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Energy Harvesting

Piezoelectric Fabric Energy Harvesting Estimator

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See what it looks like

Garment harvesting is measured in microwatts. The useful question is not how much power, but how long to fill the capacitor.

Harvester Active patch
cm²
µJ/cm²
cycles/min
Conditioning Losses & store
%
%
mJ

Continuous Power

— µW

Usable output at the stated cycle rate

Output & Storage

Raw Energy per Cycle
— µJ
Usable Energy per Cycle
— µJ
Raw Power Before Losses
— µW
Energy Harvested
— mJ/h
Time to Fill the Store
— h

Energy density per cycle depends entirely on how hard and how far the patch is actually strained in that garment position — a figure measured on a shaker rig will not survive being sewn into a sleeve. Measure it in situ before sizing anything downstream.

Using this calculator

About the Piezoelectric Fabric Energy Harvesting Estimator

The formula

This is the expression the tool evaluates. Every term is named underneath, with the unit it must be supplied in.

Continuous Power
powerOutput = f( activeArea, energyDensity, cycleRate, conversionEfficiency, storageEfficiency, chargeTarget )

Each input feeds the expression evaluated in the browser; the symbol table below names every term and its unit.

Symbols used above
SymbolStands forUnit
activeAreaActive Areacm²
energyDensityEnergy per CycleµJ/cm²
cycleRateStrain Cycle Ratecycles/min
conversionEfficiencyElectromechanical Conversion%
storageEfficiencyRectifier & Storage Efficiency%
chargeTargetEnergy Store TargetmJ
powerOutputContinuous PowerµW
rawEnergyPerCycleRaw Energy per CycleµJ
usableEnergyPerCycleUsable Energy per CycleµJ
rawPowerRaw Power Before LossesµW
energyPerHourEnergy HarvestedmJ/h
timeToTargetTime to Fill the Storeh

How the result is derived

Step by step, from the values you type to the figure on screen.

  1. The 6 inputs are read from the form on every keystroke: Active Area, Energy per Cycle, Strain Cycle Rate, Electromechanical Conversion, Rectifier & Storage Efficiency and Energy Store Target.
  2. Each value is checked against the accepted range in the input table below. A value outside its range stops the calculation rather than producing a misleading figure — the results blank out and a message appears.
  3. The validated values are substituted into the expression above, which resolves Continuous Power together with every supporting figure in one pass — no value is carried over from a previous entry.
  4. The supporting outputs — Raw Energy per Cycle, Usable Energy per Cycle, Raw Power Before Losses, Energy Harvested and Time to Fill the Store — come from the same pass, so they always describe the same case as the headline figure.
  5. Results are rounded for display only. The full-precision value is used throughout the chain, so reading a rounded intermediate figure back into the tool by hand can shift the last digit.

What each input means

Where to read each value on the floor, the unit it must be in, and the range the tool accepts.

InputUnitAccepted rangeDefaultWhat it means
Active Areacm²1 to 5000 cm²100
Energy per CycleµJ/cm²0.001 to 50 µJ/cm²0.8
Strain Cycle Ratecycles/min1 to 600 cycles/min60
Electromechanical Conversion%1 to 100 %45
Rectifier & Storage Efficiency%1 to 100 %70
Energy Store TargetmJ0.1 to 10000 mJ100

What the tool returns

The headline figure and every supporting value it is built from.

OutputUnitWhat it tells you
Continuous Power (headline result)µWUsable output at the stated cycle rate
Raw Energy per CycleµJ
Usable Energy per CycleµJ
Raw Power Before LossesµW
Energy HarvestedmJ/h
Time to Fill the Storeh

Worked example

Given

Active Area
100 cm²
Energy per Cycle
0.8 µJ/cm²
Strain Cycle Rate
60 cycles/min
Electromechanical Conversion
45 %
Rectifier & Storage Efficiency
70 %
Energy Store Target
100 mJ

The tool loads with this case already solved — the Continuous Power shown above is its answer. Change one value and the difference from this baseline is the sensitivity of the result to that variable.

