Battery-Powered Carbon Monoxide Alarm
Non-negotiable in any home burning wood or propane. Battery powered, so it keeps working when the inverter or generator does not.
Researched, not personally tested

Estimate how much heat your building actually loses, what a season costs in cords, propane gallons, or kWh, and what stepping up the insulation would save you every year.
This calculator needs JavaScript turned on. With it off, the guide below walks through the math by hand.
Design load BTU/hr = sq ft x 35 x (design temperature difference / 70) x build-quality factor (1.4 / 1.0 / 0.7 / 0.45) x (ceiling height / 8). Seasonal BTU = (design load / design dT) x 24 x heating degree days. Fuel equivalents: cords = seasonal BTU / (20,000,000 x 0.70); propane gallons = seasonal BTU / (91,500 x 0.85); kWh = seasonal BTU / 3,412.
800 sq ft, 8 ft ceilings, average build, moderate climate (55 F dT, 5,500 HDD): design load 800 x 35 x (55/70) = 22,000 BTU/hr. Seasonal: (22,000/55) x 24 x 5,500 = 52.8 million BTU, which is 3.8 cords, 679 gallons of propane, or 15,475 kWh. One level tighter saves 30%: about 1.1 cords or 204 gallons a year.
These are the exact numbers the calculator on this page runs, stated so you can check them. Planning estimates, not engineering; sizing that matters gets confirmed by a professional against local conditions and code. Spotted a problem with the method? Tell me.
Before you argue about stoves, heaters, or fuels, there is one number underneath the whole conversation: how much heat your building loses. This calculator estimates that loss two ways, the peak load on the coldest design night, and the total energy a whole season takes, then translates the season into the three currencies off-grid people actually spend: cords of wood, gallons of propane, and kilowatt-hours.
The design load, in BTU per hour, is what your heater must be able to produce when it is as cold outside as your climate realistically gets. It sizes the equipment. The seasonal load, in millions of BTU, is the sum of every hour of the heating season weighted by how cold each hour was, which is what heating degree days measure. It sizes the woodpile and the budget. Two buildings can share a design load and have very different seasonal loads if one sits in a longer winter.
The calculator scales a baseline loss rate by your climate's design temperature difference, your ceiling height (more volume, more air to keep warm), and the build-quality multiplier, which is doing the heavy lifting. A drafty camp can lose three times the heat of a super-insulated build of identical size. If you want the fuller version of this math applied specifically to wood heat, the firewood calculator runs the same logic straight to a stove size and cords.
A million BTU delivered into the room costs roughly: one fourteenth of a cord of hardwood through a decent stove, about 13 gallons of propane through an efficient heater, or about 293 kWh of electric resistance heat. Off-grid, that last one is the killer, resistance heat from a battery bank is the most expensive warmth money can buy, which is why serious off-grid builds heat with wood or propane and save electricity for everything else. A cold-climate heat pump changes the electric math by roughly a factor of 2.5, but only if you have the array and bank to feed it, which the solar calculator can size honestly.
The "one insulation level tighter" row prices the upgrade nobody gets excited about. Air sealing and insulation are permanent: they cut every future winter's fuel, shrink the stove you need, quiet the building, and never break or need refilling. A step from average to tight construction typically cuts heating energy about 30 percent, every year, forever. Compare the one-time cost of cellulose, foam board, and a weekend of caulk against buying that percentage of your woodpile or propane annually, and insulation is usually the best-paying investment on the whole homestead.
Chase the leaks in order: air sealing first (rim joists, penetrations, attic hatches, door sweeps), then attic depth, then walls and windows. The Shelter & Structures archive and Heating & Cooking archive walk through the projects themselves, in the order that pays.
On the coldest design night, roughly 30 to 60 BTU per hour per square foot: 30 for a tight build in a mild climate, 60 for average construction in a severe one, and more for a drafty camp. An 800 square foot cabin in a cold climate typically needs a 35,000 to 45,000 BTU heat source.
Better than almost any other investment on the property. Moving one level up in tightness, say average to well-insulated, cuts heating energy roughly 30 percent every year, forever: fewer cords to cut, fewer propane fills, a smaller stove. Air sealing (rim joists, penetrations, door sweeps) is the cheapest first step and often the biggest.
Wood, if you have trees and a good stove; a cord you cut yourself delivers about 14 million usable BTU for sweat. Propane is the low-labor second. The one answer that is always wrong off-grid is electric resistance heat from batteries, which costs several times propane per BTU once you price the solar to feed it.
Affiliate disclosure: Some links on this site are affiliate links, including Amazon links: as an Amazon Associate I earn from qualifying purchases. Buying through one costs you nothing extra, and it never changes what I recommend.
Non-negotiable in any home burning wood or propane. Battery powered, so it keeps working when the inverter or generator does not.
Researched, not personally tested
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