
GeForce RTX 3050 6GB

Quadro RTX 4000 with Max-Q Design
GeForce RTX 3050 6GB vs Quadro RTX 4000 with Max-Q Design Performance Spectrum
About G3D Mark
G3D Mark is a standard benchmark that measures graphics performance in real-world gaming scenarios. It simplifies comparing cards from different brands, where higher scores directly correlate with better fps and smoother gaming experiences.
GeForce RTX 3050 6GB vs Quadro RTX 4000 with Max-Q Design FPS Benchmarks
Predicted gaming performance across popular games. Tested paired with Ryzen 7 9800X3D to isolate GPU performance.
Search any supported game below to compare 1080p FPS for both components.

Path of Exile 2

Counter-Strike 2

League of Legends

Valorant

Among Us

Apex Legends

ARC Raiders

Baldur's Gate 3

Call of Duty: Black Ops 6
GeForce RTX 3050 6GB vs Quadro RTX 4000 with Max-Q Design: Pros, Cons & Final Verdict
See where each GPU makes more sense in practice: raw FPS, VRAM, features, power draw, pricing, and long-term headroom.
GeForce RTX 3050 6GB
2024Why buy it
- ✅Delivers 100+% more G3D Mark for each dollar spent, at 63.6 vs 0 G3D/$ ($169 MSRP vs Unknown MSRP).
- ✅Better long-term bet: Ampere (2020−2025) on 8nm gives it a newer hardware base for upcoming games.
- ✅More future proof: Ampere (2020−2025) on 8nm with a newer platform for upcoming games.
Trade-offs
- ❌Lower average FPS than Quadro RTX 4000 with Max-Q Design across 50 tracked games in our benchmark data.
- ❌Less VRAM, with 6 GB vs 8 GB for high-resolution textures and newer games.
- ❌No equivalent frame-generation stack like DLSS 3.5 + Frame Generation (2023).
Quadro RTX 4000 with Max-Q Design
2019Why buy it
- ✅35.5% more average FPS across 50 tracked games in our benchmark data.
- ✅Access to a newer frame-generation stack with DLSS 3.5 + Frame Generation (2023).
- ✅33.3% more VRAM for high-resolution textures and newer games (8 GB vs 6 GB).
Trade-offs
- ❌GeForce RTX 3050 6GB is the safer long-term pick here because the hardware is newer and the feature stack is stronger.
- ❌Lower G3D Mark per dollar, at 0 vs 63.6 G3D/$ (Unknown MSRP vs $169 MSRP).
Quick Answers
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GeForce RTX 3050 6GB vs Quadro RTX 4000 with Max-Q Design Technical Specifications
Side-by-side specs, architecture details, clocks, memory, power, and platform differences.

GeForce RTX 3050 6GB
The GeForce RTX 3050 6GB is manufactured by NVIDIA. It was released in February 2 2024. It features the Ampere architecture. The core clock ranges from 1042 MHz to 1470 MHz. It has 2304 shading units. The thermal design power (TDP) is 70W. Manufactured using 8 nm process technology. It features 18 dedicated ray tracing cores for enhanced lighting effects. G3D Mark benchmark score: 10,749 points. Launch price was $179.

