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Please use this identifier to cite or link to this item: http://hdl.handle.net/11375/30451
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dc.contributor.advisorWang, McKenzie-
dc.contributor.authorZwarich, Sebastian-
dc.date.accessioned2024-10-21T19:05:47Z-
dc.date.available2024-10-21T19:05:47Z-
dc.date.issued2024-11-
dc.identifier.urihttp://hdl.handle.net/11375/30451-
dc.description.abstractWe set out to analyze 5D stationary and bi-axisymmetric solutions to the vacuum Einstein equations. These are in the cohomogeneity 2 setting where the orbit space is a right half plane. They can have a wide range of behaviour at the boundary of the orbit space. The goal is to understand in detail the soliton example in Khuri, Weinstein and Yamada's paper ``5-dimensional space-periodic solutions of the static vacuum Einstein equations". This example is periodic and has alternating axis rods as its boundary data. We start by deriving the harmonic equations which determines the behaviour of the metric in the interior of the orbit space. Then we analyze what conditions the boundary data imposes on the metric. These are called the smoothness conditions which we derive for solely the alternating axis rod case. We show that with an ellipticity assumption they predict that the twist potentials are constant and that the metric is of the form which appears in Khuri, Weinstein and Yamada's paper. We then analyze the Schwarzschild metric in its standard form which is cohomogeneity 1 and its Weyl form which is cohomogeneity 2. This Weyl form can be made periodic and this serves as an inspiration for the examples in Khuri, Weinstein and Yamada's paper. Finally we analyze the soliton example in detail and show that it satisfies the smoothness conditions. We then provide a new example which has a single axis rod on the boundary with non-constant twist potentials but that is missing a point on the boundary.en_US
dc.language.isoenen_US
dc.subjectVacuum Einstein Equationsen_US
dc.subjectBlackholeen_US
dc.subjectCohomogeneity 2en_US
dc.subjectRiemannian Submersionen_US
dc.subjectStationaryen_US
dc.subjectBi-Axisymmetricen_US
dc.subjectTwist Potentialsen_US
dc.subjectDomain of Outer Communicationen_US
dc.subjectOrbit Spaceen_US
dc.subjectHarmonic Map Equationsen_US
dc.titleAn Analysis of the 5D Stationary Bi-Axisymmetric Soliton Solution to the Vacuum Einstein Equationsen_US
dc.title.alternativeOn the 5D Soliton Solution of the Vacuum Einstein Equationsen_US
dc.typeThesisen_US
dc.contributor.departmentMathematics and Statisticsen_US
dc.description.degreetypeThesisen_US
dc.description.degreeMaster of Science (MSc)en_US
dc.description.layabstractWe study the geometry of 5D blackholes. These blackholes are idealized by certain spatial symmetries and time invariance. They are solutions to the vacuum Einstein equations. The unique characteristic of these blackholes is the range of behaviour they may exhibit at the boundary of the domain of outer communication. There could be a standard event horizon called a horizon rod or an axis rod where a certain part of the spatial symmetry becomes trivial. In this thesis we start by deriving the harmonic map equations which are satisfied in the interior of the domain of communication. Then we show how this boundary data affects the metric through the smoothness conditions. We then analyze the soliton example in a paper by Khuri, Weinstein and Yamada and show that it respects the smoothness conditions. We then provide a new example which is interesting in the fact it has non-constant twist potentials.en_US
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AN ANALYSIS OF THE 5D STATIONARY BI-AXISYMMETRIC SOLITON SOLUTION TO THE VACUUM EINSTEIN EQUATIONS FINAL.pdf
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An examination of the soliton solution found in Khuri, Weinstein and Yamadas paper. It is shown that their solution respect certain smoothness condition and the asymptotic behaviour is analyzed. A new solution is found which has non-constant twist potentials but is missing a point on the boundary of the orbit space.747.29 kBAdobe PDFView/Open
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