InductorCalc vs leaDCalc
Price, ratings, monetisation and update history for both apps, side by side — with what reviewers say about each.
InductorCalc
Calculate essential parameters for custom inductors and coils. Input dimensions like turns, length, and diameter to instantly get inductance, Q-factor, wire length, and DC resistance. Ideal for electronics enthusiasts and students designing custom components.
- Calculate inductance (L)
- Calculate Q-factor at operating frequency
- Calculate total wire length
- Calculate DC resistance
- Supports multiple SI units
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Designing your own inductor or coil? InductorCalc makes it quick and easy to get the key parameters you need. Enter your coil’s physical dimensions — number of turns, length, and diameter — and instantly calculate: • Inductance (L) in a range of SI units • Q-factor at your chosen operating frequency • Total wire length needed for the winding • DC resistance based on your wire’s Ω/m value Simply fill in the fields, tap Calculate, and let the app do the math. Perfect for electronics hobbyists, students, and anyone building custom inductors.
leaDCalc
This app calculates direct current power lead sizes for telephone company central office power plants. It uses a circular slide rule format to determine allowable voltage drops and wire sizes based on specific system parameters.
- Circular slide rule format
- Calculates allowable voltage drops
- Determines DC power lead sizes
- Supports 48V and 24V DC systems
- References Bell System calculations
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Application based on the Western Electric Co. Inc, Bell Laboratories, Bell System DC Power Lead Calculator which is in a circular slide rule format. Using allowable voltage drops specifically designed for telephone company central office direct current power plants and distribution wiring. The application references 48 volt battery systems but also works for other direct current voltages such as 24 volt. When using for 24 volts or other, choose by the required loop voltage drop instead of the specific section of the circuit. Notes: 51. Voltage drop and wire size calculations are based on 2.00 volt LOOP drop from the power plant battery to the load equipment and return. 1.75 Final Volts Per Cell or 40 volts min. operating volts at the equipment for nominal 48V systems. (40 + 2 = 42 / 24 = 1.75fvpc) 52. LOOP length is used in the calculations, often the battery and returns are unequal length. The result VD is shown as ONE WAY. 53. The formula used in the lead size calculations is: CM = LoopLength * 11.1 * Fuse or Breaker @ 100% / VD (T-Mobile does use 80% of the input breaker or fuse size to calculate DC power wires) CM = LoopLength * 11.1 * Fuse or Breaker @ 80% / VD For example the Bell System might use the leaDCalc recommended 66% of the input breaker or fuse size to calculate DC power wires. The Bell System terms Peak and Busy Hour are antiquated electro-mechanical switch central office terms so leaDCalc recommends using 66% of the input fuse or breaker size, ie. 600A fuse or breaker calculate using 400 amperes and which is exactly as was done at Western Electric Co., Inc. for Bell System Telephone offices. 54. BDFB is a Battery Distributing Fuse Board. Fuse Panel is rack mounted at or near the load equipment. Load Equipment is the actual device requiring power. 55. This application is intended for informational use. Based on the original Bell System Lead Calculator, Western Electric Co., Inc. Model GS-5420, 4-66. 56. "leaDCalc" is NOT affiliated with any person or company or anything else anywhere. No how, no way. Especially NOT T-Mobile nor the Bell System or even Western Electric Co. Inc., all of whom are mentioned. This application is meant as a guide only in determining the size and or capacities of power wiring used in direct current (DC), charging and storage battery telephone systems. This application is NOT intended to decide what type of wire, (or if you should even use wire or busbars in your DC systems), no how, no way and it is not for use with alternating current (AC) systems.
Screenshots
Verdict
The clearest difference is price: leaDCalc at Free against InductorCalc's $0.99. leaDCalc also leads on update cadence (every 11 months vs every 23 months). InductorCalc's advantage is iOS requirement (12.0 vs 16.0). On ads, in-app purchases and device support there is nothing between them.
Scored on Price · Rating · Positive reviews · Number of ratings · Update frequency · Ads · In-app purchases · Monetization · Best chart rank · Devices · Requires iOS
leaDCalc is free to download; InductorCalc costs $0.99 up front. Neither carries in-app purchases, so what you see is what you pay.
InductorCalc ships an update every 23 months, leaDCalc every 11 months. The most recent releases landed on June 1, 2026 and June 21, 2026 respectively.
| Parameter | InductorCalc | leaDCalc |
|---|---|---|
| Price | $0.99 | Free — better |
| Rating | — | 5.0 (1 ratings) — better |
| Positive reviews | 100.0% of reviews | — |
| Number of ratings | — | 1 — better |
| Update frequency | Every 23 months | Every 11 months — better |
| Ads | No | No |
| In-app purchases | No | No |
| Monetization | Paid | Free — better |
| Devices | iPhone, iPad, iPod — better | iPhone, iPad |
| Requires iOS | 12.0 — better | 16.0 |
| Further details — not scored | ||
| Size | 17 MB | 157 MB |
| Age rating | 4+ | 4+ |
| Developer | oskari saarinen | Vaughn Warriner |
Customer experience
InductorCalc
leaDCalc
In-app purchases
InductorCalc
No in-app purchases
leaDCalc
No in-app purchases
Questions
Is InductorCalc free?
Is leaDCalc free?
Do InductorCalc or leaDCalc have ads?
Which is updated more often, InductorCalc or leaDCalc?
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