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January 22, 2026Electronics0 citationsOpen Access

Design and Implementation of a High-Speed Storage System Based on SATA Interface

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JLJunwei LuJBJie BaiSSSanmin Shen

Key Points

  • This research aims to develop a high-capacity storage system for real-time acquisition of PCM data streams using SATA technology.
  • Designed a storage system leveraging SATA3.0 for high-speed data transfer.
  • Utilized Kintex 7 FPGA as the control core for processing data streams.
  • Employed LVDS for reliable PCM data reception and storage into mSATA disks.
  • Constructed a FAT32 file system to simplify data management and export.
  • Conducted flight tests at temperatures ranging from −40 °C to 80 °C.
  • The storage system successfully handles stable high-rate storage of PCM data streams.
  • Test results demonstrate efficient operation under extreme temperatures.
  • Implemented design allows for real-time data capture and retrieval.

Abstract

In flight tests, to meet the requirements of consistent acquisition and storage of multiple targets, multiple systems, and multiple data types, various data types are processed into Pulse Code Modulation (PCM) data streams using PCM encoding for storage. Aiming at the requirement of real-time storage of high-bit-rate PCM data streams, a large-capacity storage system based on Serial Advanced Technology Attachment 3.0 (SATA3.0) is designed. The system uses the Kintex 7 series Field-Programmable Gate Array (FPGA) as the control core, receives PCM data streams through the Low-Voltage Differential Signaling (LVDS) low-voltage differential interface, stores the received PCM data streams into the mSATA disk via the SATA3.0 transmission bus, and transmits the stored data back to the host computer through the USB3.0 interface for analysis. Meanwhile, to solve the problem of complex data export, the storage system constructs a FAT32 file system through the MicroBlaze soft core to optimize the management and operation of the large-capacity storage system. Test results show that the storage system can perform stable high-rate storage at −40 °C~80 °C.

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Cite This Study

Lu et al. (2026) studied this question.

synapsesocial.com/papers/6971bdad642b1836717e25ffhttps://doi.org/10.3390/electronics15020452
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