SensorCatalog

Load cell output calculator

Bridge signal for one cell or several in parallel through a junction box.

Load cells

Number of cells

Load

Result

9.0000mV

45.0 % of 4000 kg total capacity

Full-scale output
20.000 mVat total capacity
Live-load signal
7.5000 mVexcluding dead load
Signal per kg
5 µV
Signal per division
2.5 µV3000 divisions
Excitation current
114.3 mA4 × 350 Ω in parallel
Combined resistance
87.5 Ω
Total capacity
4000 kg4 × 1000 kg
Capacity used
45.0 %even load split assumed
Formulas and standards
U = S × Vexc × W / (N × Ccell)

The junction box averages the cells, so the system keeps the rated mV/V while its capacity becomes N × the cell capacity. The bridges load the supply in parallel: combined resistance R/N, current Vexc ÷ (R/N). Assumes an even load split; corner and shock loads need capacity headroom.

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How load cell output is calculated

A strain-gauge load cell is a Wheatstone bridge. Its output is proportional to both the load and the excitation voltage, so datasheets specify sensitivity as rated output in mV/V: the signal per volt of excitation at full rated load. A 2 mV/V cell excited with 10 V gives 20 mV at its rated capacity.

For a single cell:

U = S × V_exc × W / C

where S is the rated output in mV/V, V_exc the excitation voltage, W the load and C the rated capacity.

Several cells in parallel

Platforms, tanks and hoppers usually stand on three, four or more cells wired in parallel through a junction box. The junction box averages the bridge outputs, so:

The bridges also load the excitation supply in parallel. Four 350 Ω cells look like 87.5 Ω, and at 10 V they draw 114.3 mA. Check that the indicator or amplifier can supply that current; many are limited to four or eight 350 Ω cells.

Worked example

Four 1000 kg cells, 2 mV/V, 10 V excitation, 350 Ω each. The platform weighs 300 kg (dead load) and the maximum product weight is 1500 kg (live load).

With two cells instead of four, the same load uses 90 % of the capacity and the signal doubles to 18 mV.

Microvolts per division

Weighing indicators specify a minimum input signal per division, typically 0.5 to 1 µV/e for standard instruments, and more for legal-for-trade approvals. The example above gives 2.5 µV per division, which is comfortable. If the result is close to the instrument’s limit, use a higher excitation voltage, cells with a higher mV/V, or a larger division.

Sizing capacity

The calculation assumes an even load split. Real installations need headroom for:

A common rule is to keep the total of dead load plus maximum live load below 70 to 80 % of the total capacity, and to check each cell’s safe overload rating.

Common mistakes

Using the system capacity instead of the cell capacity. mV/V refers to one cell’s rated load; in a parallel system the output at a given load drops by the number of cells.

Ignoring dead load. The platform or vessel weight uses up signal range and capacity, even though it is tared away.

Forgetting sense lines. Six-wire cells and indicators correct for voltage drop in long cables. Without sense lines, cable resistance reduces the effective excitation and the signal.

Mixing cells. Cells in parallel should have matched outputs, or be trimmed in the junction box; otherwise corner loads read differently.

Frequently asked questions

Which units can I use?

kg, t, lb, N and kN. Capacity, loads and division use the same unit.

Does the calculator handle 4–20 mA load cell amplifiers?

It gives the bridge signal. To scale an amplifier’s 4–20 mA output, use the 4–20 mA converter.

What excitation voltage should I use?

Use the value the indicator supplies, typically 5 or 10 V. Higher excitation gives more signal but more self-heating and current draw.

Can I copy the results into a report?

Yes. “Copy result” copies all inputs and results as plain text with a link back to the calculation.