ACER Aspire E5-575-588E RAM upgrade specifications
ACER Aspire E5-575-588E RAM upgrade specifications include DDR4-SDRAM memory compatible with 2x SO-DIMM slots. Maximum supported capacity reaches 32 GB total memory. Operating frequency specifications indicate 2133 MHz performance. Upgrade options accommodate SO-DIMM form factor modules. Compatible memory configurations support standard DDR4 specifications for this laptop model series.
Memory Upgrade Specifications
| Specification | Value |
|---|---|
| Memory slots | 2x SO-DIMM |
| Form factor | SO-DIMM |
| Memory type | DDR4-SDRAM |
| Frequency | 2133 MHz |
| Maximum RAM | 32 GB |
| Voltage | 1.2V |
| Number of pins | 260-pin |
| Interface | PC4 |
| PC Speed Rating | PC4-2133 (PC4-17064) |
| Bandwidth | 17.1 GB/s |
| Laptop Release date | 01 August 2017 |
Additional Notes
- Dual channel memory architecture requires installing matched pairs of modules to maximize the 64 bit bus width and prevent memory bandwidth bottlenecks.
- The 32 GB capacity threshold allows for high density 16 GB modules which often feature dual rank organization and higher latency compared to lower capacity alternatives.
- Installation of modules with clock speeds exceeding 2133 MHz will result in automatic downclocking to match the hardcoded motherboard bus frequency and JEDEC timings.
- The SO DIMM form factor limits physical heat dissipation options as there is insufficient vertical clearance for modules equipped with tall integrated heat spreaders.
- Mismatching memory timings between its 2 slots will force the system to default to the slower CAS latency of the two modules to maintain stability.
- Accessing the motherboard internal slots usually involves removing the lower chassis cover which may require specialized prying tools to avoid damaging the plastic clips.
- System stability depends on using 1.2V DDR4 modules since the motherboard circuitry is not designed to support the higher voltages associated with overclocker grade memory.
- Integration of 2 separate modules provides a hardware redundancy path allowing the system to remain operational in a degraded single channel state if 1 module fails.