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Micron MT36KSF1G72PZ-1G4K1 8GB DDR3-1333MHz RDIMM 2Rx4 CL9 Memory
- 8GB DDR3 SDRAM
- 1333MHz Memory Speed
- RDIMM (Registered DIMM) form factor
- 2Rx4 Dual Rank x4 configuration
- CL9 CAS Latency
- ECC Registered for error correction
- 240-Pin DIMM
- Designed for servers and workstations
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Typically 1-2 handling + 3-7 transit days
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For government, enterprise, data center, and small business customers.
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Product Overview
This Micron 8GB DDR3 RDIMM is a high-performance memory module designed for servers and workstations. It operates at 1333MHz with a CL9 latency, offering reliable data integrity and speed.
Technical Information
| Capacity | 8GB |
| Memory Type | DDR3 SDRAM |
| Speed | 1333MHz |
| Form Factor | RDIMM |
Additional Specifications
| Rank | 2Rx4 |
| Latency | CL9 |
| Pins | 240-Pin |
| ECC | Registered |
Product Description
The Micron MT36KSF1G72PZ-1G4K1 is an 8GB DDR3 Registered DIMM (RDIMM) module, engineered to provide robust performance and data integrity for server and workstation environments. Operating at a speed of 1333MHz, this module ensures efficient data transfer rates suitable for a variety of enterprise applications. The RDIMM design incorporates a register chip that buffers command and address signals, reducing the electrical load on the memory controller and enabling higher system memory configurations and improved stability. This memory module features a 2Rx4 dual-rank configuration, which can enhance performance by allowing the memory controller to access different ranks of memory simultaneously. With a CAS Latency (CL) of 9, it offers a balance between speed and responsiveness. Furthermore, it is an ECC Registered module, meaning it includes Error-Correcting Code capabilities to detect and correct single-bit errors, crucial for maintaining the reliability and accuracy of data in mission-critical systems. Designed with a standard 240-pin interface, this Micron RDIMM is intended for installation in DDR3-compatible server and workstation motherboards. It represents a reliable choice for upgrading memory capacity or replacing existing modules, ensuring that systems can handle demanding workloads with enhanced stability and performance.



