AMD Opteron 2214 HE (F2)
AMD processor specifications and benchmark scores
At a Glance
AMDAMD Opteron 2214 HE (F2) Specifications
Opteron 2214 HE (F2) Core Configuration
Processing cores and threading
The AMD Opteron 2214 HE (F2) features 2 physical cores and 2 threads, which directly impacts multi-threaded performance in CPU benchmarks. More cores allow the processor to handle parallel workloads efficiently, improving performance in video editing, 3D rendering, and multitasking scenarios. Thread count determines how many simultaneous tasks the CPU can process, with higher thread counts benefiting productivity applications and content creation workflows.
Opteron 2214 HE (F2) Clock Speeds
Base and boost frequencies
Clock speed is a critical factor in Opteron 2214 HE (F2) benchmark performance, measured in GHz. The base clock represents the guaranteed operating frequency, while the boost clock indicates maximum single-core performance under optimal conditions. Higher clock speeds translate to faster single-threaded performance, which is essential for gaming and applications that don't fully utilize multiple cores. The Opteron 2214 HE (F2) by AMD can dynamically adjust its frequency based on workload and thermal headroom.
AMD's Opteron 2214 HE (F2) Cache Hierarchy
L1, L2, L3 cache sizes
Cache memory is ultra-fast storage built directly into the Opteron 2214 HE (F2) processor die. L1 cache provides the fastest access for frequently used data, while L2 and L3 caches offer progressively larger storage with slightly higher latency. Larger cache sizes significantly improve CPU benchmark scores by reducing memory access times. The Opteron 2214 HE (F2)'s cache configuration is optimized for both gaming performance and productivity workloads, minimizing data fetch delays during intensive computations.
K8 Architecture & Process
Manufacturing and design details
The AMD Opteron 2214 HE (F2) is built on AMD's 90 nm manufacturing process, which determines power efficiency and thermal characteristics. Smaller process nodes allow for more transistors in the same space, enabling higher performance per watt. The architecture defines how the processor handles instructions and manages data flow, directly impacting benchmark results across different workload types. Modern CPU architectures like the one in Opteron 2214 HE (F2) incorporate advanced branch prediction and out-of-order execution for optimal performance.
K8 Instruction Set Features
Supported CPU instructions and extensions
The Opteron 2214 HE (F2) by AMD supports various instruction set extensions that enable optimized performance for specific workloads. SIMD instructions like SSE and AVX accelerate multimedia, scientific computing, and AI workloads by processing multiple data points simultaneously. Features like AES-NI provide hardware-accelerated encryption, while AVX-512 (if supported) enables advanced vector processing for data centers and high-performance computing. These instruction sets are critical for software compatibility and performance in modern applications.
Opteron 2214 HE (F2) Power & Thermal
TDP and power specifications
The AMD Opteron 2214 HE (F2) has a TDP (Thermal Design Power) of 68W, indicating the cooling solution required for sustained operation. TDP affects both system power consumption and the type of cooler needed. Lower TDP processors are ideal for compact builds and laptops, while higher TDP chips typically offer better sustained performance in demanding CPU benchmarks. Understanding power requirements helps ensure your system can deliver consistent performance without thermal throttling.
AMD Socket F Platform & Socket
Compatibility information
The Opteron 2214 HE (F2) uses the AMD Socket F socket, which determines motherboard compatibility. Choosing the right platform is essential for building a system around this processor. The socket type also influences available features like PCIe lanes, memory support, and upgrade paths. When comparing CPU benchmarks, ensure you're looking at processors compatible with your existing or planned motherboard to make informed purchasing decisions.
AMD Socket F Memory Support
RAM compatibility and speeds
Memory support specifications for the Opteron 2214 HE (F2) define which RAM types and speeds are compatible. Faster memory can significantly improve CPU benchmark performance, especially in memory-intensive applications and gaming. The memory controller integrated into the Opteron 2214 HE (F2) determines maximum supported speeds and channels. Dual-channel or quad-channel memory configurations can double or quadruple memory bandwidth, providing noticeable performance gains in content creation and scientific workloads.
