Foot pounds-force second to Joules/minute

ft·lbf/s

1 ft·lbf/s

J/min

81.34907690010463730185 J/min

Conversion History

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1 ft·lbf/s (Foot pounds-force second) → 81.34907690010463730185 J/min (Joules/minute)

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Quick Reference Table (Foot pounds-force second to Joules/minute)

Foot pounds-force second (ft·lbf/s)Joules/minute (J/min)
181.34907690010463730185
10813.49076900104637301846
1008,134.90769001046373018462
20016,269.81538002092746036924
55044,741.99229505755051601541
1,00081,349.0769001046373018462
5,000406,745.384500523186509231

About Foot pounds-force second (ft·lbf/s)

Foot pounds-force per second (ft·lbf/s) is the fundamental mechanical power unit in the US customary system, equal to approximately 1.356 watts. It is the rate of doing work when a force of one pound-force moves through one foot per second. The unit is directly related to the mechanical horsepower: one horsepower equals exactly 550 ft·lbf/s. It appears in US mechanical engineering, ballistics, and machinery design texts.

One mechanical horsepower equals 550 ft·lbf/s (~746 W). A person climbing stairs moderately expends about 200–300 ft·lbf/s of mechanical power.

About Joules/minute (J/min)

Joules per minute (J/min) is a low-power rate unit, useful for expressing the power of very slow processes — chemical reactions, biological heat production, or low-intensity heating — where per-second rates produce inconveniently small numbers. One joule per minute equals approximately 0.01667 watts. It is rarely used in engineering practice but appears in laboratory chemistry, calorimetry, and physiology research where the timescale of interest is minutes rather than seconds.

Resting human metabolism produces roughly 5,000 J/min (about 83 W) of heat. A slow chemical reaction releasing 1 J/min produces barely perceptible warmth.


Foot pounds-force second – Frequently Asked Questions

James Watt calculated that a mill horse could turn a mill wheel 144 times per hour, doing 32,572 ft·lbf of work per minute — he rounded up to 33,000 ft·lbf/min (550 ft·lbf/s) for marketing purposes. He wanted to sell steam engines by comparing them to horses, so he likely overestimated the horse to make his engines look like better value. A real horse sustains closer to 350–500 ft·lbf/s, so Watt's "1 HP" is actually more than one horse.

Power (ft·lbf/s) = Torque (ft·lbf) × RPM × 2π / 60. This is the workhorse formula (pun intended) of US mechanical engineering. For example, an engine producing 200 ft·lbf of torque at 3,000 RPM delivers 200 × 3,000 × 6.2832 / 60 = 62,832 ft·lbf/s ≈ 114 hp. The formula works because angular velocity in rad/s times torque in ft·lbf gives power directly in ft·lbf/s.

Pushing with 1 pound of force at 1 foot per second — roughly the effort of slowly sliding a light book across a table against friction. Lifting a 1-pound weight 1 foot in 1 second. Turning a doorknob with a very light touch. It's about 1.36 watts — enough to dimly light an LED. In human terms, it's almost effortless: casual walking produces about 50–80 ft·lbf/s of mechanical power, and you don't even notice.

Yes, particularly in ballistics (muzzle energy rates), mechanical testing (dynamometer output), agricultural machinery specs, and industrial equipment designed for the US market. However, even in the US, many engineering firms are switching to SI units for international compatibility. The automotive industry increasingly quotes power in both hp and kW. Aerospace has been mostly metric since the 1990s. Ft·lbf/s survives mainly in traditional mechanical and manufacturing industries.

Bullets are rated in ft·lbf of muzzle energy (not per second), but the power of a firearm is the muzzle energy divided by barrel time. A .308 rifle bullet exits with about 2,600 ft·lbf of energy over a barrel transit time of ~0.001 seconds, meaning the instantaneous power is roughly 2,600,000 ft·lbf/s (about 3,500 hp). That's why rifle recoil feels punchy — for a millisecond, you're absorbing the reaction force of a truck engine.

Joules/minute – Frequently Asked Questions

When the experiment naturally operates on a minute timescale. A bomb calorimeter measuring heat of combustion might collect data over 5–10 minutes, making J/min the natural rate unit. Reporting 350 J/min is more meaningful in context than 5.83 W, because the researcher thinks in minutes. It's the same reason we say "km per hour" for driving rather than "meters per second" — matching the unit to the human timescale of the observation.

Divide by 60. Since 1 W = 1 J/s and there are 60 seconds per minute, 60 J/min = 1 W. So 6,000 J/min = 100 W. For a quick mental approximation, drop two zeros and add two-thirds: 6,000 → 60 + 40 = 100 W. Going the other direction, multiply watts by 60: a 100 W bulb = 6,000 J/min. It's one of the easier unit conversions because 60 is such a clean number.

Cellular respiration rates in isolated mitochondria, enzyme reaction kinetics (heat of reaction per minute), metabolic rates of small organisms in respirometry chambers, and wound healing energy expenditure. A mouse in a calorimetry chamber might produce 200–400 J/min of heat. Plant leaf photosynthesis absorbs roughly 5–20 J/min of light energy per leaf. The minute timescale matches typical biological measurement intervals.

A standard candle releases about 5,000 J/min (roughly 80 W) of total thermal power, of which only about 600 J/min (10 W) is visible light — the rest is infrared radiation and hot convection gases. The candle burns paraffin at about 0.1 g/min, and each gram of paraffin contains roughly 46,000 J. That's why a single candle can meaningfully warm a small enclosed space.

Rarely, but it shows up in slow curing processes (epoxy heat generation during setting), low-temperature drying rates, and pharmaceutical dissolution testing where drug release rates are tracked per minute. Some food science labs measure heat of mixing or fermentation rates in J/min. In most industrial contexts, watts or kW are preferred — but when a process engineer times everything in minutes, J/min avoids constant ÷60 conversions in their spreadsheets.

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