H5CG34MEBDX030 - DDR5 SDRAM DRAM Chip | SK hynix
MPN: H5CG34MEBDX030 ✓ Active| Qty | Unit Price | Extended |
|---|---|---|
| 1 | $8.5 | $8.50 |
| 10 | $7.8 | $78.00 |
| 100 | $6.95 | $695.00 |
| 500 | $6.3 | $3,150.00 |
| 1,000 | $5.75 | $5,750.00 |
Drop-in alternatives for H5CG34MEBDX030 — same package, pin-to-pin compatible. Different-package parts requiring PCB rework are excluded.
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View Datasheet →H5CG34MEBDX030 Maximum Ratings & Electrical Characteristics
| Manufacturer | SK hynix |
| Product Family | H5CG (DDR5 SDRAM) |
| Memory Type | DDR5 SDRAM |
| Package | FBGA (fine-pitch BGA), surface mount |
| Mounting Type | Surface Mount |
| On-die ECC | Yes (DDR5 standard feature) |
| Burst Length | 16 (DDR5 standard) |
| Interface Type | Parallel, DDR5 point-to-point |
| RoHS Status | Compliant |
H5CG34MEBDX030 fbga (fine-pitch bga), surface mount Pin Configuration Guide
Complete pinout information for H5CG34MEBDX030 (fbga (fine-pitch bga), surface mount package). This digital IC includes GPIO, communication interfaces (UART, SPI, I2C), and power pins. Refer to the manufacturer datasheet for alternate pin functions and configuration options. Essential for embedded system design and PCB layout.
No detailed pinout data available for H5CG34MEBDX030.
Refer to the datasheet for full pin configuration.
Safe Operating Area (SOA) & Thermal Characteristics
No official SOA curve available for this digital IC. Always operate within absolute maximum ratings specified in the datasheet. Ensure adequate cooling and derate as needed.
Typical Applications
H5CG34MEBDX030 is suitable for 6 applications: Data-Center Server Main Memory, AI and Machine Learning Accelerators, Desktop and Workstation PCs, Networking and Telecom Equipment, Industrial Embedded Computing, Test and Measurement Instrumentation.
Data-Center Server Main Memory
The H5CG34MEBDX030 serves as core DDR5 SDRAM in server RDIMM, LRDIMM, and memory-down designs. SK hynix DDR5 components are used across hyperscale and enterprise platforms where the dual 32-bit sub-channel architecture and burst length 16 raise effective bandwidth per rank, while on-die ECC reduces silent data corruption risk. Placed on registered modules behind an RCD (registering clock driver), the device operates at DDR5-class voltage rails managed by the on-module PMIC. For server designs, verify speed bin and timing compatibility with the CPU memory controller's trained values, and follow SK hynix module reference designs for SPD hub and PMIC integration. Second-sourcing across SK hynix/Micron/Samsung JEDEC-compliant DDR5 parts is standard practice for supply resilience.
Recommended
AI and Machine Learning Accelerators
AI training and inference boards require high-bandwidth main memory alongside HBM; DDR5 components like H5CG34MEBDX030 supply the host-side memory pool feeding accelerators. The DDR5 family's higher bank group count and REFsb (same-bank refresh) sustain effective throughput under the random access patterns typical of embedding lookups and KV-cache paging. In accelerator cards, DDR5 is often laid out memory-down close to the SoC, with length-matched fly-by routing and per-device ODT tuning. The on-die ECC feature is valued in long-running training jobs where an uncorrected DRAM bit flip can invalidate a multi-day compute run. Designers should budget power for VDDQ rail transients during simultaneous burst writes across multiple devices.
Recommended
Desktop and Workstation PCs
Consumer and workstation platforms with Intel or AMD DDR5 memory controllers use H5CG-family SDRAM both on UDIMM modules and in memory-down motherboards. The H5CG34MEBDX030 provides the JEDEC DDR5 feature set including on-die ECC and burst length 16 that raise effective bandwidth for gaming and content-creation workloads. On client platforms, memory training at each boot programs ODT, drive strength, and timing registers, so substitute parts must match speed bin and density to avoid retraining failures. Thermal design on close-spaced DIMMs should keep device case temperature within the datasheet operating range under sustained memory bandwidth loads. XMP/EXPO profiles above JEDEC timings should be validated per platform QVL.
Recommended
Networking and Telecom Equipment
Routers, switches, and 5G baseband units buffer packets and flow tables in DDR5 memory; H5CG34MEBDX030 fits these designs with its point-to-point DDR5 interface and sustained random-access efficiency from expanded bank groups. Networking workloads stress random read/write alternation, where DDR5's shorter bursts and dual sub-channels outperform DDR4 at equivalent bus widths. Telecom platforms often demand industrial temperature ranges and long lifecycle supply, so verify the temperature grade in the SK hynix ordering code and qualify the device at corner temperatures during bring-up. Power-sensitive line-card designs benefit from DDR5's lower core voltage relative to DDR4, reducing memory-subsystem wattage at equivalent bandwidth.
