# ADR 0010 — Rotation advances a generation; the keys before it are kept - Status: accepted - Date: 2026-08-03 - Builds on: [ADR 0001](0001-e2ee-trust-model.md), [ADR 0009](0009-team-access-model.md) ## Context ADR 0009 shipped removal as "revoke the grants and flag the vault", and named the missing half plainly: only a client holding the current vault key can produce the next one, so the server could record that a rotation was owed and nothing more. Nothing acted on the flag. In practice that meant removing somebody from a team left every vault they could read encrypted under the key they had, for ever — the interface said a rotation was owed and no button existed to perform one. Two things had to be decided before that flag could be acted on, and they are not independent. **When does the generation change?** A vault key is per vault *per generation* (`docs/crypto.md` §3), and a grant names the generation it opens. If two admins rotate at the same time, both wrap a key, both issue grants, and the vault ends up with two claimed "current" keys and a set of members split between them — half of whom cannot read what the other half writes, with nothing to point at as the cause. **What happens to everything already stored?** An item carries the generation it was sealed under, in its own row and in its AAD. A rotation that advanced the generation and left the old grants behind would make every item written before it unreadable to everybody, including the person who rotated. A rotation that re-encrypted every item would avoid that — and is a different, much larger operation: `crypto.md` §3 puts it at N × 32 bytes of re-wrapped data keys, which is cheap in bytes and is still a write to every row of a vault, in batches, against a server that caps a push at 500 operations and 8 MB, with the connection/activity logs alone reaching five thousand entries per kind. ## Decision **The rotation is the generation bump, and it is one server transaction. Grants for earlier generations are kept.** `POST /api/v1/vaults/{id}/rekey` takes the next generation and the new key sealed to the caller. In one transaction the vault's `key_generation` advances, the caller's grant for it is inserted, and the rekey flag is cleared. The request must name exactly `current + 1`, and the vault's `xmin` concurrency token makes that check binding rather than advisory — the second of two simultaneous rotations is refused and told to read the vault again. The server contributes the *moment*, which is the one part of a rotation a client cannot decide for itself; it contributes no cryptography, cannot tell that the key it is handed differs from the old one, and cannot tell whether the caller held the old one. That last part is checked the only way it can be: the caller must hold a live grant at the current generation, which is a row rather than a proof. Everything that follows from keeping the old grants: - **A member holds one grant per generation, and `VaultSummary` serves all of them.** The current wrap stays where it was; the rest arrive as `PriorKeyWraps`, oldest first. `VaultKeyring` holds a key per generation, hands out the newest for writing and the item's own for reading. Every read path picks its key from the payload's `keyGeneration` rather than from the vault's. - **Sharing hands over the history.** `ShareVaultAsync` issues a grant for every generation the sharing client holds, oldest first. Somebody added after a rotation who was given only the newest key would open the vault to a list of items that will not decrypt — which reads as corruption, not as a missing grant. The server accordingly accepts a grant for any generation the vault has reached, and refuses one for a generation ahead of it: nothing is sealed under that, and accepting it would let a client move the vault forward outside the transaction that is allowed to. - **Revocation takes every generation.** Removing a member, and `RevokeGrantAsync`, revoke all of a recipient's grants rather than the current one. Leaving the history would leave them able to read everything written before the rotation, which is exactly what the rotation was for. - **A member between the rotation and their re-wrap can read and cannot write.** They hold the history and no current key, so the vault lists as unreadable and writes refuse. Writing under a superseded key would produce items nobody else could open, and the author's own keyring — which still holds that key — would show no sign of it. **Removing a member rotates automatically.** The teams screen removes the member, then rotates every team vault the machine can currently open and wraps each new key to the members who remain. Adding a member is the mirror image: every team vault this machine can open is wrapped to them as part of the add. Both report per vault, including what they could not do — a vault whose key this machine does not hold is skipped and stays flagged, because somebody else has to finish it. ## The second half: re-sealing what is already stored > **Added 2026-08-04.** This was deferred when the decision above was taken, and is now built. The > reasoning that made it safe to defer is what made it cheap to add, so it is recorded here rather > than in an ADR of its own. A rotation on its own re-keys the vault and not its contents, which leaves one gap: somebody who left with a copy of the old key could still open old ciphertext they later got hold of. `VaultResealer` closes it by walking the vault and rewriting each item under the current key, as an ordinary upsert against the version the server holds. Four properties, each of which is a decision: - **It never decodes the plaintext.** An item is opened and the *same bytes* are sealed again under a fresh data key. No codec, no merge, no schema version — so an item written by a newer client survives untouched, where re-encoding it through this build's codec would silently drop the fields this build has no concept of. It is also why one pass covers every item type, including types added after it was written. - **It is resumable, and needs no transaction.** Each item is one upsert, so a pass that dies half way leaves a vault at mixed generations — which is a state that reads perfectly well, because that is precisely what the decision above bought. Running it again picks up what is left. - **A conflict is counted, not merged.** The pass changes no content, so there is nothing to merge: an item somebody else wrote meanwhile is left at their version and re-sealed on the next pass. - **A queued local edit is left alone, and re-sealed on the way out instead.** Rewriting it here would overwrite the user's unpushed work with the version the server holds. Instead `SyncEngine` re-seals a queued payload whose generation is stale as it dispatches it, and writes the revision back to the outbox first so a retry sends the same bytes. That closes the one hole a pass over *stored* items cannot see: a change made before the rotation and pushed after it would otherwise put a brand-new item into the vault under the key the departed member holds. The pass runs as the last step of a rotation, after a sync — a mirror that is behind produces a batch of conflicts rather than a re-sealed vault. The interface reports which of the two guarantees was reached, because they are different: a vault fully re-sealed is closed to the person who left, and one where items were left behind is closed only to what happens next. ## What this still does not do **It does not reach what they already pulled.** The person who left keeps whatever plaintext is on their machine — that is the non-retroactive limit ADR 0001 records and no design here changes it. The honest remediation for a departure is still to rotate the credentials themselves, and the product says so rather than the reassuring version. ## Alternatives rejected - **Revoke the old grants on rotation.** Tidier, and it makes the grant list say exactly one thing per member. It also makes every item written before the rotation unreadable to everybody, which is data loss performed by a security feature. - **Chain the keys: store each old key sealed under its successor.** One wrap per rotation instead of one grant per member per generation, and new members get the history for free. It needs a new table, a new AAD purpose, and a recursive unwrap on the read path — and it makes the vault's whole history reachable from the current key, which is a strictly larger blast radius than a set of grants that can be revoked one at a time. - **Rotate atomically with every item re-sealed, in one request.** The safest shape on paper and the one `crypto.md` implies. It caps rotation at the push limits — 500 operations and 8 MB — which a vault with a year of connection log in it exceeds, and the failure mode is a vault that can never be rotated at all. - **Let the server generate the new key.** It would make rotation a single call and would end the product: a server that can produce a vault key can read the vault. ## Consequences `vault_key_grant` grows by one row per member per rotation. The unique index is already per `(vault, generation, recipient)`, so this needed no migration; the rows are 110-byte seals and a vault rotated monthly for a decade with ten members holds twelve hundred of them. The sharing graph gains a dimension the operator can read: which generation each member holds, and so which of them have been re-wrapped since the last rotation. That is the same class of metadata ADR 0009 already records as visible, and it is the same fact the sharing screen shows the members themselves. A client that never comes back holds keys to generations that no longer receive writes, which is the same exposure as any copy of a vault key on a machine that has been lost — bounded by the fact that the server will not serve them anything, and unbounded in the way every non-retroactive revocation is.