ASUS ROG G713QR-K4091T RAM upgrade specifications

ASUS G713QR-K4091T ASUS G713QR-K4091T ASUS G713QR-K4091T ASUS G713QR-K4091T ASUS G713QR-K4091T

ASUS ROG Strix G17 G713QR-K4091T upgrade specifications include DDR4-SDRAM memory compatible with 2x SO-DIMM slots. The laptop supports maximum RAM capacity of 32 GB total, with DDR4-3200 MHz frequency specifications. Memory upgrades utilize standard SO-DIMM form factor modules. Compatible RAM expansion allows users to increase system memory capacity up to the maximum supported configuration for enhanced multitasking and performance capabilities.

Memory Upgrade Specifications

SpecificationValue
Memory slots2x SO-DIMM
Form factorSO-DIMM
Memory typeDDR4-SDRAM
Frequency3200 MHz
Maximum RAM32 GB
Voltage1.2V
Number of pins260-pin
InterfacePC4
PC Speed RatingPC4-3200 (PC4-25600)
Bandwidth25.6 GB/s
Laptop Release date16 August 2021

Additional Notes

  • The dual-slot configuration indicates that achieving maximum capacity requires replacing both existing modules rather than adding a single one to a vacant bay.
  • The 32 GB threshold suggests a firmware limitation or a motherboard trace design that prevents the use of high-density 32 GB single sticks for a 64 GB total.
  • Operating at 3200 MHz on the ASUS ROG G713QR-K4091T necessitates the use of JEDEC-compliant modules to ensure the system reaches rated speeds without manual BIOS timing adjustments.
  • The SO-DIMM form factor dictates a 260-pin interface which is physically incompatible with desktop-class DIMM hardware or newer DDR5 iterations.
  • Heat dissipation within the compact memory compartment relies on passive airflow, so modules with thick integrated heat spreaders might cause clearance issues or physical strain on the slot clips.
  • Populating both slots enables dual-channel mode which effectively doubles the available memory bandwidth compared to single-channel configurations.
  • Integration of identical modules in both slots is required to maintain synchronous timing and prevent the system from downclocking to the lowest common frequency.