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πŸ“ Annotated Plans β€” Jamaica Cottage Shop 10x12 Gable

Gibson St build Β· every page of the purchased plans with commentary: what to trust, what to adapt, what will bite. Private personal-use copy β€” do not distribute (JCS Β© applies to the underlying plans). Companions: Shed_Build_Guide.html Β· Shed_Orders.html Β· Dimensional_Lumber_and_Foundation_Addendum.md Β· Nail_Guns_and_Fasteners.md

Plans page 1

p.1 Introduction Read first

βœ… Sound as written
'Read these instructions all the way through' is load-bearing advice. Half-lap corners (p.22), rafter templates (p.40), and the bracing religion (p.25) all change how you cut things in earlier steps. This annotated copy exists to make that read-through stick.
πŸ” Why they do it
The sentence that explains the whole design. “A ¼″ difference is not uncommon.” Nothing in these plans is machined; every sequence squares, levels, and fits as it goes. Corollary you'll see on every page: when a printed number and your tape disagree, the tape wins.
⚠️ Adjust for our build
Their lumber is FULL dimension; yours is ½″ under. Rough-cut hemlock 2x4 = a true 2″×4″. Store lumber is 1½×3½. Every consequence is cataloged in the Lumber Rules tab of the build guide; the ⚠ notes below sit on the exact pages where printed numbers would mislead you.
🏠 Gibson St
'Water drainage is the concern' — ours especially. Their gravel-bed advice assumes near-grade siting. Our pad is benched into clay — a bathtub. The whole collector-to-SW-daylight design (Order_Plan v2, Site Reference) is this paragraph taken seriously.
πŸ’₯ GotchaπŸ’Έ COSTLY
Do not shop or cut from this document as printed. Pages 7 and 10–14 assume full-dimension lumber and board-&-batten siding. Buying or batch-cutting from them as written is a four-figure mistake. Our three-order plan and conversion table supersede them — the notes on those pages say exactly how.
Plans page 2

p.2 Copyright Read first

πŸ›  Technique
One-time personal use — that's us. This annotated copy lives next to the purchased plans, stays on this computer, and never gets posted or shared. That keeps us squarely inside the license.
Plans page 3

p.3 Promotional Spec Sheet Read first

πŸ” Why they do it
74″ walls here, 78″ on p.8 — not a typo. Posts are cut 74″; add the full-dimension 4″ top plate beam and the wall stands 78″. It only reconciles with true 4x4s — the quiet proof these plans assume full-dimension stock. Ours: 74 + 3½ = 77½″.
πŸ”— Dependency
The designers themselves treat the floor as the upgrade point. “When sheltering a heavy tractor… beef up the floor framing by requesting 24″ on center joists.” Their kit default was wider spacing; our 16″ o.c. choice is the same lever pulled one more notch to offset nominal lumber.
⏱ Time & tools
'Assembly time: two people, 24 hours' is the KIT number. That's for pre-cut, pre-labeled parts. Scratch-building from plans, budget 10–14 working days across our five phases. Don't calibrate morale to this line.
πŸ›  Technique
Best single-page summary in the document. RO sizes, pitch, strapping spacing, materials — all in one column. Worth photographing for your phone.
Plans page 4

p.4 Kit Handling & Part Numbers Read first

πŸ›  Technique
We're not building the kit — steal the system anyway. Their color-code IS our phase batching (floor/wall/siding/roof/trim). Adopt the label habit: as you cut each piece, write its role and length on the end grain. Ten seconds per stick kills the “which 66¾ is this?” game.
πŸ” Why they do it
'Some extra material has been included'. Their printed overage philosophy. Ours is the 5% estimate line, two spare blocks, and (if the salvage lot lands) spare sash.
Plans page 5

p.5 Table of Contents Read first

πŸ›  Technique
Map to our build phases. p.16–19 = Phase 1 (site) · p.20–21 = Phase 2 (floor) · p.22–26 = Phase 3 (walls) · p.27–30 + 36 = Phase 4 (dry-in) · p.31–35 = Phase 5 (finish). Appendices A, B, C are required reading before Phases 4, 5, and 1 respectively.
Plans page 6

p.6 Safety Read first

βœ… Sound as written
Two lines worth keeping from a boilerplate page. Right tool for the job, and never rush. Add our gun-era rules: sequential trigger for all toenailing, eyes and ears on whenever a compressor is charged (Nail_Guns_and_Fasteners.md).
Plans page 7

p.7 Shopping List Superseded

⚠️ Adjust for our build
SUPERSEDED — use Shed_Orders.html instead. Our build replaces board-&-batten with ply + cedar shingles, runs 14 joist boards not 10, cuts rafters two-per-12-footer, and adds seam blocking, drainage, and sash. This page remains useful only as a cross-check of categories.
πŸ’₯ GotchaπŸ’Έ COSTLY
The most expensive wrong click in the project. Handing this page to the Lowe's pro desk as-is buys ~$1,100 of 1x12 pine siding and battens our build doesn't use, plus full-dimension assumptions throughout. If anyone ever “helpfully” orders from the plans directly — this is the page that burns.
πŸ’₯ GotchaπŸ’Έ COSTLY
The floor ply count on this page is wrong — by the plans' own math. This list says 3 sheets of ¾ CDX; the layout on p.21 (2 full + 2 half + 2x8 + 2x4 = 120 sq ft) requires 4. Same class of self-contradiction as the metal panel count (8 here-ish vs 10 on p.7 vs 12 real). Found July 2026 (audit F8); orders corrected to 4. Moral: when a shopping-list count and a layout diagram disagree, the diagram is the one doing geometry.
πŸ” Why they do it
'Wall framing: 1x4x8, qty 1' looks like a stray. It's the door header stock (the 62½″ flat 1x4, p.24). The lists are exhaustive, just tersely labeled — every odd line item has a home.
πŸ›  Technique
The hardware column survives contact with our build. Hinges, latches, bolts, hooks — still the definitive count. Cross-check quantities against Order 3 before final purchase.
Plans page 8