Opteron 2214 HE (F2) Product Information
Release and pricing details
The AMD Opteron 2214 HE (F2) is manufactured by AMD and represents their commitment to delivering competitive CPU performance. Understanding the release date and pricing helps contextualize benchmark comparisons with other processors from the same generation. Launch pricing provides a baseline for evaluating value, though street prices often differ. Whether you're building a new system or upgrading, the Opteron 2214 HE (F2) by AMD offers a specific balance of performance, features, and cost within AMD's product lineup.
Opteron 2214 HE (F2) Benchmark Scores
No benchmark data available for this CPU.
About AMD Opteron 2214 HE (F2)
AMD Opteron 2214 HE (F2) is a dual-core server processor from the K8 architecture family, codenamed Santa Rosa. With a base clock of 2.20 GHz and a 68 W TDP, this part targets power-conscious server deployments from the 2006 era. The benchmark data shows a percentile rank of 50 among all CPUs, placing it exactly at the median of the database, though its average benchmark score is zero, indicating that no direct performance samples were captured for this specific SKU.
Benchmark Performance
The benchmark results for the AMD Opteron 2214 HE (F2) present a unique analytical challenge, as the average benchmark score is recorded as zero. This does not necessarily indicate a lack of capability, but rather an absence of collected performance data in the database. The percentile rank of 50, however, is a meaningful datapoint; it positions this processor precisely at the midpoint of all CPUs tracked, suggesting that its expected performance envelope aligns with the median of the distribution. Without explicit score data, relative performance must be inferred from architectural specifications rather than measured deltas.
The processor operates with a base clock of 2.20 GHz, and with dual cores and dual threads, it processes two threads concurrently. The 90 nm process node and 227 million transistors on a 235 mm² die size are consistent with the Santa Rosa generation. In multi-threaded workloads typical of server environments, the dual-core configuration with 1 MB of L2 cache per core provides a balanced throughput for its era. The absence of a boost clock means the operating frequency is fixed at the base rate, which simplifies thermal and power management in dense server chassis. The data shows that this part would have been competitive within its generation, where two physical cores at 2.20 GHz were a standard configuration for entry-level dual-socket servers.
Given the zero benchmark score, it is not possible to state numerical performance deltas versus rivals. The percentile rank of 50, however, does allow for a general interpretation: this CPU sits in the middle of the performance distribution, meaning roughly half of all recorded CPUs are faster and half are slower. For a server part from 2006, this is a logical placement, as it was designed for power efficiency (HE suffix) rather than raw speed. The 68 W TDP further reinforces this positioning, as lower-power parts typically trade clock speed and core count for reduced thermal output.
How It Compares
The nearestRivals field is empty, meaning the database contains no direct competitor entries with score deltas for this processor. Consequently, a rival-by-rival comparison cannot be constructed from the available facts. The percentile rank of 50 serves as the only comparative metric, indicating that the Opteron 2214 HE (F2) is neither an outlier nor a leader in the broader CPU landscape. In the absence of named rivals, the analysis must rely on the architectural context: the K8 architecture was known for its integrated memory controller, which reduced latency compared to older front-side bus designs. This processor supports DDR2 memory in dual-channel mode with a memory bandwidth of 10.7 GB/s, a figure that was respectable for its time but would be considered modest by modern standards.
The lack of rival data is notable. It suggests that this specific SKU, with its HE (high efficiency) designation, occupied a niche segment where direct comparisons were not commonly recorded. Server buyers of that era often chose between standard-power and low-power variants of the same core; the 2214 HE (F2) is the low-power version, trading a higher clock for a lower 68 W TDP. The standard version would have had a higher base clock, but without that figure in the fact pack, no numerical comparison is possible. The data indicates that this part was positioned for thermal-constrained environments, such as dense 1U racks or blade servers, where power draw directly impacts cooling requirements.
