All: Sorry for the length of the post, but I think it is necessary to set things up so that the post is understandable. I'm trying to understand how it is that the transversality (in this case , the transversality of the Reeb field $R_{\omega}$ associated with a given contact form $\omega$) is determined with respect to a certain differential form :
I'm going through an argument in which we intend to show that a given Reeb vector field $R_ω $ is positively-tangent to a link ( as in a space whose connected components are $S^1$-knots) . This means the Reeb field lives in the tangent space to the Link, along the positive direction) , and Rω is positively- transverse to a surface S ( so that Rω intersects S positively at points). The argument is made using properties of differential forms, in the context of open book decompositions of contact 3-manifolds. A needed definition is this: A contact structure ζ is supported by an open book decomposition (B, π ) if ζ can be isotoped thru contact structures so that there is a contact 1-form ω for ζ satisfying:
1)dω is a positive area form on each page $∑_θ$ of the open book, and:
2)ω>0 on the binding B ; both B and the pages are oriented.
End of setup.
Actual Question:
To be more specific, I'm trying to understand the following arguments purporting to show the equivalence between these two conditions:
(1) The contact manifold (M,ζ ) is supported by the open book (B,π)
(3) There is a Reeb field Rω for a contact structure isotopic to ω , so that $R_ω$ is positively-tangent to the binding B, and positively-transverse to the pages of the open book.
Proof: (3)->(1) : Since $R_ω$ is assumed positively -tangent to the binding B , we have ω>0 on oriented tangent vectors to B. Since the Reeb field $R_ω$ is positively-transverse to the pages of the OB (open book) , we have that $dω=i_{R_ω} (ω \wedge dω) >0$ on the pages of the OB (where i is --I am? -- the interior product , or contraction of the form $ω\wedge dω$ by the vector field $R_ω$
Questions: i)How does $R_ω$ being positively-tangent to the ( knots in the ) binding imply $ω >0$ ? I know this means the vector field being positively-tangent to the binding means that $R_ω$ lies along the tangent space ; a 1-d tangent space, to each of the knots, along the chosen positive direction orientation.
ii)Why is $dω$ equal to the contraction of $ω \wedge dω$ ? , and how does the positive transversality imply that $dω>0$?
(1)->(3): Assume (1), and let ω be the form with the given conditions, and let R ω be the Reeb field associated with ω. Then "It is clear that $R_ω$ is positively-transverse to the pages of the OB, since dω is an area form on the pages of the open book"
I have no clue about the connection between the Reeb field being positively-transverse to the pages, and dω being an area form on the pages. I know if dw is a positive area form on the pages, then $dω(X,Y)>0$ at any pair of positively-oriented tangent vectors. And I know a Reeb field associated to a contact structure is transverse to the planes in the contact structure .But I can't see how this relates to $dω being an area form for the pages of the open book.
Thanks for any suggestions, ideas.