p.8 Specifications Reference

βœ… Sound as written
187½″ — they did the trig so you don't have to. That's the exact diagonal of a squared 120×144 rectangle. Equal diagonals = square, no math in the yard. This one number, checked once in Phase 2, is what makes the metal roof fit in Phase 4 (p.36 says so in as many words).
πŸ” Why they do it
'No bottom plate' is a feature, not an omission. Post-and-beam drops loads through posts straight to the deck. A bottom plate would add nothing structurally and become a rot shelf at the door threshold. It also means the deck itself is the wall-layout surface — posts toenail directly to their chalk marks.
πŸ” Why they do it
'Blind nail posts when possible'. Nail the faces that siding will cover; keep visible faces clean. Aesthetic discipline — the interior of this shed is finish surface.
⚠️ Adjust for our build
Heights shift ½″; openings don't. Wall height 78→77½ with store lumber. The ROs hold as printed: door 62½×73, windows 24½×24½ (±¼ forgiven per p.31). Hold openings by their forming faces; let everything else float.
πŸ›  Technique
'Run siding wild and cut in place' — the house philosophy. Applies equally to our ply, trim, and shingle courses: build to the building, not to the print.
πŸ’₯ Gotcha
'Do not let battens sit in rain' generalizes. Battens are moot for us, but the lesson isn't: thin flat stock (trim, stops, door boards) moves fast when wet. Store it flat and dry; prime all faces before exposure where possible.
Plans page 9

p.9 Hardware & Nails Reference

βœ… Sound as written
Their three-nail taxonomy is exposure logic. Bright 16d where hidden, galvanized 16d for exposed 2x, galvanized 6d for exposed 1x. Sound system — we keep the logic and upgrade the metallurgy.
⚠️ Adjust for our build
Our translation, DECIDED July 2026 (full schedule in Nail_Guns_and_Fasteners.md). Gun framing: 3″ × .120 ring shank HDG, 21° plastic, with the +1 rule — one extra nail wherever the plans specify a 16d count at a primary joint (e.g., 4 per joist end, not 3). Why not their fat 16d common? The ring shank out-grips it on withdrawal — the failure mode PT back-out and wind uplift actually test — and the extra nail erases the skinny shank's ~⅓ shear deficit at joints already carrying 3–5× margin. Hand-drive loose 16d (3½) at: plate-to-post half-laps (1¾ lap + end-grain bury outruns a 3″ nail), visible blind-nail faces, fascia/shadow. Sheathing/ply/strapping: 2″ × .113 ring HDG. Stainless coils on cedar shingles (deferred to the Phase 5 coil gun); stainless 15ga + 18ga near glass; cap nails for housewrap. HDG everywhere — nearly all our framing is PT, their hemlock wasn't.
πŸ’₯ GotchaπŸ’Έ COSTLY
Two corrosion mismatches that fail silently. Bright or electro-galv nails in PT lumber (modern copper chemistry corrodes them) and galvanized into cedar (permanent black tannin streaks down your silver shingles). Both look fine on day one; both are unfixable later.
⏱ Time & tools
This page is the case for the compressor. ~350 16d + ~1,500 6d + ~1,540 shingle nails. Hand: roughly 30+ hours of swinging across the build. Gunned: ~10. The ledger at the end of this file shows the arithmetic.
Plans page 10

p.10 Cut List β€” Floor & Walls Phases 2–3

πŸ’₯ GotchaπŸ’Έ COSTLY
THE rule: never batch-cut this list. Infill lengths assume full-dimension stock. Joists print 116½ but must be 117 with 1½″ rims; every between-members piece on p.11 shifts ¾–1″. Batch-cutting the list on day one is the classic way to ruin $150 of lumber before lunch. Absolute lengths (144, 120, 74) stand; infill gets the tape.
πŸ” Why they do it
Their own math admits the variance. 116½ + two rims = the required 120 only if rims are 1¾″ thick — even JCS's “2-inch” hemlock isn't. The design absorbs loose stock by fitting in place. Ours will too.
⚠️ Adjust for our build
Floor quantities changed. Joists: 7→10 (16″ o.c.), all cut 117. Blocking: cut to fit (~14½ at our spacing).
πŸ”— Dependency
The rafter header row feeds Appendix A. 66-5/8 length, 26.5°, seat cut 66.63 — all computed for full-dimension stock and a 1″ ridge (p.40 confesses). Flag it now; act on it at p.28.
πŸ›  Technique
Part-number grammar. Material.size.length.role (p.4 explains). H.0206.11612.FJ = hemlock 2x6, 116-1/2, floor joist. Fluent reading of this list takes five minutes and pays all build long.
Plans page 11

