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Hynix HMABAGL7A4R4N-WR 128GB DDR4-2933MHz LRDIMM 8Rx4 CL21 Memory
- 128GB DDR4 SDRAM capacity.
- 2933MHz memory speed for high bandwidth.
- Load-Reduced DIMM (LRDIMM) form factor.
- 8Rx4 memory organization (octal rank, 4 bits wide per chip).
- CAS Latency (CL) of 21.
- Designed for high-density server memory configurations.
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Product Overview
Hynix HMABAGL7A4R4N-WR is a 128GB DDR4 Load-Reduced DIMM (LRDIMM) memory module. It operates at 2933MHz with CL21 latency, designed for high-capacity server applications.
Technical Information
| Capacity | 128GB |
| Memory Type | DDR4 SDRAM |
| Speed | 2933MHz |
| Form Factor | LRDIMM |
Additional Specifications
| Rank | 8Rx4 |
| CAS Latency | CL21 |
| Voltage | 1.2V |
Product Description
The Hynix HMABAGL7A4R4N-WR is a high-capacity 128GB DDR4 Load-Reduced DIMM (LRDIMM) memory module, specifically engineered for advanced server platforms that require maximum memory density and performance. Operating at a speed of 2933MHz, this module facilitates high bandwidth communication, essential for data-intensive workloads like large-scale virtualization, in-memory databases, and high-performance computing. The LRDIMM architecture includes a memory buffer chip, which reduces the electrical load on the memory controller, allowing for more memory modules to be installed per channel. This module features an 8Rx4 memory organization, signifying an octal-rank configuration where each rank is composed of DRAM chips with 4 bits of data width. This organization is typical for high-density modules and contributes to its substantial capacity. With a CAS Latency (CL) of 21, it offers a balance suitable for its high capacity and speed, ensuring stable operation in demanding server environments. The standard 1.2V operating voltage is consistent with DDR4 specifications, promoting power efficiency. The HMABAGL7A4R4N-WR is an ideal choice for enterprise-grade servers, cloud infrastructure, and data analytics platforms where maximizing memory capacity is paramount. Its LRDIMM design enables servers to achieve higher total memory configurations, supporting more virtual machines, larger datasets, and complex computational tasks with greater efficiency and reliability.



