A PCIe Gen4 platform for enterprise SSD validation, qualification, burn-in, firmware testing, and continuous reliability testing — built on the Datafabrix PCIe Gen4 Fabric Backplane.
The Datafabrix SSD Testing & Validation Platform is a scalable, high-speed PCIe Gen4 infrastructure purpose-built for SSD manufacturers, hyperscalers, and enterprise labs that need to characterise, qualify, and burn-in NVMe SSDs at production scale.
At its core sits the Datafabrix PCIe Gen4 Fabric Backplane (DF-B4) — the same production-hardened fabric that ships inside our racks. Around it, we add hot-plug NVMe carriers, SATA support, per-device power sequencing, thermal monitoring, and an automation-friendly host interface.
One chassis. Dozens of SSDs under test simultaneously. Full firmware-level control. Complete telemetry pipeline into the Datafabrix DCIM stack for long-running reliability studies.

The block diagram shows how the SSD Testing & Validation Platform routes traffic from a control host into a pool of devices under test. A host workstation sits at the top, driving the Datafabrix PCIe Gen4 Fabric Backplane through a Gen4 host bus adapter. The backplane fans out into hot-plug NVMe carriers — each carrier exposing one device under test as a native PCIe endpoint. Per-slot power sequencing and thermal sensing let the platform exercise real-world plug/unplug, thermal cycling, and firmware-recovery scenarios. Results stream back through the DCIM telemetry pipeline for logging, analysis, and pass/fail reporting.
The connection diagram maps a typical lab or manufacturing-floor deployment. One or more automation host workstations sit in a rack alongside the DF-S14 chassis. Each host runs an MCIO cable to the chassis PCIe Gen4 HBA. The chassis houses the DF-B4 backplane, up to 24 NVMe hot-plug slots (plus optional SATA slots), and per-slot power sequencing and thermal monitoring. A dedicated 10 GbE management port exports test telemetry, drive health, and pass/fail reports back to the Datafabrix DCIM stack. Redundant PSUs draw from A+B PDU feeds. Use this diagram to size cable lengths (≤ 3 m passive, 3–7 m active), plan host-to-chassis ratio, and verify PSU headroom against your target drive population.
PCIe Gen4 ×16 via MCIO to the automation host — passive to 3 m, active to 7 m. Multi-host configurations supported.
24× hot-plug NVMe (U.2 / E1.S carriers). Optional SATA carriers for hybrid firmware-test benches.
Sequenced power rails with over-current protection — scripted power cycling, brown-out simulation, and firmware-recovery tests.
Per-slot temperature monitoring plus chassis-wide airflow telemetry — thermal excursions logged into the DCIM feed.
10 GbE OOB management port. BMC/IPMI redfish endpoint. Direct integration with the Datafabrix DCIM stack.
A+B redundant PSU feeds, C13/C14 rack PDU inputs. Fits standard datacenter thermal envelope — no liquid cooling required.
The DF-B4 backplane exposes every device under test as a native PCIe Gen4 endpoint on the automation host — no protocol translation, no NVMe-oF hop, no software emulation. Every timing, error, and thermal event is observed with production-grade fidelity.
Per-slot power sequencing and hot-plug electricals let the platform mix qualification runs, burn-in cycles, and firmware-recovery tests across different devices in the same chassis — without interlocks, without cross-contamination.
The control-host runs your existing NVMe test scripts (nvme-cli, fio, FSCT, JEDEC test suites) unchanged. A thin Datafabrix Python SDK exposes power sequencing, thermal alerts, and slot topology for orchestration.
Every drive-health metric, wear counter, and pass/fail event streams into Datafabrix StorageOS — endurance forecasts and cross-lot analytics without a separate data pipeline.
Full JEDEC / enterprise-grade qualification suites — endurance, retention, error rate, thermal.
Automated firmware regression across dozens of drives per chassis — every commit, every drive family.
Multi-week burn-in cycles with per-slot thermal cycling, power cycling, and hot-plug stress.
Production-floor incoming inspection and outgoing quality — high throughput, pass/fail deterministic.
Long-tail reliability studies on production drives — real workload IO, real datacenter thermal.
Hyperscaler and OEM incoming-lot validation — every SSD family, every supplier, one chassis.
| Form factor | 4U rack chassis · standard 19" rails |
| Backplane | Datafabrix DF-B4 · PCIe Gen4 fabric · Tier-1 US switch silicon |
| Host interface | PCIe Gen4 ×16 · MCIO passive/active cabling |
| Device slots | 24× hot-plug NVMe (U.2 / E1.S carriers) · optional SATA |
| Per-slot control | Power sequencing · thermal sensing · firmware-recovery reset |
| Management | 10 GbE OOB · BMC / Redfish · DCIM integration |
| Power | A+B redundant PSU · C13/C14 rack PDU |
| Cooling | Air-cooled · standard datacenter thermal envelope |
| Automation SDK | Python bindings · nvme-cli / fio compatible · JEDEC test-suite hooks |
| Availability | Shipping today · pilot units on request |
Where it fits in the rack, how it connects, and what you get after installation.
Slide the 4U DF-S14 chassis into a standard 19" rack. Rail kit included. Cable to A+B PDUs and the management network.
Install the PCIe Gen4 HBA in your automation host. Cable to the chassis via MCIO. Optional: connect a second host for HA test benches.
Insert devices under test into hot-plug carriers. Each drive enumerates as a native PCIe endpoint on the host — no reboot required.
Point your existing test scripts at the enumerated drives. Every event streams into StorageOS for reporting and analysis.
Tell us your device family, your test volume, and your validation cadence. We respond within one business day with a chassis configuration, cable plan, and quote.