p.11 Cut List β€” Walls & Siding Phase 3

⚠️ Adjust for our build
The four conversions that matter on this page. Nailers 66→66¾ · rear nailer 112→113 · door blocking & front nailers 20¾→21¾ · door posts: ignore printed stations, set inner faces at 28¾ / 91¼. Window studs stay 24½ but positions shift to hold the RO (inner faces 20¾/45¼).
⚠️ Adjust for our build
The whole SIDING (green) section is moot. Cedar shingles over ply replaced 1x12 board-&-batten. Keep it for curiosity: the gable siding lengths (95→119→95) encode the roof geometry in stair-steps.
πŸ›  Technique
Decode the length notation before cutting anything angled. “Long point to long point” vs “long point to square” = which end of an angle cut the dimension reaches. Misreading it silently adds or loses an inch on every angled part.
Plans page 12

p.12 Cut List β€” Roof & Trim Phases 4–5

⚠️ Adjust for our build
Rafters: speed square + test pair, not template trace. 14 @ 66-5/8 stands as a length; the layout method changes (p.28 and p.40 notes). Collar ties: cut angles in place against the actual ridge.
πŸ” Why they do it
'Strapping may be pieced in 2-foot increments' — terse elegance. Rafters sit 24″ o.c., so any joint on a 2' module lands on a rafter. One sentence encodes the whole splicing rule.
πŸ”— Dependency
This page's trim splits across two of our orders. Fascia + shadow cedar ride in Order 2 (needed before metal roofing, p.30); corner/window/door trim waits for Order 3. Don't order it as one batch.
πŸ›  Technique
Collar ties are cut at a different angle than rafters — on purpose. Note the distinct template callout. The tie lies flat against rafter faces, not parallel to the roof plane. p.29 explains; don't 'correct' it.
Plans page 13

p.13 Cut List β€” Ramp, Extras & Bracing Reference

βœ… Sound as written
An 'extra lumber' section in a pro BOM. Overage as a first-class line item — the same philosophy as our 5% estimate buffer and spare blocks.
πŸ” Why they do it
Temporary bracing has its own part numbers. Four 1x4x92s and a 12-footer, cataloged like structure — because to these builders bracing IS structure (until the roof's on). Ours: six reusable furring 1x4s in Order 2.
🏠 Gibson St
Ramp stock unchanged for us. PT 5/4 decking + 2x6 stringers, cut to the actual grade south of the door. Needs the 5' level apron (Appendix C) — our benched site already provides it.
Plans page 14

p.14 Millwork, Hardware & Roofing Reference

⚠️ Adjust for our build
'JCS double door, 2″ thick, preassembled' — ours differs twice. We build Appendix B doors at 1½″ from store ¾ stock, each with a fixed 6-light sash lite (guide, Phase 5). Same RO, same hardware, more daylight.
πŸ’₯ GotchaπŸ’Έ COSTLY
Even their lists disagree on panel count — 8 here, 10 on p.7. The difference is assumed panel coverage width. Box-store 24″-net panels need 12. Compute from the actual panel spec: 144″ of ridge per side ÷ net coverage. Inheriting either printed number risks a short roof and a second delivery fee.
⚠️ Adjust for our build
Barn sash: 2 becomes 4. Two wall windows (as here) plus two door lites — salvage lot (≤24″ wide for the doors) or new with the specialty order.
πŸ›  Technique
1,500 6d nails here vs '8 lbs' on p.7. Same quantity, two units (~190 nails/lb). The lists cross-check each other if you know the conversion.
Plans page 15

p.15 Floor Plan Reference

🏠 Gibson St
This drawing is the orientation contract. For our lot: door wall = SOUTH, both windows on the WEST long wall, blank east wall against the fence, vent in the NORTH gable. Every coordinate we've fixed (conduit stub SE at 6″/9″, drain exit SW) is referenced to this plan held in that compass.
πŸ”— Dependency
Both windows on ONE wall is a choice with consequences. The windowless bearing wall gets both angle braces (p.26) and becomes the natural full-length shelving/workbench wall. Picking the window wall = picking the storage wall. Ours: windows west, storage east.
⚠️ Adjust for our build
Window ROs are conditional now. If the salvage sash lot is in hand before Phase 3, frame each window RO to its actual sash + ½″; otherwise the printed 24½ squares stand for new barn sash.
Plans page 16

p.16 Site Preparation Phase 1

🏠 Gibson St
This page assumes near-grade siting; ours is a benched tub. The gravel/blocks/skid steps all still govern, but our recess in clay adds the drainage layer this page doesn't need: E/S-toe collector → SW daylight, geotextile separation, root bridge. Site Reference in Order_Plan v2 is the as-built version of this page.
βœ… Sound as written
'Do not level the skids at this time' — obey it. Leveling happens ONCE, at the completed deck frame (p.25 step 1), where a shim moves the whole system. Leveling skids early means doing the job three times and still finishing unlevel.
πŸ” Why they do it
Skids inset 10″ — three birds, one setback. It shortens the joist clear span to ~7'5″ (why nominal 2x6 floors work), tucks the blocks into the shadow line, and keeps bearing points away from roof-drip splash.
βœ… Sound as written
Six blocks is not stingy — it's ~1,000 psf per block. Loafing, on compacted gravel. Resist the urge to 'improve' with more points; more points = more chances for one to be proud and rock the frame.
πŸ’₯ Gotcha
'Proportionately placed' means measured, not eyeballed. Ends 11–13″ in, ~6' spacing, then laser the TOPS as one plane. A block ¾″ proud now is a floor hump you chase through every later phase. Site-specific: the middle pair goes NORTH of the oak root — see the Foundation Component Locations appendix for the three station positions.
πŸ›  Technique
The 45° skid bevels are drag ramps, not joinery. “Rough cuts… can be done with a chainsaw.” They let the building be skidded (hence the name) and re-leveled later. Bevels face down-and-out — 1½″ down from the top, 45° out to the bottom, which is 2″ of run on our stock. The skid lies FLAT (p.16 fig 3 dimensions the side face 4″ and the top face 6″): 5½″ wide × 3½″ tall in store lumber, not on edge.
πŸ›  Technique
Every foundation component's location, two ways. x,y from the walls AND member-to-member dimensions that survive an out-of-plumb perimeter — skids, blocks, anchors, and the as-built conduit stub — in the Shop Appendix: Foundation Component Locations.
Plans page 17

