Intersection of Closed Intervals of Positive Reals is Zero

Theorem
Let $\R_{> 0}$ be the set of strictly positive real numbers.

For all $x \in \R_{> 0}$, let $B_x$ be the closed real interval $\closedint 0 x$.

Then:
 * $\ds \bigcap_{x \mathop \in \R_{> 0} } B_x = \set 0$

Proof
Let $\ds B = \bigcap_{x \mathop \in \R_{> 0} } B_x$.

We have that:
 * $\forall x \in \R_{> 0}: 0 \in \closedint 0 x$

So by definition of intersection:
 * $0 \in B$

and so by Singleton of Element is Subset:
 * $\ds \set 0 \subseteq \bigcap_{x \mathop \in \R_{> 0} } B_x$

$\exists y \in \R_{> 0}: y \in B$.

By definition of $B_x$:
 * $y \notin \closedint 0 {\dfrac y 2} = B_{y/2}$

and so by definition of intersection of family:
 * $y \notin B$

From this contradiction it follows that there can be no elements in $B$ apart from $0$.

That is:
 * $\ds \bigcap_{x \mathop \in \R_{> 0} } A_x \subseteq \set 0$

By definition of set equality:
 * $\ds \bigcap_{x \mathop \in \R_{> 0} } B_x = \set 0$