#xd;
and to 80s the growth of mathematical theories and numerical models. All these investigation&#xd;
methods are nowadays being improved and each result to be fundamental&#xd;
to the others.&#xd;
Field study represents the only way to study the real fluvial system, but imply two&#xd;
disadvantages: firstly, they are difficult to be performed (mainly during flood periods)&#xd;
and expensive, and secondly are site-sensitive (i.e., it is difficult to drawn general laws&#xd;
and lessons from a specific fluvial environment).&#xd;
Laboratory experiments are useful to operate in a reductionist manner, since they&#xd;
allow to isolate and separate physical issues that in nature are merged and somehow&#xd;
hidden. Being a strong simplification of complex natural phenomena, experiments&#xd;
must be carefully designed and run in order to be a realistic reproduction of what happens&#xd;
in nature. Mathematical theories and physically-based numerical models are a&#xd;
strongly quantitative way to face to fluvial behavior. Nowadays, we can see an increasingly&#xd;
number of theoretical models and this is due to the increase of computing&#xd;
power of computers and to advances in mathematical modeling. At the same time, the&#xd;
4&#xd;
a)&#xd;
b)&#xd;
d)&#xd;
e)&#xd;
f) g)&#xd;
c)&#xd;
Figure 1.1: Examples of various river channel patterns. From a) to g): Brahmaputra&#xd;
River, India (10 km wide braid plain), Rakaia River, New Zealand (1.7 km widebraid&#xd;
plain), Allier River, France (0.8 km wide meander belt), Koyukuk River, Alaska (10&#xd;
km wide meander belt), Columbia river, Canada (2.1 km wide fluvial valley), Escalante&#xd;
River, Utah (60 m wide channel) and Nanedi Valles, Mars (2 km wide channel) (after&#xd;
Kleinhans (2010)).&#xd;
Introduction 5&#xd;
theoretical advances risk to provide models that, even though mathematically refined,&#xd;
are not useful to resolve practical fluvial problems. It follows that a correct mix of field&#xd;
observation, experiments, and theories can be the only way to face the fascinating and&#xd;
still not completely discovered fluvial world.&#xd;
The consequence of all the physical processes that characterize rivers is the wide&#xd;
and fascinating range of planimetric patterns that a river can exhibit. On the basis of&#xd;
the channel form on the horizontal plane, rivers are traditionally classified as straight,&#xd;
braiding or meandering (e.g., Leopold and Wolman, 1957). Each of these planforms&#xd;
present different mobility on the floodplain and different degree of pattern stability.&#xd;
Moreover, every river planform has its peculiar natural habitat, in terms of different&#xd;
riparian vegetation, geochemical characteristics, and fauna. Figure 1.1 shows a good&#xd;
example of the different channel patterns that are present in nature. The planimetric&#xd;
patterns shown from panels 1.1a to 1.1g are qualitatively characterized by a decreasingly&#xd;
stream power versus bank strength ratio.&#xd;
Another peculiar feature of rivers, common to all the planimetric patterns, is the&#xd;
intrinsic bed instability. Once the motion threshold is exceeded the water flow over&#xd;
a granular bed leads the bed to presents transversely oriented wave-like features, for&#xd;
example ripples and dunes. This bedforms travel beneath the current, take part to&#xd;
sediment transport, and increase the hydraulic resistances. Dunes are of the order of&#xd;
magnitude of water depth, presenting in nature typical wavelength of 100-102m. Figure&#xd;
1.2 shows an example of a train of dunes obtained in laboratory.&#xd;
Figure 1.2: Dunes in an our laboratory run. Flow was from right to left. For scaling,&#xd;
channel width was 50 cm.&#xd;
Major sizes are typical of another ubiquitous bedforms, called bars. River bars are&#xd;
6&#xd;
longitudinal sedimentary accumulation, submerged and moved only during high flows.&#xd;
Bars can assume a classical alternate configuration with respect to channel axis (alternate&#xd;
bar) or be present on the inner side of bends (forced bars). Bars play different morphodynamics&#xd;
role on different river planform: e.g., they can trigger and enhance bend&#xd;
evolution in meandering river and separate the single channels of braiding network.&#xd;
Figure 1.3 reports two alternate bar in our experiments on the pseudo-meandering pattern.&#xd;
Figure 1.3: Alternate bars in an experimental channel. Flow was from left to right. For&#xd;
scaling, the distance between the triangular markers was about 3 m.&#xd;
In our work we study both issues about fluvial planforms and bedforms, investigating&#xd;
some connections between planimetric and bed deformation. In particular&#xd;
we face with a planimetric configuration called "pseudo-meandering". The pseudomeandering&#xd;
pattern exhibits several features of both meandering rivers (alternate bars,&#xd;
migrating bends and asymmetrical cross-sections) and braiding rivers (flow diversion&#xd;
and tendency to create secondary channels due to the development of a chute channel&#xd;
between the inner side of the bar and the bank) which coexist in the same reach.&#xd;
Thanks to an experimental approach and some field observation we demonstrate how&#xd;
such pattern is strictly influenced and determined by the water discharge variability.&#xd;
Fluvial planforms were also focused in experiments reproducing some pattern&#xd;
changes (from braiding to single-thread) that are induced by strong sediment supply&#xd;
decline, that mainly happens caused by anthropic activities and infrastructures.&#xd;
Bedforms issue are instead presented by coupling experiments and a mathematical&#xd;
models, with the aim to investigate and clarify the initial stages of alternate bar formation.&#xd;
In particular we present results showing how our model is able to predict the&#xd;
wavelength selection typical of alternate bar.&#xd;
A great part of the experimental runs presented in this work has taken advantage&#xd;
Geomorphological background 7&#xd;
of a new instrument that is able to profile the flume bed during the run and in a non–&#xd;
invasive way. We underwent this newly-developed device to several trials to test its&#xd;
accuracy. The maximum errors in the bed’s elevation measurement resulted to be less&#xd;
than 1 mm in hydraulic conditions that are typical of morphodynamics runs.&#xd;
The present thesis is organized as follows. Chapter 2 presents a general introduction&#xd;
about fluvial geomorphology, introducing the various river planforms that are&#xd;
present in nature and the bedforms typical of river’s beds. In chapter 3, the novel instrument&#xd;
used to scan in a non–invasive way the flume bed is described. The following&#xd;
chapters represent the core of the experimental researches: experiments regarding the&#xd;
influence of a varying discharge on a pseudomeadering channel are reported in chapter&#xd;
4, chapter 5 is devoted to elucidate the transition from multi to single-thread fluvial&#xd;
patterns, and in chapter 6 a new theory and its experimental verification is developed&#xd;
to explain the wavelength selection typical of alternate bars.</dc:description>
<dc:date>2012</dc:date>
<dc:type>info:eu-repo/semantics/doctoralThesis</dc:type>
<dc:identifier>http://hdl.handle.net/11583/2502647</dc:identifier>
<dc:language>eng</dc:language>
<dc:relation>numberofpages:147</dc:relation>
<dc:publisher>Politecnico di Torino</dc:publisher>
<dc:publisher>country:Italy</dc:publisher>
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