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HP 8EC41AV 256GB Kit (4x64GB) DDR4-2933MHz RDIMM 2Rx4 CL21 Memory
- Total Capacity: 256GB (4x 64GB modules)
- Memory Type: DDR4
- Speed: 2933MHz
- Form Factor: RDIMM (Registered DIMM)
- Rank: 2Rx4 (Dual Rank x4)
- CAS Latency: CL21
- Designed for HP ProLiant servers and other compatible systems
- Provides high memory bandwidth and capacity for demanding workloads
- Supports error correction for enhanced reliability
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Product Overview
This HP memory kit consists of four 64GB RDIMMs, totaling 256GB of DDR4-2933MHz RAM. It is designed for servers and workstations requiring high capacity and performance.
Technical Information
| Total Capacity | 256GB |
| Module Configuration | 4x 64GB |
| Memory Type | DDR4 SDRAM |
| Speed | 2933MHz |
Additional Specifications
| Form Factor | RDIMM |
| Rank | 2Rx4 |
| CAS Latency | CL21 |
Product Description
The HP 8EC41AV is a high-capacity memory upgrade kit designed to significantly boost the performance of compatible servers and workstations. This kit includes four 64GB Registered DIMM (RDIMM) modules, providing a total of 256GB of memory. The DDR4 technology ensures high bandwidth and efficiency, operating at a speed of 2933MHz, which is crucial for memory-intensive applications and multitasking. The RDIMM format includes a register chip that buffers the command and address signals between the memory controller and the memory modules. This reduces electrical load on the memory controller, allowing for more memory modules to be installed and improving overall system stability, especially in high-density configurations. The 2Rx4 designation indicates that each module is dual-rank with x4 data width, offering further performance benefits. With a CAS Latency of CL21, this memory kit balances speed and responsiveness. It is an ideal solution for environments running demanding applications such as large databases, virtualization platforms, scientific simulations, and complex data analytics. The 256GB capacity and DDR4-2933MHz speed make it a powerful upgrade for systems requiring substantial memory resources for optimal operation.