Quadro RTX 4000 with Max-Q Design
The Quadro RTX 4000 with Max-Q Design is manufactured by NVIDIA. It was released in May 27 2019. It features the Turing architecture. The core clock ranges from 780 MHz to 1380 MHz. It has 2560 shading units. The thermal design power (TDP) is 80W. Manufactured using 12 nm process technology. It features 40 dedicated ray tracing cores for enhanced lighting effects. G3D Mark benchmark score: 12,173 points.
Graphics Performance
In G3D Mark, the GeForce RTX 3050 6GB scores 10,749 versus the Quadro RTX 4000 with Max-Q Design's 12,173 — the Quadro RTX 4000 with Max-Q Design leads by 13.2%. The GeForce RTX 3050 6GB is built on Ampere while the Quadro RTX 4000 with Max-Q Design uses Turing, both on 8 nm vs 12 nm. Shader units: 2,304 (GeForce RTX 3050 6GB) vs 2,560 (Quadro RTX 4000 with Max-Q Design). Raw compute: 6.774 TFLOPS (GeForce RTX 3050 6GB) vs 7.066 TFLOPS (Quadro RTX 4000 with Max-Q Design). Boost clocks: 1470 MHz vs 1380 MHz. Ray tracing: 18 RT cores (GeForce RTX 3050 6GB) vs 40 (Quadro RTX 4000 with Max-Q Design) with 72 Tensor cores vs 320.
| Feature | GeForce RTX 3050 6GB | Quadro RTX 4000 with Max-Q Design |
|---|---|---|
| G3D Mark Score | 10,749 | 12,173+13% |
| Architecture | Ampere | Turing |
| Process Node | 8 nm | 12 nm |
| Shading Units | 2304 | 2560+11% |
| Compute (TFLOPS) | 6.774 TFLOPS | 7.066 TFLOPS+4% |
| Boost Clock | 1470 MHz+7% | 1380 MHz |
| ROPs | 32 | 64+100% |
| TMUs | 72 | 160+122% |
| L1 Cache | 2.3 MB | 2.5 MB+9% |
| L2 Cache | 2 MB | 4 MB+100% |
| Ray Tracing Cores | 18 | 40+122% |
| Tensor Cores | 72 | 320+344% |
Advanced Features (DLSS/FSR)
The clearest feature edge for the Quadro RTX 4000 with Max-Q Design is support for DLSS 3.5 + Frame Generation. In games that support it, that can smooth out motion and lift perceived FPS. The GeForce RTX 3050 6GB does not have comparable native support in the same tier.The Quadro RTX 4000 with Max-Q Design supports the newer DLSS 3.5 Super Resolution, whereas the GeForce RTX 3050 6GB is capped at DLSS 2 Super Resolution.
| Feature | GeForce RTX 3050 6GB | Quadro RTX 4000 with Max-Q Design |
|---|---|---|
| Upscaling Tech | DLSS 2 Super Resolution | DLSS 3.5 Super Resolution |
| Frame Generation | Not Supported | DLSS 3.5 + Frame Generation |
| Ray Reconstruction | No | Yes (DLSS 3.5) |
| Low Latency | NVIDIA Reflex | NVIDIA Reflex |
Video Memory (VRAM)
The GeForce RTX 3050 6GB has 6 GB of VRAM, while the Quadro RTX 4000 with Max-Q Design carries 8 GB. Quadro RTX 4000 with Max-Q Design gives you 33.3% more memory capacity, which matters more once you move into heavier textures, mods, or higher resolutions. Memory bus width is 96-bit on the GeForce RTX 3050 6GB and 256-bit on the Quadro RTX 4000 with Max-Q Design. L2 Cache: 2 MB (GeForce RTX 3050 6GB) vs 4 MB (Quadro RTX 4000 with Max-Q Design) — the Quadro RTX 4000 with Max-Q Design has significantly larger on-die cache to reduce VRAM reliance.
| Feature | GeForce RTX 3050 6GB | Quadro RTX 4000 with Max-Q Design |
|---|---|---|
| VRAM Capacity | 6 GB | 8 GB+33% |
| Memory Type | GDDR6 | GDDR6 |
| Bus Width | 96-bit | 256-bit+167% |
| L2 Cache | 2 MB | 4 MB+100% |
Display & API Support
DirectX support: 12 Ultimate (GeForce RTX 3050 6GB) vs 12.2 (Quadro RTX 4000 with Max-Q Design). Vulkan: 1.3 vs 1.3. OpenGL: 4.6 vs 4.6. Maximum simultaneous displays: 4 vs 4.
| Feature | GeForce RTX 3050 6GB | Quadro RTX 4000 with Max-Q Design |
|---|---|---|
| DirectX | 12 Ultimate | 12.2+2% |
| Vulkan | 1.3 | 1.3 |
| OpenGL | 4.6 | 4.6 |
| Max Displays | 4 | 4 |
Media & Encoding
Hardware encoder: NVENC (5th Gen) (GeForce RTX 3050 6GB) vs 7th Gen NVENC (Quadro RTX 4000 with Max-Q Design). Decoder: NVDEC (7th Gen) vs 5th Gen NVDEC. Supported codecs: H.264,HEVC,AV1 (Decode Only) (GeForce RTX 3050 6GB) vs MPEG-2,H.264,HEVC,VP9 (Quadro RTX 4000 with Max-Q Design).
| Feature | GeForce RTX 3050 6GB | Quadro RTX 4000 with Max-Q Design |
|---|---|---|
| Encoder | NVENC (5th Gen) | 7th Gen NVENC |
| Decoder | NVDEC (7th Gen) | 5th Gen NVDEC |
| Codecs | H.264,HEVC,AV1 (Decode Only) | MPEG-2,H.264,HEVC,VP9 |
Power & Dimensions
The GeForce RTX 3050 6GB draws 70W versus the Quadro RTX 4000 with Max-Q Design's 80W — a 13.3% difference. The GeForce RTX 3050 6GB is more power-efficient. Recommended PSU: 300W (GeForce RTX 3050 6GB) vs 500W (Quadro RTX 4000 with Max-Q Design). Power connectors: None vs PCIe-powered. Card length: 160mm vs 0mm, occupying 2 vs 0 slots. Typical load temperature: 75°C vs 80°C.
| Feature | GeForce RTX 3050 6GB | Quadro RTX 4000 with Max-Q Design |
|---|---|---|
| TDP | 70W-13% | 80W |
| Recommended PSU | 300W-40% | 500W |
| Power Connector | None | PCIe-powered |
| Length | 160mm | 0mm |
| Height | — | 0mm |
| Slots | 2 | 0-100% |
| Temp (Load) | 75°C-6% | 80°C |
| Perf/Watt | 153.6 | 152.2 |
Value Analysis
The newer card here is GeForce RTX 3050 6GB (2024 vs 2019).
| Feature | GeForce RTX 3050 6GB | Quadro RTX 4000 with Max-Q Design |
|---|---|---|
| MSRP | $169 | — |
| Codename | GA107 | TU104 |
| Release | February 2 2024 | May 27 2019 |
| Ranking | #252 | #220 |
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