
Supplies SSDs with enough power to continue buffered read-write operations until completion
Supplies SSDs with enough power to continue buffered read-write operations until completion
At present, ADATA has taken the lead in introducing its 100K P/E cycle technology into a variety of industrial-grade solid-state hard drives and memory cards including 2.5-inch ISSS31C in the SATA 31C series, IM2S31C8 M.2 2280/IM2S31C4 M.2 2242 SSDs, PCIe 32A series IM2P32A8 M.2 2280/IM2P32A4 M.2 2242 SSDs, and the ICFS31C CFast memory card. Through ADATA's upgraded A⁺ SLC technology, the standard 3K (3,000 cycles) P/E cycle of ordinary 3D TLC flash memory can be increased to 100K (100,000 cycles), greatly increasing product lifespan 33-fold. A⁺ SLC can fully satisfy the needs of customers who require long-term and complete data preservation.



Medical devices are rapidly becoming more digital. From medical imaging systems, patient monitoring devices, endoscopy systems, and automated dispensing cabinets to healthcare edge gateways, an increasing number of healthcare applications must continuously record medical images, sensor data, operation logs, alarm events, and system status while supporting diagnostic and treatment workflows.

Learn what an NVMe SSD is, how NVMe differs from SATA SSDs, and why NVMe storage is ideal for automation, industrial systems, and high-frequency data logging.

Learn what ECC DRAM is, how error correction works, and why it matters for data integrity, system stability, networking security, and mission-critical computing.

NVR storage is not only about capacity planning. It also affects data integrity and long-term system reliability. For AI NVR and 24/7 recording environments, storage devices must handle heavy write workloads, RAID rebuilding, and continuous recording. As a result, choosing between HDD vs. SSD and selecting the right surveillance SSD have become critical for modern surveillance deployment.

Temperature is the silent limiter of every SSD, and the SSD temperature range is both a performance spec as well as a reliability spec. Under sustained load, NVMe firmware tracks a composite temperature and will start to throttle lightly or heavily. So, write throughput drops hard and latency spikes. Heat also speeds charge leakage inside NAND, which accelerates retention loss. The effect worsens as cells age from program/erase wear. Thus, you burn endurance faster and raise data-retention trouble when the drive later remains unpowered.

Garbage collection in SSDs is the controller's quiet cleanup job. It compacts still-valid pages into new space and erases blocks that are now mostly junk. That might sound weird until you remember NAND flash can't overwrite a programmed page. It must erase first, and erase happens at the block level, not per page. So, updates become "write elsewhere, then clean later."