p.17 Optional Concrete Slab Not our path

πŸ” Why they do it
Why we passed on the slab (for the record). Atlanta clay moves seasonally; blocks re-shim in minutes, a slab is forever wrong once it tilts. A slab here would also have poured right over the oak root — either entombing it or being cracked by it. The blocks-plus-skids default (p.46: 'the majority of our buildings') was the right call.
Plans page 18

p.18 Optional Concrete Slab (cont.) Not our path

πŸ›  Technique
File away, don't use. If a slab outbuilding ever happens elsewhere on the lot, this two-page recipe is competent: note the 12″ thickened perimeter, interior trenches under skid lines, and the mesh-on-bricks detail.
Plans page 19

p.19 Pier Configuration Not our path

πŸ” Why they do it
'Dig down 48 inches' is Vermont talking. That's their frost line. Atlanta's is under 12″ — one of several places these plans quietly assume New England. (Same reason their drainage advice needed our climate translation.)
πŸ›  Technique
The one transferable gem: the 154″ diagonal. Same equal-diagonals discipline as the deck, applied to foundation points. We do the identical check on the block layout with the laser.
Plans page 20

p.20 Deck Framing Phase 2

βœ… Sound as written
The crowning sidebar is the best paragraph in the plans. Every stick has a crown; sight it before nailing and point it UP. Loads flatten crowns over time; gravity deepens sags. Sixty seconds of sighting per board is the entire discipline.
πŸ’₯ GotchaπŸ’Έ COSTLY
Crowns down = a permanent dish in your floor. Even two of ten joists installed crown-down print a hollow into the plywood that no amount of later work removes. This is the cheapest costly mistake on the list: it costs literally nothing to avoid and a floor to commit.
πŸ” Why they do it
'Do not nail joists to skids until the deck has been squared'. Toenails come LAST because the tacked frame must slide to square. Nail early and you've locked in a parallelogram. The two-nail corner tacks are pivot points, not fasteners.
πŸ›  Technique
Full assembly sequence written out. The complete step order for this page β€” skids, rim cribbing, tack, square, nail-off, toenail β€” is in the Shop Appendix: Deck-Frame Assembly Sequence at the end of this document.
⚠️ Adjust for our build
Our floor: 117″ joists at 16″ o.c.. Ten joists, not seven; same rims, same skids, same sequence. Layout from one end with the tape's red 16s.
πŸ›  Technique
Four gun nails per joist end, through the rim (their three 16d, translated with the +1 rule). End-nail through the rim face into the joist — the rim is the nailing fixture. 3″×.120 ring HDG; sequential trigger.
Plans page 21

p.21 Deck β€” Square, Block & Ply Phase 2

πŸ’₯ GotchaπŸ’Έ COSTLY
The highest-leverage sixty seconds of the whole build. Diagonals to 187½″ — equal, then nail off. p.36 states the debt this check secures: “If the building is out of square the metal roofing will not fit.” A mallet tap today, or a sawtooth metal roof and gable gaps in Phase 4. There is no later fix that costs less.
πŸ” Why they do it
'If it has grown, cut the last block to fit'. The plans' tolerance philosophy in one line: the deck's ACTUAL size outranks the print from this moment on. Every later measurement references the building, not the drawing.
πŸ”— Dependency
Blocking rows at 4' = plywood seam landings. The same 48″ module logic our WALL sheathing needs blocking for (p.27 note) — sheets are 4' animals; frames must offer wood on that module or get blocking added.
βœ… Sound as written
The interlocked ply pattern looks fussy; cut it anyway. 2 full sheets + 2 half + 2 quarter-ish pieces stagger every seam. That's the floor's shear diaphragm doing its job — a simpler layout with aligned seams is measurably weaker.
🏠 Gibson St
Cut the conduit riser hole as its sheet goes down. SE corner: 6″ off the east building face, 9″ off the south. Hole saw, then the sheet drops over the standing riser.
⏱ Time & tools
~450 floor nails. PFR2190 framing gun with 2″×.113 stick rings: ~40 minutes. By hand: ~2½ hours and a sore elbow before the fun parts start.
Plans page 22

p.22 Setting the Posts Phase 3

⚠️ Adjust for our build
Half-laps: cut 3½ long × 1¾ deep. Theirs are 4×2 for full-dimension beams. Clamp both bearing-wall beams side by side and cut laps in one setup — identical joints, one layout.
πŸ” Why they do it
'Laps facing up' + 'rafter layout marked, placed layout up'. The beam is pre-loaded with information for p.28: rafter positions get marked NOW, on the ground, where marking is easy — not later from a ladder. Fussy-looking orientation notes are pre-answered questions from six pages ahead.
πŸ›  Technique
Toenailing 4x4 posts without walking them. Start nails 1½″ up the post at ~60°, brace the post against your boot on the layout line, and alternate sides — each toenail pushes the post; opposing nails cancel the drift.
πŸ’₯ Gotcha
Blind-nail means plan your faces. Nail the two faces siding will cover; the two visible faces stay clean (hand-nail there if needed — a deflected gun nail blowout on an interior show face is forever).
Plans page 23

