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| In [[topology]] a mathematical discipline, a '''prime manifold''' is an ''n''-[[manifold (topology)|manifold]] that cannot be expressed as a non-trivial [[connected sum]] of two ''n''-manifolds. Non-trivial means that neither of the two is an [[n-sphere|''n''-sphere]].
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| A similar notion is that of an '''''irreducible''''' ''n''-manifold, which is one in which any embedded (''n'' − 1)-sphere bounds an embedded ''n''-[[ball (topology)|ball]]. Implicit in this definition is the use of a suitable [[category theory|category]], such as the category of [[differentiable manifold]]s or the category of [[piecewise-linear manifold]]s.
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| The notions of irreducibility in algebra and manifold theory are related. An irreducible manifold is prime, although the converse does not hold. From an algebraist's perspective, prime manifolds should be called "irreducible"; however the topologist (in particular the 3-manifold topologist) finds the definition above more useful. The only compact, connected 3-manifolds that are prime but not irreducible are the trivial 2-sphere [[fiber bundle|bundle]] over the circle S<sup>1</sup> and the twisted 2-sphere bundle over S<sup>1</sup>.
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| According to [[Prime decomposition (3-manifold)|a theorem]] of [[Hellmuth Kneser]] and [[John Milnor]], every [[compact space|compact]], [[orientability|orientable]] [[3-manifold]] is the [[connected sum]] of a unique ([[up to]] [[homeomorphism]]) collection of prime 3-manifolds.
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| == Definitions ==
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| Let us consider specifically [[3-manifold]]s.
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| === Irreducible manifold ===
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| A 3-manifold is '''irreducible''' if any smooth sphere bounds a ball. More rigorously, a [[differentiable manifold|differentiable]] [[connected space|connected]] 3-manifold <math>M</math> is irreducible if every differentiable [[submanifold]] <math>S</math> [[homeomorphic]] to a [[n-sphere|sphere]] bounds a subset <math>D</math> (that is, <math>S=\partial D </math>) which is homeomorphic to the closed [[ball (topology)|ball]]
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| :<math>D^3 = \{x\in\R^3\ |\ |x|\leq 1\}. </math>
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| The assumption of differentiability of <math>M</math> is not important, because every topological 3-manifold has a unique differentiable structure. The assumption that the sphere is ''smooth'' (that is, that it is a differentiable submanifold) is however important: indeed the sphere must have a [[tubular neighborhood]].
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| A 3-manifold that is not irreducible is '''reducible'''.
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| ===Prime manifolds===
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| A connected 3-manifold <math>M</math> is '''prime''' if it cannot be obtained as a [[connected sum]] <math>N_1\# N_2 </math> of two manifolds neither of which is the 3-sphere <math>S^3</math> (or, equivalently, neither of which is the homeomorphic to <math>M</math>).
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| == Examples ==
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| === Euclidean space ===
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| Three-dimensional [[Euclidean space]] <math> \R^3 </math> is irreducible: all smooth 2-spheres in it bound balls.
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| On the other hand, [[Alexander's horned sphere]] is a non-smooth sphere in <math>\R^3</math> that does not bound a ball. Thus the stipulation that the sphere be smooth is necessary.
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| === Sphere, lens spaces ===
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| The [[3-sphere]] <math>S^3</math> is irreducible. The [[product space]] <math>S^2\times S^1</math> is not irreducible, since any 2-sphere <math>S^2\times \{pt\} </math> (where 'pt' is some point of <math>S^1</math>) has a connected complement which is not a ball (it is the product of the 2-sphere and a line).
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| A [[lens space]] <math>L(p,q) </math> with <math>p\neq 0 </math> (and thus not the same as <math>S^2\times S^1 </math>) is irreducible.
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| == Prime manifolds and irreducible manifolds ==
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| A 3-manifold is irreducible if and only if it is prime, except for two cases: the product <math>S^2\times S^1</math> and the [[non-orientable]] [[fiber bundle]] of the 2-sphere over the circle <math>S^1</math> are both prime but not irreducible.
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| === From irreducible to prime ===
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| An irreducible manifold <math>M</math> is prime. Indeed, if we express <math>M</math> as a connected sum
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| :<math>M=N_1\#N_2, </math>
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| then <math>M</math> is obtained by removing a ball each from <math>N_1</math> and from <math>N_2</math>, and then gluing the two resulting 2-spheres together. These two (now united) 2-spheres form a 2-sphere in <math>M</math>. The fact that <math>M</math> is irreducible means that this 2-sphere must bound a ball. Undoing the gluing operation, either <math>N_1</math> or <math>N_2</math> is obtained by gluing that ball to the previously removed ball on their borders. This operation though simply gives a 3-sphere. This means that one of the two factors <math>N_1</math> or <math>N_2</math> was in fact a (trivial) 3-sphere, and <math>M</math> is thus prime.
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| === From prime to irreducible ===
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| Let <math>M</math> be a prime 3-manifold, and let <math>S</math> be a 2-sphere embedded in it. Cutting on <math>S</math> one may obtain just one manifold <math> N </math> or perhaps one can only obtain two manifolds <math>M_1</math> and <math>M_2</math>. In the latter case, gluing balls onto the newly created spherical boundaries of these two manifolds gives two manifolds <math>N_1</math> and <math>N_2</math> such that
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| :<math>M = N_1\#N_2. </math> | |
| Since <math>M</math> is prime, one of these two, say <math>N_1</math>, is <math>S^3</math>. This means <math>M_1</math> is <math>S^3</math> minus a ball, and is therefore a ball itself. The sphere <math>S</math> is thus the border of a ball, and since we are looking at the case where only this possibility exists (two manifolds created) the manifold <math>M</math> is irreducible.
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| It remains to consider the case where it is possible to cut <math>M</math> along <math>S</math> and obtain just one piece, <math>N</math>. In that case there exists a closed simple [[curve]] <math>\gamma </math> in <math>M</math> intersecting <math>S</math> at a single point. Let <math> R </math> be the union of the two [[tubular neighborhood]]s of <math>S</math> and <math>\gamma </math>. The boundary <math>\partial R</math> turns out to be a 2-sphere that cuts <math>M</math> into two pieces, <math>R</math> and the complement of <math>R</math>. Since <math>M</math> is prime and <math>R</math> is not a ball, the complement must be a ball. The manifold <math>M</math> that results from this fact is almost determined, and a careful analysis shows that it is either <math>S^2\times S^1</math> or else the other, non-orientable, [[fiber bundle]] of <math>S^2</math> over <math>S^1</math>.
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| == Bibliography ==
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| * {{cite book|author=[[William Jaco]]|title= Lectures on 3-manifold topology | isbn = 0-8218-1693-4}}
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| == See also ==
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| * [[3-manifold]]
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| * [[Connected sum]]
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| * [[Prime decomposition (3-manifold)]]
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| [[Category:Manifolds]]
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Taisha will be the name she loves in order to called with and she totally digs that make. What Would like enjoy doing is canoeing and I am going to never stop doing thought. Administering databases been recently my normal work for a bit of time. My husband fuel tank chose to exist in Kansas even so will must move every year or pair. You can always find her website here: http://www.youtube.com/watch?v=9hqIGzHNPdA
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