Radiator Size Calculator for PC Watercooling

🌡 Radiator Size Calculator

Estimate PC watercooling radiator surface area from CPU and GPU heat load, coolant-to-ambient delta, fan speed and noise target, thickness, fin density, case restriction, 120/140 mm sections, and headroom.

🎮Loop Presets
Verified planning note: The common baseline is about 100 W per 120 mm radiator section at a 10°C coolant delta with moderate fans. This calculator lets fan speed, delta target, 140 mm area, thickness, FPI, case restriction, push-pull, and headroom move that baseline.
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Estimated loop heat
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Watts per 120 section
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Equivalent 120 sections
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Installed equivalent
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Projected coolant delta
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Fan/noise target
Planning Mode
🔥Heat Load Inputs
Profiles set a planning TDP; measured package power is better when available.
Use sustained gaming, render, or stress-test watts for your target workload.
Board partner BIOS and power limits can change this number.
Use total board power, not core-only power.
Set 0 for CPU-only loops or more for multi-GPU compute loops.
Gaming rarely pins CPU and GPU at 100% together; stress testing can.
Add pump heat and any blocks beyond CPU/GPU.
Adds extra heat after the sustained-load estimate.
💧Radiator and Coolant Targets
Lower delta means quieter water and more radiator surface.
Projected coolant temperature equals ambient plus coolant delta.
Capacity per section rises with RPM, but noise rises quickly too.
A 140 mm section is modeled as 1.36 times a 120 mm section by face area.
Thicker cores help most when fans can push enough static pressure.
Dense fins can lose at low RPM and gain at high RPM.
Radiators fed with warm or restricted air need more surface area.
Push-pull helps thick or dense radiators more than slim low-FPI cores.
Extra capacity covers dust, summer rooms, quieter curves, and future hardware.
Many builders try to keep coolant comfortably below 45°C for tubing, pump, and noise margin.
📏Installed Radiator Check
A 360 radiator is 3 sections; dual 360 radiators are 6 sections.
A 280 radiator is 2 sections; a 420 radiator is 3 sections.
Radiator sizing result
Recommended radiator
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Equivalent class
Loop heat with headroom
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Watts to dissipate
Projected coolant delta
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At installed sections
Installed capacity status
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Surface area margin
Calculation Breakdown
Enter your loop values and calculate.
Installed Radiator Load
Plenty of surfaceNear targetHot or noisy
Add 120 Section
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Models one extra 120 mm radiator fan position.

Delta change-
Add 140 Section
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Models one extra 140 mm radiator fan position.

Delta change-
Faster Fans
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Moves one fan/noise tier higher with the same radiators.

Delta change-
Lower Load
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Models a 12 percent GPU/CPU power reduction.

Delta change-
📚Radiator Capacity References
Common capacity rule by fan speed
Fan targetApprox RPM120 mm at 10°CPlanning use
Silent600-75055-70 WLarge loops, low noise, low coolant delta.
Quiet800-90075-90 WGood daily target for mesh cases.
Balanced950-110095-110 WMatches the popular 100 W per 120 mm section rule.
Performance1250-1400120-140 WUseful when radiator space is limited.
High airflow1700-2100160-190 WTrades noise for compact radiator area.

Actual radiator testing varies by model, fan pressure, coolant flow, case air temperature, and test method. Treat watts per section as planning capacity, not a guarantee.

120 mm and 140 mm section equivalents
RadiatorSections120 equivalentTypical fit note
1201 x 1201.0Rear exhaust or compact auxiliary radiator.
2402 x 1202.0CPU-only or supplemental GPU loop area.
3603 x 1203.0Common front or top main radiator.
2802 x 1402.7Often close to a 360 in face area.
4203 x 1404.1Strong quiet-loop option when the case fits it.

The calculator uses 140 mm face area as 1.36 times a 120 mm section, before applying the same thickness and airflow modifiers.

Thickness and fin density adjustments
Core typeQuiet fansFast fansBest match
Slim low FPIGoodModerateLow-noise builds and top mounts.
Slim medium FPIGoodGoodGeneral custom-loop planning.
Thick low FPIGoodStrongPush-pull or pressure fans.
Thick dense FPIWeakStrongHigh RPM where noise is acceptable.
Very thick coreMixedStrongSpace-limited cases with fan pressure.

Thicker is not automatically quieter. Low-RPM fans may not use the extra core depth well if fin density and restriction are high.

Coolant delta interpretation
Coolant deltaNoise targetRadiator signalPractical meaning
5-7°CSilentVery largeNeeds generous surface or external radiators.
8-10°CQuietStrongCommon custom-loop target for daily gaming.
11-15°CBalancedNormalOften acceptable if component blocks are efficient.
16-20°CAudibleLimitedMay be fine for short loads, but water runs warm.
20°C+LoudUndersizedAdd surface, lower watts, or accept high fan speed.

Coolant delta is coolant temperature minus radiator intake air temperature. Component core temperature also includes block, die, paste, and mounting resistance.

