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Product Overview |
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The HPE 813874-B21 10GBASE-T SFP+ transceiver delivers 10 Gigabit Ethernet connectivity over copper cables and fits into standard SFP+ slots. It serves as a practical option for enhancing network speed in data centers and enterprise setups that rely on existing copper infrastructure, providing a balance between performance and ease of deployment. |
General Information |
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| Brand | HPE |
| Part Number | 813874-B21 |
Technical Information |
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| Form Factor | SFP+ |
| Media | Cat 5e/6/6a (UTP) |
| Protocols | 10GBASE-T |
| Connector | RJ-45 |
| DOM Support | No |
Physical Characteristics |
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| Weight | 5.00 |
| Condition | Refurbished |
Product Description |
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The HPE 813874-B21 10GBASE-T SFP+ transceiver provides reliable 10 Gigabit Ethernet connectivity over standard twisted-pair copper cabling. It's commonly used to upgrade network switches and servers that require fast data transfer without replacing existing cable infrastructure. Built for data centers and enterprise networks, this module is often found in environments where cost-effective, high-speed connectivity is essential. Network administrators and IT professionals benefit from its straightforward integration and compatibility with a broad range of equipment. Key Features
This transceiver is typically deployed in enterprise switches and server connections where upgrading to 10 Gigabit Ethernet is necessary but fiber optic installation isn't practical. It helps maintain high bandwidth and network responsiveness without extensive rewiring. |
Use Cases |
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The HPE 813874-B21 10GBASE-T SFP+ transceiver is commonly deployed in enterprise and data center environments where upgrading existing copper-based infrastructure to 10 Gigabit Ethernet is required. This transceiver supports IT professionals seeking to enhance network performance without overhauling cabling systems, making it well-suited for racks that rely on twisted-pair copper connectivity. How It's Used:
This transceiver enables network administrators to increase throughput and maintain operational efficiency by leveraging existing copper infrastructure while supporting future scalability. It bridges cost-effectiveness with performance requirements in complex network topologies. |