SP6800 | PCIe NVMe | M.2 2230 SSD

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Product Brief

The SMART Modular SP6800 PCIe NVMe M.2 SSD family is designed to  meet the demanding needs of enterprise and industrial OEMs specifically in  server, storage cache/accelerators, networking, and data communications  applications requiring reliable embedded SSD for boot, OS, application  software and data storage. Utilizing an industry-standard PCIe Gen4 x4  interface and NVMe 1.4-compliant protocol, the SP6800 PCIe NVMe M.2 SSDs can  easily be integrated into a host system without any special BIOS modifications  or additional device drivers.

Engineered with self-encrypting drive (SED) technology, the SP6800 SSDs  provide hardware-based AES-256 encryption and TCG Opal 2.01 support to secure  critical data. They address the need for enhanced reliability by  incorporating advanced LDPC ECC and end-to-end data path protection.

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SP6800 | PCIe NVMe | M.2 2230 SSD
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Ordering Information

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Part Number

Capacity

Note

SVMP31024TIS8AH1
1TB
I-Temp (-40˚C to +85˚C)
SVMP3512GTIS8AG1
512GB
I-Temp (-40˚C to +85˚C)
SVMP3256GTIS8AG1
256GB
I-Temp (-40˚C to +85˚C)

Product Details

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Physical

Length
30.0mm
Width
22.0mm
Height
2.15mm

Environmental

Shock
1500G half-sine, 0.5 msec, 1 shock along each axis, X, Y, Z in each direction
Vibration
20G, 10-2000Hz
Operating temperature
I-temp: -40°C to +85°C
Storage Temperature
-40°C to +85°C
Humidity
40°C, Operation: 90% RH, Storage: 93% RH

Reliability

TBW
256GB: 340TBW 512GB: 680TBW 1TB: 1360TBW (JEDEC® Client Workload)
MTBF
> 3,000,000 hours

Performance

Sequential Read (maximum)
Up to 6000MB/s
Sequential Write (maximum)
Up to 5300MB/s
4K Random Read (maximum)
Up to 650K IOPS
4K Random Write (maximum)
Up to 900K IOPS
Capacities
256GB, 512GB, 1TB

Essentials

Product Series
SP6800
NAND Flash Technology
3D TLC
Interface
PCIe Gen4 x4 NVMe 1.4

Technologies

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Advanced Error Detection & Correction
Advanced Error Detection & Correction

SMART’s Advanced Error Detection & Correction technology reinforces the ECC (Error Code Correction) engine and utilizes RAID (Redundant Array of Independent Disks) mechanism. Data is reconstructed by the prior stored parity in other pages. The recovered data will be stored in a new block, and the prior stored block will be refreshed.

AES-256 Encryption
AES-256 Encryption

Advanced Encryption Standard (AES) is a hardware-based encryption method for converting data from an unencrypted into an encrypted format. 256 bits encryption key length makes it virtually impossible to decrypt the data without the original key.

TCG Opal 2.0
TCG Opal 2.0

Trusted Computing Group (TCG) Storage Work Group created the Opal Security Subsystem Class (SSC) as one class of security management protocol for storage devices. It is the most recognized standard for self-encrypting drives (SEDs). SMART offers TCG Opal 2.0 compliant self-encrypting SSDs incorporating AES encryption for rock-solid data protection.

Wear-Leveling
Wear-Leveling

Wear-Leveling refers to the practice of ensuring certain NAND blocks aren’t written and erased more often than others. By preventing the overuse of particular blocks which could lead to device failure or data loss, Wear-Leveling therefore improves the life expectancy and endurance of Flash products.

Garbage Collection
Garbage Collection

Flash-based storage devices are different in the way they deal with previously deleted data compared to traditional disks. Data must be erased first before new data can be written to the same block in SSDs. Garbage Collection copies in-use data to a new block, and then deletes all data from the old one.

TRIM Command
TRIM Command

TRIM is a command with the help of which the operating system can tell the SSD which blocks are no longer needed and can be deleted, or are marked as free for rewriting. With the TRIM command, it not only reduces the Write Amplifier Factor (WAF) but also boost the data access speeds.

Solutions

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From small industrial components deployed in automation systems to large equipment used for oil drilling, project operations are asked to provide precise instructions, occasionally in harsh environments. Therefore, it is critical to maintain the accuracy of data output in addition to maintaining continuous, stable operating performance.

With the rapid rise of IoT and IIoT, the demand for connectivity has transformed networking. Today’s networks are scaling at an exponential rate, processing huge amounts of data that are stored for analysis. Reliable, proven memory is vital to ensure the hyper-fast transmission of all that data, as well as storage of the data exchanged between edge devices and network hubs. Whether the scale of network is between two locations or built for thousands of connected devices in different places around the world, there will be huge amounts of data constantly being processed whenever the network is running. That is why the right memory solutions are so important – to ensure data will be processed quickly and stored securely regardless of the demand placed on the network.

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