ASUS ROG G713RS-KH019X RAM upgrade specifications

ASUS G713RS-KH019X ASUS G713RS-KH019X ASUS G713RS-KH019X ASUS G713RS-KH019X ASUS G713RS-KH019X

The ASUS ROG Strix G17 G713RS-KH019X gaming laptop features two SO-DIMM memory slots supporting DDR5-SDRAM modules. Maximum RAM capacity reaches 32 GB total, with compatible memory operating at 4800 MHz frequency. Specifications indicate upgrade capability through the dual slot configuration, allowing users to expand or replace existing DDR5 memory modules within the laptop's architecture. Current DDR5 memory specifications define the upgrade parameters for this model.

Memory Upgrade Specifications

SpecificationValue
Memory slots2x SO-DIMM
Form factorSO-DIMM
Memory typeDDR5-SDRAM
Frequency4800 MHz
Maximum RAM32 GB
Voltage1.1V
Number of pins262-pin
InterfacePC5
PC Speed RatingPC5-4800 (PC5-38400)
Bandwidth38.4 GB/s
Laptop Release date07 April 2022

Additional Notes

  • The ASUS ROG G713RS-KH019X accommodates only 2 SO-DIMM slots, which means a single-module upgrade path is limited; adding a second 16 GB module represents the only way to reach the 32 GB ceiling without replacing existing memory.
  • DDR5-4800 MHz memory operates at a frequency band that may not fully saturate the bandwidth potential of newer Ryzen processors, which support higher JEDEC profiles; this creates a minor performance headroom gap if the system is later paired with memory rated for 5600 MHz or faster.
  • SO-DIMM form factor constrains upgrade options to laptop-specific modules, eliminating any consideration of desktop DDR5 inventory; replacement modules must be explicitly verified for SO-DIMM compatibility and DDR5 specification.
  • The 2-slot configuration offers no redundancy pathway; failure of a single memory module leaves the system with reduced capacity rather than providing fault tolerance options available in 4-slot or 6-slot designs.
  • Warranty coverage typically remains intact for memory upgrades using manufacturer-approved or standard DDR5-SO-DIMM products, though thermal management around dual-slot configurations should be confirmed with thermal margins during intensive workloads.
  • 32 GB maximum capacity imposes constraints on memory-intensive workloads such as large virtual machine arrays, high-resolution video encoding with multiple streams, or data analysis pipelines that benefit from in-memory caching beyond this threshold.