p.23 Wall Construction Phase 3

βœ… Sound as written
Gable plates lap DOWN — the frame locks itself. Bearing laps face up, gable laps face down: the gable beams drop in and gravity holds the corners interlocked before a single nail. It's a timber-frame instinct scaled to a shed.
⚠️ Adjust for our build
Converted lengths on this page. Nailers 66¾ (tops at 34–36″ — they'll form window sills on the west wall), rear gable nailer 113. Center posts at 72″ o.c. unchanged.
πŸ’₯ Gotcha
The pink note is a sequencing law. Angle braces only AFTER temporary bracing has plumbed the frame. A diagonal nailed to an unplumbed wall memorizes the lean permanently — it's a brace holding the building wrong.
Plans page 24

p.24 Front Wall & Door Framing Phase 3

⚠️ Adjust for our build
Hold the RO, ignore the stations. Door post INNER faces at 28¾ and 91¼ (printed stations assume 4″ posts). Door blocking cuts 21¾, not 20¾. The 62½×73 opening is the only sacred number on the page.
πŸ” Why they do it
A 1x4 header where a house would need a 2x10. Nothing bears on a gable-end opening — the roof loads travel the side walls. The flat 1x is just the RO ceiling and trim nailing. Under-built-looking, correctly sized.
πŸ”— Dependency
This opening meets the doors you build in Phase 5. Doors finish 5/8″ under the opening (p.45) — measured from the FRAMED opening, not the plan. Write the as-built RO on the wall stud the day you frame it.
Plans page 25

p.25 Temporary Bracing Phase 3 β€” respect this page

βœ… Sound as written
Pros brace MORE than amateurs, not less. A full page on scaffolding-grade caution from people who've built thousands of these. “Walls are properly braced when it is possible to walk on them” is a literal test — apply it.
πŸ” Why they do it
The 12' wall-to-wall spreader is a fake collar tie. Rafters thrust the bearing walls APART until collar ties and sheathing close the triangle. The spreader holds the span exactly at 12' while rafters land. Install it FIRST, before plumbing (their step 2).
πŸ’₯ GotchaπŸ’Έ COSTLY
Removing braces early is how sheds go rhomboid. The plans repeat 'do not remove until roofing is complete' on four separate pages — a measure of how often people do it anyway. One gust on an unbraced, unroofed frame and every subsequent piece inherits the lean. Braces come down in Phase 5, last.
πŸ›  Technique
Bracing craft in three details. Don't sink the nails (they're coming out); keep brace tops below the plate line (rafters need the airspace); nail blocks to joists as anchor points rather than nailing into the deck field.
🏠 Gibson St
'Step back 50–100 feet and sight it'. Our fence corner denies the standoff on two sides — sight the east wall down the NW diagonal instead, and trust the level where the eye has no room.
Plans page 26

p.26 Window Framing & Angle Braces Phase 3

⚠️ Adjust for our build
RO chain, converted. Headers 66¾ with bottoms at 60½; sill nailer top at 36; studs 24½ with inner faces at 20¾/45¼. Salvage sash in hand → frame to sash + ½ instead.
πŸ” Why they do it
Braces only on blank walls — and why ours matter less. Openings and diagonals can't share a wall, so in the stock design the SIDING provides those walls' shear. In our build the ply sheathing shears every wall regardless — the 4x4 braces become redundancy plus interior character. Install them anyway; they're cheap and they look right.
πŸ›  Technique
Window studs hang; they don't bear. End-nailed through the nailer below and header above (2 16d each end). Sequence: horizontals first, studs after — they're infill between rails, not columns.
Plans page 27

p.27 Siding the Bearing Walls Phase 4

⚠️ Adjust for our build
Our wall system rides on this page's geometry. ½″ ply + housewrap + cedar shingles replaces 1x12 boards — but the page's two numbers still govern: top edge 1¾″ above the plate (it becomes the rafter stop), bottom lapping the rim with a ¼″ drip. Nail lines still land on rims, nailers, plates.
πŸ” Why they do it
The proud top edge is a full-length rafter jig. “The rafters will butt against the siding.” No measuring rafter positions off the wall face — drop the rafter, slide it to the siding, nail. The plans convert a precision problem into a contact problem. Keep the trick with ply.
πŸ”— Dependency
The seam problem their siding never had. 1x12s nail anywhere; 4x8 sheets need backed edges, and posts at 72″ o.c. don't match the 48″ module. Flat 2x4 seam blocking (Order 2) goes in before sheets. Same module-mismatch lesson as the floor's 4' blocking rows.
πŸ›  Technique
'Run a cut line 1.75 across the top' — cut proud, trim in place. They nail siding long and snap-cut the top line afterward. Works identically for the ply row: hang, snap, saw. Straighter than measuring 10 sheets individually.
⏱ Time & tools
Eleven sheets, gunned. ~1 hour with the PFR2190 framing gun (2″×.113 HDG stick rings) at 6″/12″ schedule vs ~3 by hand. Depth check first — overdriven heads through the face veneer forfeit shear (the whole reason the ply is there).
Plans page 28

