TJI Joist Calculator
Estimate engineered I-joist line load, live-load deflection, total-load bend demand, bearing reaction, rim or blocking callouts, and web stiffener conditions for preliminary floor framing checks.
Joist Check Results
| Series | Best use | Relative stiffness | Typical depth range |
|---|---|---|---|
| TJI 110 | Short rooms, light loads | Base | 9-1/2 to 11-7/8 in |
| TJI 210 | General residential floors | About 1.3x base | 9-1/2 to 14 in |
| TJI 230 | Longer rooms, stiffer floors | About 1.55x base | 11-7/8 to 16 in |
| TJI 360 | Open plans and tile targets | About 1.9x base | 11-7/8 to 16 in |
| TJI 560 | Heavy residential loading | About 2.35x base | 14 to 16 in |
| Spacing | Tributary width | 40 psf live | 10 psf dead |
|---|---|---|---|
| 12 in OC | 1.00 ft | 40 plf | 10 plf |
| 16 in OC | 1.33 ft | 53 plf | 13 plf |
| 19.2 in OC | 1.60 ft | 64 plf | 16 plf |
| 24 in OC | 2.00 ft | 80 plf | 20 plf |
| Condition | Typical action | Why it matters | Calculator flag |
|---|---|---|---|
| End bearing over 1500 lb | Review web stiffeners | Limits web crippling | High reaction |
| Hanger support | Match hanger schedule | Seat and nailing govern | Hanger note |
| Cantilever over 2 ft | Check backspan ratio | Uplift and rotation increase | Cantilever note |
| Large web opening | Use hole chart | Shear zone can control | Opening note |
| Assembly target | Live load | Dead load | Common deflection limit |
|---|---|---|---|
| Bedroom or hall | 30 to 40 psf | 10 to 15 psf | L/360 |
| Kitchen or living room | 40 psf | 12 to 20 psf | L/360 to L/480 |
| Tile or stone finish | 40 to 50 psf | 18 to 35 psf | L/480 or stiffer |
| Light storage attic | 20 to 30 psf | 8 to 12 psf | L/240 to L/360 |
If you’ve ever stood in an unfinished home and felt your boot bounce, take note: It’s not just embarrassing; it’s a red flag that something in the floor framing is wrong; either trying to work too hard or not quite up to the task.
Open-plan homes is built differently today thanks to engineered I-joists like TJI series, which can spans greater lengths then traditional lumber, and hold together better against twisting forces than solid wood. But there’s a catch: Because you’re no longer sizing a joist by eye (as if with a two-by-ten), you have to trust the math.
How to Build a Strong Floor
This page’s calculator connects your layout sketch with what actualy makes up the floor system. First is the span, how far apart the supports are from each other, and this is the largest variable in the equation. Deflection increases rapidly as the span increase so a 16 foot span will take much greater stiffness than a 12 foot span. You put in the span (along with the joist series and depth) and the series does matter since it defines moment of inertia… Basically a description of how resistant something is to bending. If you’re laying down ceramic tile, you want something stiffer than if you were putting down carpet on a loft. The 560 and 360 series are stiffer. The calculator makes those kinds of comparisons for you so you don’t have to look them up in the manual.
Many homeowners make mistakes in their loading assumptions, assuming their floor will just has to bear their own weight. In fact it must also be able to handle the weight of their furniture, bookshelves, piano, and impact of them running around. That’s why a standard residential live load input is forty pounds per square foot for bedrooms and fifty for living areas. This represents the combined weight, which is what the uniform live load covers. Then there’s the dead load: that’s the weight of your insulation, subfloor and other finish materials, and if you’re laying down heavy stone or pouring thick concrete, the dead load adds up fast. This add up to the total line load per joist which is the number our calculator gets from all this. From that we can tell how stressed the web is.
The other side of the equation are deflection limits, which prevent the floor from feeling like a trampoline, while bending strength keeps the house from collapsing. Standard floor joists limit sag to the L/360 (that’s the span length divided by three hundred and sixty) but for tile and other brittle finishes you want L/480. If you pick a joist that doesn’t pass either test, the tool will inform you, typically indicating you should of tighten spacing between joists, use a stiffer series, or make them deeper. Depth is generally more effective than spacing because depth is more significant to the overall stiffness of the joist.
The thing about joists: You can hang them from strong joists all day long, but if they’re only supported by a little piece of wood, they’ll crush it. It find how much force hits the ends, called end reaction force. It then compares this against the type of bearing used and the length. For example, if you’ve got some face mount hangers, they needs to be rated for that reaction force. The tool flags if your load is more than what’s typical for a hanger or if the bearing isn’t long enough.
It examines web stiffeners, and cutting holes for wiring and plumbing weakens the web. Does that mean the cut has to be blocked to keep it from buckling locally? The calculator says whether or not it’s OK.
It’s not meant as a substitute for an engineer… It’s meant to be a tool that makes for a smarter conversation with one. It will help you speak clearly with a builder and understand things like why bearing length isn’t optional, why depth is better than width, or why tile floors require a stiffer system. It also does the algebra so you can focus on making your design decisions. That gets you back to feeling confident standing on subfloor, not just because it passed inspection, but because it was built to feel solid.