How to use it

  1. Work through the input groups in order — Harvester and Conditioning. The defaults are a realistic case, so you can change one value at a time and watch what moves.
  2. There is no calculate button. Every figure recalculates as you type or drag, which is what makes this usable for a what-if sweep rather than a single answer.
  3. Read Continuous Power in the dark results panel — that is the headline figure, expressed in µW.
  4. Check the supporting rows underneath (Raw Energy per Cycle, Usable Energy per Cycle, Raw Power Before Losses, Energy Harvested and Time to Fill the Store) before acting on the headline — they are where an implausible input usually shows itself first.
  5. Reset to defaults returns every field to the reference case, which is the quickest way to check whether a surprising result came from the tool or from an input you had changed earlier.

Where this is used

  • Process planning — establishing Continuous Power before a trial is booked, so machine time and material in Smart Textiles & E-Textiles are committed against a calculated figure rather than an estimate.
  • Costing and quotation — Continuous Power is an input to the cost sheet, and quoting from a worked number rather than a remembered one is what keeps a margin intact.
  • Troubleshooting — when the floor result drifts from plan, entering the measured values (starting with Active Area) shows how much of the gap in Continuous Power each variable explains.
  • Teaching and study — the accepted ranges bracket normal Smart Textiles & E-Textiles practice, so moving one variable at a time shows the shape of the relationship rather than a single answer.

Assumptions and limits

  • Energy density per cycle depends entirely on how hard and how far the patch is actually strained in that garment position — a figure measured on a shaker rig will not survive being sewn into a sleeve. Measure it in situ before sizing anything downstream.
  • Every input is bounded to the range normal practice occupies (Active Area 1 to 5000 cm², Energy per Cycle 0.001 to 50 µJ/cm² and Strain Cycle Rate 1 to 600 cycles/min, and so on for the rest). Those bounds are guard rails against typing errors, not a claim that the formula fails one unit outside them.
  • The calculation is deterministic: the same inputs always give the same result. It carries no allowance for machine condition, operator skill, ambient conditions or lot-to-lot material variation unless an input above explicitly represents one.
  • Nothing is sent anywhere. The maths runs in your browser, so the numbers you type never leave the page.

Questions people ask

What do I need to know before using the Piezoelectric Fabric Energy Harvesting Estimator?

Have these to hand: Active Area, Energy per Cycle, Strain Cycle Rate, Electromechanical Conversion, Rectifier & Storage Efficiency and Energy Store Target. With those entered, the tool returns Continuous Power immediately.

What exactly is Continuous Power?

Usable output at the stated cycle rate. It is reported in µW. It is derived from Active Area, Energy per Cycle, Strain Cycle Rate, Electromechanical Conversion, Rectifier & Storage Efficiency and Energy Store Target, and is the figure the rest of the Smart Textiles & E-Textiles calculation is built around.

Which units does this calculator expect?

Enter Active Area in cm², Energy per Cycle in µJ/cm², Strain Cycle Rate in cycles/min, Electromechanical Conversion in %, Rectifier & Storage Efficiency in % and Energy Store Target in mJ. Mixing unit systems is the most common cause of a result that looks an order of magnitude wrong — convert before typing, not after reading.

What are the other figures under the main result?

They are the intermediate quantities the calculation passes through: Raw Energy per Cycle, Usable Energy per Cycle, Raw Power Before Losses, Energy Harvested and Time to Fill the Store. They are shown because a headline number nobody can trace is a number nobody trusts — checking them against your own expectation is the fastest way to confirm the inputs were read as you intended.

Can I rely on this for a production decision?

Energy density per cycle depends entirely on how hard and how far the patch is actually strained in that garment position — a figure measured on a shaker rig will not survive being sewn into a sleeve. Measure it in situ before sizing anything downstream. Treat the output as an engineering estimate that narrows the trial window, not as a substitute for the trial.

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