p.28 Setting the Rafters Phase 4

πŸ’₯ GotchaπŸ’Έ COSTLY
One test pair before thirteen copies. Cut a pair, stand it on the actual building with a ridge offcut sandwiched at the peak, check peak closure and seat contact — THEN batch. Fourteen rafters miscut to a bad pattern is ~$100 of lumber and a lost weekend. (Appendix A's own protocol agrees; we just insist on a pair, since peak geometry needs two.)
⚠️ Adjust for our build
Layout by speed square, not template. 26.5° plumb cut, 66⅝″ long-point-to-seat down the top edge, 3½″ seat for our plates, ≥4″ of uncut depth at the heel. The paper templates assume 6″-deep stock and a 1″ ridge (p.40).
πŸ” Why they do it
'One front, then one rear' fill order is self-truing. Alternating sides keeps the ridge from bowing under one-sided loading as pairs go up. It looks like extra ladder trips; it's a straight ridge for free.
βœ… Sound as written
The p.22 homework pays off here. Rafter positions were marked on the beams on the ground, layout-up. Setting rafters becomes land-on-the-mark, butt-to-the-siding, nail — no measuring at height.
πŸ›  Technique
Nailing pattern at both ends. Seat: two 16d toenails per side into the plate. Ridge: end-nail through the ridge into the rafter (three per), letting opposing pairs clamp the ridge between them. End grain holds poorly alone — the opposition is the joint.
Plans page 29

p.29 Collar Ties, Gable Siding & Strapping Phase 4

πŸ” Why they do it
Ties on the five interior pairs only. The gable-end pairs are already restrained by the gable walls themselves. The ties close the thrust triangle the temporary 12' spreader (p.25) has been faking — which is why the spreader can't come out early.
βœ… Sound as written
'Intentionally cut at a different angle than the rafters'. The tie lies flat against rafter faces rather than parallel to the roof plane. It looks wrong on the saw and right on the wall. Cut in place against reality.
πŸ’₯ Gotcha
Hold the top strapping course 2″ down from the ridge. The ridge cap screws (p.36) land through the cap's ribs into THIS course. Strap tight to the ridge and the cap screws bite air. Easy to miss, annoying to fix from a ladder with the metal half on.
πŸ›  Technique
Straightedge the eave courses. Fig. 4's level-against-the-siding check: no strap may sag past the wall plane, because corrugated metal telegraphs every bump beneath it. Two minutes per side.
⚠️ Adjust for our build
Gable 'siding' = our ply, cut flush to rafters. Trace the rake in place or on the ground from the test-pair angles. Vent cutout is far easier while the gable sheet is on sawhorses (see p.34 note).
Plans page 30

p.30 Fascia & Shadow Board Phase 4

πŸ”— Dependency
Fascia BEFORE metal — hard sequence. The panels overhang the shadow board 2″ (p.36); no fascia yet = nothing to register the overhang against. This is why the cedar fascia/shadow stock rides in Order 2 with the roofing, not with the Order 3 trim.
πŸ’₯ GotchaπŸ’Έ COSTLY
The straightedge check is not optional. “Set a straight edge along the roof strapping to make sure the roofing material clears the trim boards.” Fascia proud of the strapping plane by even ¼″ makes every panel bridge and oil-can at the eave — a dent line down the whole roof. Check three points per side before nailing off.
πŸ›  Technique
Your rafter pattern moonlights as the fascia miter guide. “The rafter patterns… contain the same angles for cutting the fascia on the gable ends.” Keep the test pair intact until all trim is cut.
⏱ Time & tools
~80 nails, deliberately by hand. 10d (3″) STAINLESS ring shank, hand-driven — this is the building's most visible trim: stainless because it's cedar (HDG bleeds black tannin streaks — Rule 2), and hand-driven because framing-gun heads mar the wood. (A 16d HDG ring was speced here originally, but that isn't sold at retail and would streak the cedar besides.) The one place slower is simply better.
Plans page 31

p.31 Corner, Door & Window Trim Phase 5

βœ… Sound as written
'Nail in pairs… avoid a bullet-holed look'. Work fastener pairs in unison across or down the board. Pure aesthetics, zero cost, and it's the visible difference between crafted and patched. Same rule inherited by our shingle coursing.
πŸ” Why they do it
The 1x5 jamb is a two-joint cover. It laps both the siding edge and the framing joint in one board. Their siding is a true 1″; our ply+shingle wall runs ~1¼–1½ — rip jamb stock to the actual as-built reveal.
βœ… Sound as written
Printed forgiveness. “It is ok if your rough opening does not match exactly… up to a ¼.” and door gap 5/8, varying with humidity. The plans absolve you in advance — measure, fit, move on.
⚠️ Adjust for our build
Stops near glass: stainless 15ga. Window stops, door stops, and our sash-lite stops all take the finish gun with stainless strips — hammer swings next to salvage wavy glass are how it dies.
Plans page 32

p.32 Hanging Doors & Windows Phase 5

πŸ” Why they do it
Top hinge down 12, bottom hinge up 14 — asymmetric on purpose. A door sags away from its top hinge toward the bottom latch corner; the pattern biases the hinges toward the loaded diagonal. Keep their numbers.
πŸ›  Technique
The chain bolt flip. Fig. 4: reverse the bolt's angle by opening the S-hook with pliers — don't bend the casting. A three-minute subtlety that saves a broken part and a hardware-store trip.
βœ… Sound as written
'Install your windows after the roof is done'. To prevent breakage during construction — doubly binding for us with irreplaceable salvage wavy glass. Sash stays boxed until Phase 5.
πŸ›  Technique
Barn sash conventions. Wider rail DOWN, hinges held 3″ in from edges, hook-and-eye holds it open AND closed. Our flattest salvage sash go here (operable duty); warp-tolerant ones become the fixed door lites.
🏠 Gibson St
Door hanging unchanged by the sash-lite mod. T-hinges, stops-with-door-closed, latch/foot bolt/chain bolt all per this page. The lite lives inside the leaf; the leaf hangs like stock.
Plans page 33

