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Dell 0T791D 2GB DDR3-1066MHz RDIMM 2Rx8 CL7 Memory
- 2GB memory capacity
- DDR3 SDRAM technology
- 1066MHz memory speed
- Registered DIMM (RDIMM)
- CL7 CAS Latency
- 2Rx8 configuration (Dual Rank, x8 data width)
- Designed for servers and workstations
- Dell branded for compatibility
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Product Overview
The Dell 0T791D is a 2GB DDR3-1066MHz RDIMM memory module. This Registered DIMM (RDIMM) is designed for servers and workstations that require reliable and high-performance memory. It operates at a speed of 1066MHz and features a CL7 latency.
Technical Information
| SKU | 0T791D |
| Brand | Dell |
| Capacity | 2GB |
| Memory Type | DDR3 SDRAM |
Additional Specifications
| Speed | 1066MHz |
| Form Factor | RDIMM (Registered DIMM) |
| Latency | CL7 |
| Configuration | 2Rx8 |
Product Description
The Dell 0T791D is a 2GB memory module engineered to enhance the performance and responsiveness of server and workstation systems. Utilizing DDR3 technology, it operates at a clock speed of 1066MHz, providing a significant boost in data transfer rates compared to older memory standards. This speed is crucial for applications that are memory-intensive, ensuring that the system can handle complex tasks efficiently. As a Registered DIMM (RDIMM), this module includes onboard registers that help reduce electrical load on the memory controller. This feature is particularly beneficial in systems with a large number of memory modules installed, as it improves signal integrity and allows for greater memory capacity and stability. The CL7 CAS Latency indicates the timing of memory operations, contributing to the overall performance characteristics of the module. The 2Rx8 configuration signifies that the module is dual-ranked and uses x8 data width DRAM chips. This configuration can offer performance advantages in certain scenarios by allowing the memory controller to access different ranks of memory concurrently. This Dell-branded memory module is designed for compatibility and reliability within Dell server environments, ensuring seamless integration and optimal performance.