Example radiator classes for common PC watercooling loads
Loop profileTypical heatQuiet targetBalanced targetWatch item
CPU-only gaming loop90-180 W240 or 280120 or 240CPU package spikes and case intake temperature.
Midrange CPU + GPU loop350-500 W420 or 2 x 240360 plus 120/240GPU board power usually dominates heat.
High-end 4K gaming loop550-750 W2 x 360 or 420+360480+360 or high RPM 2 x 360Coolant delta and fan noise rise together.
Creator CPU + flagship GPU700-900 WExternal or 3 radiators2 x 420 or 3 x 360Sustained render heat, not just gaming peaks.
Dual GPU compute loop900-1300 WExternal radiator bankLarge internal plus externalPump flow, coolant limit, and room heat.
💡Calculation Notes
Measure watts, not names. CPU and GPU names are only starting points. Use sensor logs from the workload you actually care about.
Coolant delta sets the feel. A loop can be safe at higher coolant delta, but quiet daily builds usually need more surface area.
Air path changes results. A front radiator using cool intake air and a top radiator exhausting warm case air should not be modeled the same.

When you drop a gigantic 480 millimeter radiator into your case’s front, it can makes you think: “Engineering won!” Your loop look complicated, with glowing reservoirs and snaking pipes. Then you run some stress tests, and learn that sheer surface area doesn’t always mean thermodynamic success. Coolant temps rise and fans engages, as you discover that heat loss rely on both temperature difference and air flow. It’s difficult to size a radiator, since bigger isn’t necessary better.

To find the right balance between noise and cooling capacity, you need to calculate your thermal load and then size your radiator accordingly. Fortunately, plugging in your GPU and CPU power outputs will do all the math for you using the calculator above (no more guesstimating airflow penalties or factors).

How to Choose the Right Radiator Size

The first step is to determine how much total heat you are generating. That includes your CPU, GPU, and any other component like memory that add heat. It also includes pumps or other cooling equipment. A 25W CPU doesn’t sound like much, but throw in a 300W GPU and suddenly the whole rig is pushing hundreds of watts.

The calculator works around that because it allow you to enter sustained wattages instead of just reading off the marketing name. A 120w Ryzen might actualy draw more power at load than that, and a limited power GPU might be held down from its rating. The best bet is to plug in real numbers based on what your system read with your workload. Don’t undersize for an overnight render you’re not doing OR oversize for the max that will rarely happen. You should of planned for that.

With the heat load established, we’re into the meat of the trade off. How hot do you want your coolant? How much warmer than the room temperature do you want the water to be when it leaves the radiator? That’s the delta T, the difference between what enters the radiator for cooling and what leave. The closer the difference is to zero, the better your component temperatures, but at the cost of more radiator space to be efficient. The more temperature rise you allow, the less radiator you’ll need.

On the other hand, if you want the fluid to warm up by only five degrees, you will need a huge radiator or very dense fins. But there’s a catch with those dense fins: they limit airflow realy badly while providing extra surface area per cubic inch. So unless you have very powerful static pressure fans to drive air through them, a dense radiator won’t function well at low fan speeds. It may actualy perform worse than a thin radiator at low speeds due to lack of air penetration into the fin stack. It accounts for those real world limitations with the ability to input fin density and fan speed into the calculator.

At two thousand RPMs, the fan can clear almost two hundred watts off of one section (loud profile), but it can do so quietly. At six hundred RPMs (silent profile) it might only clear sixty watts (and be very quiet). That’s a huge difference in capacity. For anyone who values quiet, you’ll probably have to jump up to a larger size radiator or maybe even add another section completely. This chart on the page clearly shows what happens when you increase fan speed which dramatically impact the watts per section figure.

Remember that not all variables is annoyances; noise is also something that can be measured in terms of thermal performance. Not only does the internal hardware matter, but so does the airflow around that hardware. A fresh stream of incoming air from a front-mounted radiator will do wonders compared to a radiator sitting atop a glass case spewing hot air back into itself. To account for this, you can set whether your airflow path is open or restrictive. This means that if your case is more like a glass box… And doesn’t let air circulate well, then your radiator has to work a little bit harder to push heat out into an already-warm area. Adding some headroom to your calculation helps offset this inefficiency. It’s a tiny buffer, but it keeps the whole system from choking if the ambient room temperature increases on a sweltering summer afternoon.

So what is the result? A water-cooled loop is all about compromise. Thermal room to acoustic output to physical space. What’s right depends entirely on your needs: your thermal goals, your noise floor, and the size of your case. Want something super quiet but don’t mind it taking up half your desk? Go big with the radiator(s) and whisper-quiet pumps. Need something stealthy enough to fit under your monitor? Run a tight loop with screamingly loud fans. It’s all about understanding the compromises you’re making when you select your parts. Know your thermal, set your noise, and fill in the gaps with surface area. That’ll help you keep that coolant cool while keeping your PC from sounding like a jet engine.

Radiator Size Calculator for PC Watercooling

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