p.33 Building the Ramp Phase 5

πŸ” Why they do it
'Leave these two boards off until installation'. The gap is tool access for toenailing the stringers to the rim; the boards close it afterward. Sequencing drawn directly into the figure — easy to miss, obvious once seen.
πŸ›  Technique
Cut stringer angles to the actual grade. “If the ground is sloped… adjust the angles.” The 15° in the cut list is a starting point. Our south apron is level by design (Appendix C requires ~5' of level ground at the door), so the printed angle should survive.
Plans page 34

p.34 Installing the Vent Phase 5

πŸ” Why they do it
No framing behind the vent — and that's fine. “The vertical nailers above the top plate are not necessary.” A louvered vent weighs nothing; it hangs from the siding via its flange plus the 1x2 seal strip below. Light object, light fixing.
πŸ›  Technique
Cut the vent hole on the ground. The gable sheathing goes up as ply — trace and cut the vent opening while the sheet is on sawhorses, not from a ladder into a fence slot. (Our vent gable is the NORTH end — the tight side.)
⚠️ Adjust for our build
Flashing logic changes with shingles. Into shingle siding, treat the vent like a window: head gets protection (flange under the course above or a small head flashing), sides and bottom lap OVER the shingles with the 1x2 seal below. Water always steps down and out.
Plans page 35

p.35 Battens Superseded

⚠️ Adjust for our build
Page moot — shingles replaced board-&-batten. Nothing to install from this page. Two transferable habits survive it: nail in consistent pairs at consistent heights (the p.31 aesthetic), and never nail into knots — both apply verbatim to our cedar trim.
Plans page 36

p.36 Corrugated Metal Roofing Phase 4 β€” dry-in

πŸ’₯ GotchaπŸ’Έ COSTLY
The first panel is the whole roof. “The first sheet installed is the most important. It will dictate how the rest layout.” Square it to the eave line and gable edge, measure its overhang twice, and only then run the field. A 3/8″ skew in panel one compounds into a visible sawtooth eave and short coverage at the far gable — with 300 screws holding the mistake down.
πŸ” Why they do it
Screws in the flats; cap screws in the ribs — opposite rules, both right. Panel screws seal against flat metal backed by strapping. The ridge cap sits on rib crowns, so its screws must land in ribs — “screwing the ridge cap in the valleys will cause the metal to dent.” Two sentences that prevent the two classic metal-roof leaks.
πŸ”— Dependency
The p.21 debt, called in. “If the building is out of square the metal roofing will not fit. Each piece may need adjusting.” If the deck diagonals read 187½ back in Phase 2, this page is a victory lap. If not, this is where you find out.
⚠️ Adjust for our build
Panel count: compute, don't inherit. Their own lists say 8 (p.14) and 10 (p.7); box-store 24″-net panels need 12. 144″ of ridge per side ÷ your panel's net coverage. Last piece rips to width: score with a knife on the white side, flex to snap.
πŸ›  Technique
Gasket screws have a torque window. Dimpled washer = sealed; mushroomed washer = leak path you installed at 8″ centers. Set the driver clutch light and finish by feel. 1½″ screws into the strapping, panels overhanging the shadow board 2″.
Plans page 37

p.37 Optional Asphalt Shingle Roofing Not our path

πŸ”— Dependency
A note for the shed's future owners (possibly you). First line: asphalt requires SOLID sheathing. The strapped roof deck is metal-only — any future re-roof in shingles means sheathing the roof first. Worth remembering in 30 years when the metal finally tires.
Plans page 38

p.38 Asphalt Option (cont.) Not our path

πŸ›  Technique
Competent shingle instruction, filed away. The course-offset rules and ridge-cutting diagram are solid if this page is ever needed. Today it isn't.
Plans page 39

p.39 Build Photos Reference

πŸ›  Technique
Read the photos as a second set of drawings. Visible in this collage: collar-tie spacing and angle, temporary bracing STILL UP during roof strapping (the p.25 rule, photographed), the ridge/rafter junction, and hardware in place. When a written step feels ambiguous, a photo here usually settles it.
πŸ” Why they do it
Note what the interiors show: nothing. No insulation, no liner — exposed frame as finish surface. Our ply sheathing keeps that clean-interior look (back of plywood between posts) that drove the sheathing decision back in February.
Plans page 40

p.40 Appendix A β€” Cutting Rafters Before Phase 4

⚠️ Adjust for our build
The page that justifies half our addendum. Two admissions in the fine print: “Rafter lengths supplied are set up for full dimensional lumber” and “templates have been set up for a one inch ridge.” With store 2x6s and a ¾ ridge: same 26.5°, same 66⅝ length, 3½ seat — laid out fresh with a speed square, verified with the test pair.
βœ… Sound as written
Their protocol already contains the safeguard. Step five: cut one, test-fit, then use it as the pattern. We only strengthen it to a test PAIR — peak geometry is a two-rafter question. The instinct is identical: never let an unproven pattern breed.
πŸ” Why they do it
All rafter math lives on the top edge. “Hook a tape from the long point of the plumb cut and measure down the top of the rafter” — the top edge is the one uncut reference line on the board. Every dimension is measured along it, never down the face.
πŸ›  Technique
Crown rule, stated twice for a reason. Crowns away from you when tracing = crowns UP when installed. A crown-down rafter is a swayback roofline that the metal faithfully reports.
Plans page 41

p.41 Rafter Template β€” Plumb Cut Before Phase 4

πŸ’₯ Gotcha
Paper geometry drifts; angles survive, lengths don't. Any print or copy scaling silently resizes these templates. Treat them as angle references at most — and since a speed square gives you 26.5° (a 6/12 pitch) exactly, you don't actually need the paper at all.
Plans page 42

p.42 (Blank in original)

