Tool for quick thermal analysis of assemblies

Ohm's Law Calculator

Enter any two known positive values to calculate voltage, current, resistance, and power.

Working calculator

Enter the core dimensions and check the result directly on this page.

Current0A
Power0W

Voltage and resistance example Power and voltage example

Enter any two known positive values to calculate voltage, current, resistance, and power.

Assumes simple DC or purely resistive relationships. Does not model reactive AC loads. Does not size wire, breakers, fuses, or circuits. Does not provide electrical code advice. Does not account for temperature, device tolerance, or transient behavior. Does not replace qualified electrical design or inspection.

Practical note

Before you use the result

Ohm's Law Calculator is intended for quick option checks and technical discussion before detailed execution. The result depends on the selected units, declared material values, and chosen surface resistances, so each change in layer or thickness should be treated as a separate variant.

The calculator does not automatically verify every local rule, thermal bridge, moisture condition, structural connection, or installation tolerance. If the result is close to a requirement, treat it as a reason for deeper verification rather than a final decision.

For better comparisons, test several realistic thicknesses, check current product data sheets, and review the complete assembly. A calculated value is most useful when the assumptions are clear: material, thickness, layer order, units, and data source.

For insulation or U-value tools, layer order and correct units are especially important. For concrete, electrical, plumbing, or heating tools, the result should be read as a quick quantity or plausibility check before standards and execution conditions are reviewed.

Save the result with the date, material name, and assumptions. If the product, diameter, cable section, or thickness changes later, do not compare the numbers alone without checking which inputs changed.

For calculator pages, clear separation between inputs and result is essential. If a value looks surprising, check units and default fields first, then review the project assumptions.

Ohm's Law Calculator

Ohm's Law Calculator

Enter any two known positive values to calculate voltage, current, resistance, and power.

Assembly thickness

Assembly thickness

The draft uses V = I * R, P = V * I, P = I^2 * R, and P = V^2 / R. When more than two values are provided, the values must agree with the same circuit relationship.

U-value

U-value

Assumes simple DC or purely resistive relationships. Does not model reactive AC loads. Does not size wire, breakers, fuses, or circuits. Does not provide electrical code advice. Does not account for temperature, device tolerance, or transient behavior. Does not replace qualified electrical design or inspection.

CategoryLambdaLayerMaterialThickness

How it works

How to read the result

Enter any two known positive values to calculate voltage, current, resistance, and power.

Important limitation

Assumes simple DC or purely resistive relationships. Does not model reactive AC loads. Does not size wire, breakers, fuses, or circuits. Does not provide electrical code advice. Does not account for temperature, device tolerance, or transient behavior. Does not replace qualified electrical design or inspection.

Ohm's Law Calculator

The draft uses V = I * R, P = V * I, P = I^2 * R, and P = V^2 / R. When more than two values are provided, the values must agree with the same circuit relationship.

Enter any two known positive values to calculate voltage, current, resistance, and power.

Add layerRestore default setupRemove
Assembly nameThickness unitInternal Rsi (m2K/W)External Rse (m2K/W)

Calculation assumptions

The calculators use visible formulas and explicit unit conversions. Treat the result as a preliminary check, not a complete building design.

Review: 2026-04-27
  • SI and US units are converted separately; R, RSI, U-value, and U-factor are not mixed without the unit factor.
  • Enter positive values and compare the result with the selected product datasheet.
  • Local codes, thermal bridges, fasteners, and installation quality can change the requirement.
  • Last formula review: 2026-04-27.

Next step

Open the closest calculator, reference, or methodology page instead of scanning a long list.

Comparison

Compare materials or definitions before choosing a variant.

Open

Frequently Asked Questions

Lambda is the thermal conductivity of a material, usually shown in W/mK. Lower lambda means heat moves through that material more slowly, but the final assembly still depends on thickness, surface resistances, and every other layer.

U-value describes heat loss through the whole building element, not just one material. A low U-value usually means a better insulated wall, roof, or floor, provided the real build-up matches the layers entered in the calculator.

Yes. Use the comparison section to keep thickness constant, then compare materials by lambda and calculated thermal resistance. This is useful when two products look similar on paper but behave differently at the same installed depth.

Yes. You can print the result or export it to CSV, Excel, or PDF for reports and documentation.

Yes. It is designed for layered assemblies such as external walls, flat roofs, pitched roofs, floors, and slabs. For unusual assemblies, add every relevant layer and treat the result as a planning check before formal verification.

Yes. It is intended for fast concept-stage calculations, insulation comparison, and envelope optimisation before detailed design. It is best used to narrow choices, not to replace a code check or project-specific thermal bridge assessment.

Yes. You can switch between millimeters, centimeters, and inches, and the calculator keeps the values consistent. For fewer mistakes, choose one unit system at the start of a project and review converted thicknesses before export.

Use Ohm's Law Calculator as a first-pass reference. Before specifying anything, compare the result with the unit selection, actual project dimensions, product data sheet, and local requirements.