OrangePi Zero 3W Review: Tiny yet Powerful
Recorded: Sept. 15, 2026, 5:09 p.m.
| Original | Summarized |
OrangePi Zero 3W Review: Tiny Yet Powerful Home OrangePi Zero 3W Review: Tiny Yet Powerful 2026-09-11 By ekianjo OrangePi has kindly sent us a new board to test, the OrangePi Zero 3W. Our last review with OrangePi hardware was the OrangePi 4 Pro SBC - a powerful, low wattage board, low-cost alternative to the Raspberry Pi 5 (while a little less powerful). This time the Zero 3W sits in a very different category. It’s absolutely tiny, and it’s hard to believe that this thing actually has pretty much the same hardware specs as the larger OrangePi 4 Pro! Of course, you don’t get as many ports, and there is no M2 extension on this one. But this is some serious punch packed into a super small footprint. Personally I find it very cute. It comes with a custom-made fan that sits on top of the board, and this time you are absolutely going to need it. The OrangePi 4 Pro has a tendency to overheat very easily, something you could somewhat mitigate with heatsinks, and we are going to be facing the same problem here if we don’t have active cooling. Now, the question is whether or not this tiny fan is effective, but more on that later. Component SoC CPU Architecture GPU NPU (AI) RAM Storage Wireless & Cellular Video Output Video Codec USB Ports Camera (MIPI) Expansion Other Interfaces Power Supply Dimensions The board is absolutely tiny. It’s hard to imagine if you just look at it out of context, so comparing it with other regular boards can give you a better idea of how small it is. Then against the more regular OrangePi 5 Ultra, which is almost the same as the footprint of a credit card: And yet another closer shot focusing on the extension ports: Small, very small. In my case, since I did not get an adapter, I went for an intermediate (hacky) solution: a SATA SSD drive (m2 format), connected via one of the USB3 port. This will be slower than direct PCIe connection, but still plenty fast enough compared to the microSD card. You can see under load that the temperature is well managed, based on temperature recordings taken during the Geekbench benchmark: By the way, a few days ago I accidently damaged one of the wires linking the fan to power on the board, and the fan stopped working. Nevertheless, the heatsink alone was typically able to keep things fairly cool on the board, even without the fan. Not having the fan made a real difference under full load: when all cores are at 100 % for several minutes, the temperature ends up reaching 90 C without the fan, and you end up with deep throttling (falling back to 400 Mhz instead of the maximum 1.8 Ghz) to keep temperature down. With the fan, no such problem occurs and it can effectively keep things running at full load for a very long time, as you can see above in the temperature chart. Fantastic developement, and completely unexpected. The main reason why I would not use this as a desktop computer is because most of the ports are missing on this kind of form factor, and it’s really something that makes a lot more sense as a server, or in embedded hardware contexts. As you can see it managed to secure a slightly better performance than the much larger OrangePi 4 Pro (that is equipped with the same SOC), but remains a little slower than a Raspberry Pi 5, albeit in the same class of hardware. And the multicores ones: Of, course, the OrangePi 6 Plus is in a class of its own with its superb CIX SOC. Download the distro on another computer. Here’s what available in terms of Ubuntu variants at the time of writing: In order to fully make use of this little board since you may have fairly limited eMMC storage like me, is to use docker where possible, on a USB drive or a external SSD/NVME drive in order to push docker images on there so they don’t touch your root storage at all. To ensure docker does that by default, you need to have “data-root”: “/mnt/ssd/docker” in the /etc/docker/daemon.json file (assuming your external drive is mounted on /mnt/ssd/). PiHole to remove ads and trackers by acting as a custom DNS server I have actually created the temperature control chart displayed earlier in the article entirely on this machine, with the Rstudio server. It worked perfectly and was fast and responsive, as you’d expect. (using a docker image with tidyverse for ARM64). Running a Minecraft server on top is actually really demanding: there’s a lot of multicore activity to make things moving for Minecraft, and this is by far the most