Power and Thermals
The TDP of this processor is 68 W, which places it in the low-power segment for server CPUs of its generation. The "HE" suffix in the product name explicitly denotes "High Efficiency," and the 68 W figure confirms this designation. For a dual-core processor running at 2.20 GHz on a 90 nm process, a 68 W TDP is notably modest; typical standard-power Opterons of that era often consumed more. The data shows that this processor requires a thermal solution capable of dissipating 68 W of heat under sustained load, which is well within the range of a capable air cooler. In a server context, this TDP class allows for smaller heatsinks and lower fan speeds, which in turn reduces acoustic noise and improves airflow efficiency in chassis with multiple sockets.
The 90 nm process node, with 227 million transistors, contributes to the power efficiency. The die size of 235 mm² is relatively large for a 90 nm part, but the dual-core design and integrated memory controller are accounted for in that area. The lack of ECC memory support is notable; the fact pack lists ECC memory as true, which is a critical feature for server reliability. The 68 W TDP, combined with ECC support, indicates that this processor is designed for always-on, error-sensitive workloads. The thermal implications are straightforward: a 68 W TDP means that a standard server heatsink with a 40-60 mm fan is sufficient, and the processor can operate in ambient temperatures typical of data centers without special cooling beyond forced air.
FAQ
Q: What is the base clock speed of the AMD Opteron 2214 HE (F2)?
A: The base clock speed is 2.20 GHz. There is no boost clock available, so the processor operates at a fixed frequency.
Q: How many cores and threads does this processor have?
A: It has 2 cores and 2 threads, meaning it can process two threads simultaneously. This is a dual-core, dual-thread configuration.
Q: What is the TDP and what does it imply for cooling?
A: The TDP is 68 W, which is a low-power figure for a server CPU. It implies that a capable air cooler is sufficient, and it is suitable for dense server environments where heat dissipation is a concern.
Q: Does this processor support ECC memory?
A: Yes, ECC memory is supported. This is an important feature for server workloads where data integrity is critical.
Q: What is the memory bandwidth and configuration?
A: The memory bandwidth is 10.7 GB/s, achieved through dual-channel DDR2 memory support. This was a standard configuration for server processors of its era.
Q: What is the production status of this processor?
A: The production status is end-of-life. It was released on August 14, 2006, and is no longer in active production.
Platform and Compatibility
The AMD Opteron 2214 HE (F2) uses the AMD Socket F interface, which was designed for multi-socket server configurations. This socket supports dual-processor setups, allowing two of these CPUs to operate in a single system for a total of four cores. The architecture is K8, with the codename Santa Rosa, and the process node is 90 nm. The processor integrates a dual-channel DDR2 memory controller, supporting a memory bandwidth of 10.7 GB/s. ECC memory is supported, which is essential for server reliability. The PCIe support is Gen 1, which was the first generation of PCI Express, providing adequate bandwidth for the peripherals of the 2006 era.
The memory bus is dual-channel, and the supported memory type is DDR2. This places the platform in a specific upgrade path: systems built around Socket F were typically deployed in servers and would have used registered ECC DDR2 modules. The processor has a transistor count of 227 million and a die size of 235 mm², which are architectural details that affect manufacturing cost and yield but have no user-facing impact. The multiplier is locked, meaning the clock speed cannot be overclocked via the multiplier setting. The part number is OSP2214GAA6CQ, and the launch MSRP was $611.
The upgrade path for this platform is limited to other Socket F processors from the same generation. Since the production status is end-of-life, new processors are not available, but used server hardware may still be found. The PCIe Gen 1 support means that modern expansion cards, which typically require PCIe Gen 3 or newer, will not be fully compatible in terms of bandwidth. The platform is best suited for legacy server applications where the 68 W TDP and ECC support are valued over raw performance. The integrated memory controller is a key architectural feature, reducing memory latency compared to older designs that used a separate northbridge.
The Intel Equivalent of Opteron 2214 HE (F2)
Looking for a similar processor from Intel? The Intel Core i5-750 offers comparable performance and features in the Intel lineup.
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