Precise general statement of flat morphisms being "equidimensional"
Here is what I found.
For the irreducible case we have:
Theorem: Let $X,Y$ be Noetherian irreducible schemes and $f:X\rightarrow Y$ a flat morphism of finite type. Then, for each $y\in Y$ the fiber $f^{-1}(y)$ is pure dimensional and its dimension is independent of $y$.
Proof/Source: See these notes of Brian Conrad
For the non-irreducible case we have:
Theorem: Let $X,Y$ be Noetherian schemes and $f:X\rightarrow Y$ be an open morphism of finite type (for example, $f$ flat and of finite type). Moreover, suppose that $Y$ is universally catenary, irreducible and $\dim Y<\infty$, that $X$ is equidimensional and
- For any irreducible component $X'$ of $X$ one have $$\dim Y= \sup_{y\in f(X')} \dim \mathcal{O}_{Y,y}.$$
Then, for all $y\in f(X)$ the fiber $f^{-1}(y)$ is equidimensional and its dimension is independent of $y$.
The property $\bullet$ is satisfied automatically if for example:
- The restriction of $f$ to each irreducible component of $X$ is surjective.
- $f$ is a closed morphism (for example: if $f$ is proper).
- $Y$ is of finite type over a field.
- $Y$ is of finite type over $\mathbb{Z}$.
Proof/Source: Görtz and Wedhorn, Algebraic geometry I. Theorem 14.114 and the remark after.
So as a corollary from the above, you don't have to worry about irreducibility if you are working with varieties.
Now, a counterexample that escape both theorems:
Counterexample: There are schemes $X,Y$ and a morphism $f:X\rightarrow Y$ such that:
- $X,Y$ are Noetherian.
- $Y$ is irreducible (and $X$ is not) and universally catenary.
- $X$ is equidimensional.
- $f:X\rightarrow Y$ is a (faithfully-)flat morphism of finite type.
- $f^{-1}(\eta)$ has two components, one of dimension 1 and other of dimension 2.
More concretely:
- $Y=\mathrm{Spec}(R)$ for $R$ a discrete valuation ring with uniformizer $\pi$
- $X=\mathrm{Spec}(A)$ for $A=R[X,Y,Z]/(X(\pi Z-1),Y((\pi Z-1)))$
- $f$ is the morphism corresponding to the ring map $R\rightarrow A$.
Proof/Source: Görtz and Wedhorn, Algebraic geometry I. Exercise 14.24.
There is an online note by Mr.Arapura. At the end of it he claims that you can find details in EGA IV, Section 13 and 14 of the following theorem
Theorem. Let $f: X \longrightarrow S$ be a morphism locally of finite type. If $S$ is Noetherian and $f$ is flat, then all fibres have the same dimension.
Personally I believe what he wants to say is that the fiber dimension is "locally constant" because his statement could obviously fail when $X$ is not connected.
This is the dream theroem you and me are expecting. But I do not know if we can trust him. I searched for several key words and the best result I found in EGA is the following
Corollary (14.2.5). Soient $Y$ un préschéma localement noethérien, $f:X \longrightarrow Y$ un morphisme propre, $y \in Y$ un point tel que $f$ soit ouvert en tous les points de $f^{-1}(y)$. Alors la fonction $y \longmapsto \dim(f^{-1}(y)) $ est constante dans un voisinage de $y$.
The condition "$f$ soit ouvert en tous les points de $f^{-1}(y)$" is satisfied if $f$ is flat.
You can find a similar one in Stack Project saying
Let $f:X \longrightarrow Y$ be a proper and flat morphism of schemes of finite presentation. Then the function $y \longmapsto \dim(X_y)$ is locally constant.
As you can see they both involved an extra "properness" condition, compared to Mr.Arapura's note.
I do NOT know if EGA IV contains a theorem as Mr.Arapura has claimed. I do not know French.