Home > Memory comparison > Corsair Vengeance LPX DDR4-3200 C16 16GB (2x8GB) vs G.Skill Ripjaws S5 DDR5-6000 CL32 32GB (2x16GB)
61points
Corsair Vengeance LPX DDR4-3200 C16 16GB (2x8GB)
60points
G.Skill Ripjaws S5 DDR5-6000 CL32 32GB (2x16GB)
£47
Comparison winner
£47
64GB (2x32GB)
vs
vs
22 facts in comparison
Corsair Vengeance LPX DDR4-3200 C16 16GB (2x8GB)
G.Skill Ripjaws S5 DDR5-6000 CL32 32GB (2x16GB)
Why is Corsair Vengeance LPX DDR4-3200 C16 16GB (2x8GB) better than G.Skill Ripjaws S5 DDR5-6000 CL32 32GB (2x16GB)?
- 0.67 ns faster true latency?
10 nsvs10.67 ns - 16 lower CAS Latency (CL)?
16vs32 - 60 lower tRAS timing?
36vs96 - 20 lower tRCD timing?
18vs38 - 20 lower tRP timing?
18vs38
Why is G.Skill Ripjaws S5 DDR5-6000 CL32 32GB (2x16GB) better than Corsair Vengeance LPX DDR4-3200 C16 16GB (2x8GB)?
- 2800 faster memory speed?
6000vs3200 - 2667 MHz faster memory speed (SPD)?
4800 MHzvs2133 MHz - 1 Higher version of DDR memory supported?
5vs4 - 16GB larger memory size (total)?
2 x 16GBvs2 x 8GB - 0.15V lower voltage?
1.35Vvs1.2V - 8GB larger memory size?
16GBvs8GB
Which are the most popular comparisons?
Price comparison
Corsair Vengeance LPX DDR4-3200 C16 16GB (2x8GB)
Corsair 16Gb 2X8gb Dual Channel Vengeance Lpx Black Amd Ryzen Ddr4 3200/16/1.35V
£47
Corsair Vengeance LPX 16GB Kit (2 x 8GB) DDR4 3200MHz (PC4-25600) CL16 XMP 2.0 R
£51
Corsair Vengeance LPX CMK32GX4M2E3200C16 -16GB - 2 x 8GB - DDR4 - 3200 MHz -
£35
Corsair CMK16GX4M2B3200C16 Vengeance LPX 16 GB (2 x 8 GB) DDR4 3200 MHz C16 XMP
£46
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Performance
true latency
10 ns
10.67 ns
The true latency is a good indicator of memory performance. It is calculated from the CAS latency (CL) and transfer rate.
memory speed (Tested Speed)
3200
6000
The speed of the memory, as given by the manufacturer. Also known as the Tested Speed. Note: it requires a CPU/motherboard that can support the speed, and may also require enabling XMP profiles.
memory speed (SPD)
2133 MHz
4800 MHz
The SPD (serial presence detect) speed of the memory. This is the speed that the memory runs at by default, without changing any BIOS settings or overclocking etc.
DDR memory version
4
5
DDR (Double Data Rate) memory is the most common type of RAM. Newer versions of DDR memory support higher maximum speeds and are more energy-efficient.
CAS Latency (CL)
16
32
The CAS Latency (CL) timing of the memory.
tRAS timing
36
96
The tRAS (Row Active Time) timing of the memory.
tRCD timing
18
38
The tRCD (Row Column Delay) timing of the memory.
tRP timing
18
38
The tRP (Row Precharge Time) timing of the memory.
General info
form factor
288-pin DIMM
288-pin DIMM
You should always make sure to buy the correct memory for your system. Common form factors include 288-pin DIMM for PCs and 260-pin SO-DIMM for laptops.
memory size (total)
2 x 8GB
2 x 16GB
The total size of the memory, taking into account the size of a single module and the number of modules in the kit.
has Samsung B-Die
✖Corsair Vengeance LPX DDR4-3200 C16 16GB (2x8GB)
✖G.Skill Ripjaws S5 DDR5-6000 CL32 32GB (2x16GB)
Samsung B-Die is a specific type of die (chip) used in some memory products. Many people favour this type of memory as it can run at speeds of 3200MHz or higher while also keeping CAS latency low (CL 14). These performance benefits are most notable when paired with an AMD Ryzen CPU.
voltage
1.2V
1.35V
The voltage of the memory.
height
32 mm
33 mm
The height represents the vertical dimension of the product.
memory size
8GB
16GB
The size of a single memory module.
Features
Intel XMP / AMD EXPO
Intel XMP 2.0
Intel XMP 3.0
Intel XMP (Intel Extreme Memory Profile) and AMD EXPO (AMD Extended Profiles for Overclocking) are features that allow you to easily overclock memory, simply by enabling the option in the BIOS.
Supports ECC memory
✖Corsair Vengeance LPX DDR4-3200 C16 16GB (2x8GB)
✖G.Skill Ripjaws S5 DDR5-6000 CL32 32GB (2x16GB)
Error-correcting code memory can detect and correct data corruption. It is used when is it essential to avoid corruption, such as scientific computing or when running a server.
Has an integrated heatsink
✔Corsair Vengeance LPX DDR4-3200 C16 16GB (2x8GB)
✔G.Skill Ripjaws S5 DDR5-6000 CL32 32GB (2x16GB)
Heat can have an impact on performance and reduce potential read/write speeds. An integrated heatsink (or heat spreader) helps to keep the component cool and operating at maximum efficiency.
has RGB lighting
✖Corsair Vengeance LPX DDR4-3200 C16 16GB (2x8GB)
✖G.Skill Ripjaws S5 DDR5-6000 CL32 32GB (2x16GB)
RGB lighting allows you to choose between millions of colors and customize the look of your PC components.
Benchmarks
PassMark result (latency)
Unknown. Help us by suggesting a value. (Corsair Vengeance LPX DDR4-3200 C16 16GB (2x8GB))
Unknown. Help us by suggesting a value. (G.Skill Ripjaws S5 DDR5-6000 CL32 32GB (2x16GB))
The PassMark benchmark tests several factors related to memory's performance. The latency test measures how quickly a byte of memory is transferred to the CPU, with lower values indicating faster performance. Source: PassMark.
PassMark result (read uncached)
Unknown. Help us by suggesting a value. (Corsair Vengeance LPX DDR4-3200 C16 16GB (2x8GB))
Unknown. Help us by suggesting a value. (G.Skill Ripjaws S5 DDR5-6000 CL32 32GB (2x16GB))
The PassMark benchmark tests several factors related to memory's performance. The read uncached test measures how quickly a large block of memory can be read, with higher values indicating faster performance. Source: PassMark.
PassMark result (write)
Unknown. Help us by suggesting a value. (Corsair Vengeance LPX DDR4-3200 C16 16GB (2x8GB))
Unknown. Help us by suggesting a value. (G.Skill Ripjaws S5 DDR5-6000 CL32 32GB (2x16GB))
The PassMark benchmark tests several factors related to memory's performance. The write test measures how quickly a block of memory can be written, with higher values indicating faster performance. Source: PassMark.
UserBenchmark result (average %)
Unknown. Help us by suggesting a value. (Corsair Vengeance LPX DDR4-3200 C16 16GB (2x8GB))
Unknown. Help us by suggesting a value. (G.Skill Ripjaws S5 DDR5-6000 CL32 32GB (2x16GB))
The average benchmark result from UserBenchMark, based on multi-core throughput, single-core throughput, and latency. Source: UserBenchmark.
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