demanding application of the bunch, almost filling the available RAM to the max. But eventually, you can make all of this fit in 4GB of RAM, at the same time, and it will keep chugging along nicely, with the fan keeping things nicely running at good temperature. Amazon US 74 USD for the 4GB version (the one I got), 85 USD for the 6GB version, and 128 USD for the 12GB version. It comes with the heatsink+fan module. Note that this is at the time of writing, and price/availability is always subject to change. But at this price this thing is a no brainer. Not sure if I’d go for a 12GB version (for server use), the 6GB would be the sweet spot in terms of price and capabilities: enough headroom to host a bunch of services without worrying. With 4GB, you need to be somewhat more careful, but as you have seen above it’s still very good to host a bunch of demanding applications. By ekianjo, first published on 2026-09-11. Last modified on 2026-09-12 17:07:49 (UTC time). Copyright 2026 - Boiling Steam. All rights reserved. |
The OrangePi Zero 3W is presented as an exceptionally small single board computer that packs powerful specifications comparable to larger boards, primarily positioning itself in the realm of embedded hardware and portable electronics. The board features an Allwinner A733 System on Chip, composed of two Cortex-A76 cores, six Cortex-A55 cores, and a Xuantie E902 RISC-V coprocessor, along with a PowerVR BXM-4-64 MC1 GPU that supports Vulkan 1.3. Memory configurations are available up to 16GB of LPDDR5 RAM. Data storage options include optional onboard eMMC or UFS, alongside a standard MicroSD slot. Connectivity is robust, featuring Wi-Fi 6 and Bluetooth 5.4, and video output options such as a Mini HDMI 2.0 and a USB Type-C port with DisplayPort Alt Mode. The physical footprint of the OrangePi Zero 3W is extremely small, measuring only 65mm by 32mm by 1.2mm, allowing for integration into highly constrained environments. Despite its diminutive size, the hardware performance achieves results slightly superior to the larger OrangePi 4 Pro, though it remains slightly slower than the Raspberry Pi 5 within the same hardware class. A key feature for expansion is the inclusion of a 40-pin functional expansion header, which includes a PCIe 3.0 one-lane FPC socket, enabling the connection of M2 NVME adapters for significantly faster onboard storage solutions. The thermal management system is integral to the board's functionality, featuring an integrated fan and heatsink, which are deemed effective at controlling temperatures. During idle states, temperatures remain between 55 and 60 degrees Celsius, and under heavy load, the system manages temperatures up to 70 to 80 degrees Celsius, with the fan actively dissipating heat. The fan is noted for being very quiet and the heatsink for being highly efficient, although the heatsink itself becomes very hot to the touch. When the fan is omitted, the system experiences severe throttling, reaching temperatures of 90 degrees Celsius, underscoring the necessity of active cooling for sustained performance. Power consumption is very low, idling between 2W and 2.5W, which makes the unit suitable for low-power applications and home server setups. The user experience with the operating system has been a point of positive surprise, as the developers unexpectedly released recent images with current distributions and kernels, resolving prior concerns about outdated software. While the lack of full-sized ports necessitates external adapters or hubs for display and other peripherals, this constraint is deemed acceptable given the board's small form factor, making it particularly well-suited for server or embedded applications where GPIO pins and small size are prioritized. In terms of server utilization, the system demonstrates strong capability, particularly when employing containerization techniques such as Docker, often utilizing external SSDs or NVME drives to manage large application images, mitigating the limitations of onboard storage. The system handled running multiple demanding services simultaneously, such as PiHole, Jellyfin for streaming, Rstudio server, Immich for photo serving, and a Minecraft server, all within 4GB of RAM, demonstrating efficient resource allocation aided by the effective thermal management. The overall assessment is that the OrangePi Zero 3W is a well-designed, cost-effective, and powerful System on Chip, highly recommended for users interested in home server projects or portable electronic endeavors. |