Recommended
Industrial Embedded Computing
Industrial PCs, edge AI gateways, and machine-vision controllers use DDR5 SDRAM such as H5CG34MEBDX030 for high-bandwidth frame buffers and inference workloads. Embedded designs frequently mount DRAM memory-down directly on the CPU board, so PCB stack-up, fly-by routing topology, and reference plane integrity follow Intel/AMD DDR5 layout guides alongside SK hynix package outline data. The on-die ECC feature adds robustness for always-on edge systems in electrically noisy factory environments. Designers should confirm the industrial operating temperature option in the part ordering code, since commodity DRAM defaults to a commercial range, and specify conformal-coating-compatible cleaning processes given the fine-pitch FBGA ball pitch.
Recommended
Test and Measurement Instrumentation
High-channel-count oscilloscopes, logic analyzers, and signal generators capture enormous waveform datasets that stream into DDR5 memory; the H5CG34MEBDX030 provides the sustained write bandwidth and capacity these instruments require. DDR5's dual sub-channel architecture lets instrument SoCs run independent capture and analysis streams concurrently, improving real-time trigger-to-display latency. In instrument designs, DDR5 is typically memory-down with aggressive signal-integrity engineering: on-die termination tuning, per-byte lane deskew, and rigorous IBIS/S-parameter channel simulation before tape-out. On-die ECC protects long captures from silent corruption, which matters for compliance-grade measurements where data integrity is auditable. Verify JEDEC speed-bin timing closure with the instrument SoC's memory controller during design validation.
Recommended
Recommended Products Summary
Engineering reference data for H5CG34MEBDX030 — comparison, design guidance, and compliance information.
Selection Guide
Comparison with Alternatives
| Parameter | This Product | H5CG44MEBDX014 | H5CG44MEBDX014N | H5CG46MEBDX015N | H5CG48MEBDX014N |
|---|---|---|---|---|---|
| Package | FBGA | FBGA - same | FBGA - same | FBGA - same | FBGA - same |
| Brand | SK hynix | SK hynix | SK hynix | SK hynix | SK hynix |
| Memory Type | DDR5 SDRAM | DDR5 SDRAM | DDR5 SDRAM | DDR5 SDRAM | DDR5 SDRAM |
| Family | H5CG DDR5 | H5CG DDR5 | H5CG DDR5 | H5CG DDR5 | H5CG DDR5 |
| On-die ECC | Yes | Yes | Yes | Yes | Yes |
| Speed Grade | [DATA_NEEDED] | [DATA_NEEDED] | [DATA_NEEDED] | [DATA_NEEDED] | [DATA_NEEDED] |
| Density | [DATA_NEEDED] | [DATA_NEEDED] | [DATA_NEEDED] | [DATA_NEEDED] | [DATA_NEEDED] |
| Unit Price (qty 1, as of 2026-09-05) | 8.50 USD | [DATA_NEEDED] | [DATA_NEEDED] | [DATA_NEEDED] | [DATA_NEEDED] |
Key Differentiators
- SK hynix in-house DRAM process with mature DDR5 yield (vs H5CG44MEBDX014N)
- Native DDR5 feature set (on-die ECC, BL16, dual 32-bit sub-channels) (vs H5ANAG8NBJR-RDC)
- Second-source coverage within one vendor family (vs H5CG46MEBDX015N)
Design Notes
DDR5 fly-by routing requires strict length matching within each byte lane group and controlled impedance (typically 40 ohms single-ended for CA/DQ). Keep the FBGA breakout region short - route stubs under 50 mils where possible - and reference DQ signals to a continuous VDDQ plane. Simulate the full channel with SK hynix IBIS models and the memory controller's SSTL/Pseudo-Open-Drain driver models before tape-out; DDR5 training can only compensate for modest channel degradation, not a fundamentally mismatched topology.
DDR5 separates VDD, VDDQ, and VPP rails, and module designs add an on-module PMIC (5 V input to 1.1 V-class rails). For memory-down boards, decouple each FBGA with the SK hynix reference capacitor network: multiple 0.1 uF ceramics close to each ball cluster plus bulk 10 uF per rail region. Estimated: peak VDDQ transient currents during simultaneous burst writes can reach several amps across a rank, so plane inductance, not just capacitance, sets rail droop - use multiple low-inductance vias per decoupling cap. Confirm exact rail voltages from the official datasheet before power-tree freeze.
Do not substitute DDR5 components based on package alone - DDR5 memory controllers store per-device training results, and a part with a different speed bin or density will fail training or fall back to degraded JEDEC defaults. Always decode the full ordering code with the SK hynix part number decoder (available on the SK hynix Downloads portal), cross-check your platform's QVL, and validate the substitute through at least one full power-cycle memory retraining during bring-up. Note also that on-die ECC does not replace host-side link/system ECC for bus errors.
Compliance Information
RoHS compliance inferred from current SK hynix commercial DRAM production standards; REACH, halogen-free, and conflict-minerals statements not found in the provided verified data - obtain from SK hynix product environmental reports.