Intentionally blank in the original β€” no notes.
Plans page 43

p.43 Rafter Template β€” Seat Cut Before Phase 4

πŸ” Why they do it
The drawing that explains the proud-siding trick. Note the section view: seat on the plate beam, siding running up past the rafter's underside. This is p.27's 1¾″ reveal drawn from the side — the rafter registers against the siding (our ply), not against a measurement.
⚠️ Adjust for our build
Seat proportions changed with the lumber. Template assumes a 4″ bearing on a 6″-deep rafter. Ours: 3½ level cut on a 5½ board, keeping ≥4″ of uncut depth at the heel. Lay out, don't trace.
Plans page 44

p.44 (Blank in original)

Intentionally blank in the original β€” no notes.
Plans page 45

p.45 Appendix B β€” Making Doors Phase 5

⚠️ Adjust for our build
Our doors: same method, two changes. Built at 1½″ from store ¾ stock (theirs: 2″ from true 1″), and each leaf gets a fixed 6-light sash lite — top batten high, diagonal kept low, cutout = sash + ⅛, 1x3 interior ring glued+screwed, sloped drip-kerf sill stop. Full sequence in the build guide, Phase 5.
βœ… Sound as written
'Combined widths 2 wider and 3 longer… finish cut 5/8 less than the opening'. Build oversize, then cut true to the measured opening — the same wild-then-trim philosophy as the siding, applied to a door. It cannot come out wrong if you measure the real RO.
πŸ” Why they do it
Primary and secondary leaves are deliberately unequal. The secondary gets foot and pull latches and stays shut; the primary gets the 1x3 mullion strip that laps the meeting gap — the mullion IS the weatherstop between leaves. Handedness matters: put the primary on the side you'll approach with full hands.
πŸ›  Technique
The clamp choreography is the flatness insurance. Clamps a quarter in from each end BEFORE any screws; screws ¾–1″ from board edges so boards can move seasonally without splitting. A door screwed up unclamped is a potato chip by August.
πŸ’₯ Gotcha
Prime all six faces the week they're built. Especially end grain. An unfinished pine door slab is a moisture antenna — 'I'll paint after hanging' is how doors warp before they're ever hung.
Plans page 46

p.46 Appendix C β€” Site, Prep & Foundations Phase 1 context

βœ… Sound as written
The permit line, verified for Atlanta. “Most towns do not require a permit for a building less than 150 square feet” — Atlanta's accessory-structure exemption runs at 120 sq ft, and this shed is exactly 120. That sizing is not a coincidence; it's the product designed to the threshold. Setbacks are a separate question from permits.
🏠 Gibson St
'If the slope is greater than 6 inches, level in advance' — we benched instead. Our cut into the high corner is this sentence taken to its conclusion, with the tub-and-drain consequences managed (Site Reference). The 5'-of-level-ground-at-the-door requirement feeds the ramp (p.33) — grade the south apron before Phase 5.
βœ… Sound as written
Blocks are the manufacturer's own default. “It is economical and durable… This is the way the majority of our buildings are installed.” The gravel-and-blocks decision we defended from first principles is also simply what the builders do.
πŸ” Why they do it
'An improperly prepared site will void our warranty'. Even for plans-only customers, read this as: site prep failures are the dominant field failure they see. Water and out-of-level — the two things our Phase 1 spends nearly all its effort on.
Plans page 47

p.47 Appendix C β€” Care, Termites & Skirting Long-term

🏠 Gibson St
The fieldstone recommendation — our skirt's birth certificate. “We suggest a field stone foundation dry laid under the perimeter walls… a true country charm is created.” Ours wraps the timber wall's outside face with stones dug from this very site, SW grate framed open, 12″ margin kept clear, photos done before the first stone.
πŸ’₯ Gotcha
The airflow sermon is the #1 longevity variable. No stacking against walls, no debris, vegetation held back — from the people who see these buildings age. Our compliance plan is built in: the open 12″ margin, the stone-free interior, and the fence-slot cleaning discipline. The shed's lifespan is decided by whether these habits survive year three.
πŸ” Why they do it
'Leave the cottage to cure a season before treating' — mostly not ours. That's advice for green rough-sawn stock. Our cedar shingles get no finish ever (by choice); our pine doors and trim are kiln-dried and should be primed promptly (p.45 note), not seasoned.
🏠 Gibson St
Termite shield detail, drawn. The 2″ overhang bent down 45° between block and skid — this is the flashing spec our Order 1 aluminum roll fulfills. In Georgia this sketch earns its page space several times over.
πŸ” Why they do it
An honest disclosed tradeoff: strapping gaps vs pests. They admit corrugated-over-strapping leaves eave gaps that mud daubers and wasps enjoy, and offer solid sheathing or asphalt as the alternative. We keep the strapping (ventilation, cost, the classic look) and accept the tenants — or screen the eave gaps with hardware cloth in an afternoon if they annoy.
Plans page 48

p.48 Plans Order Form β€”

πŸ›  Technique
Historical charm, plus useful context. $50 a set, circle your model, fax it in. The lineup also places our build in its family: the 8x12 Church St and 10x14 Vermonter share this exact construction system — anything learned here transfers if a second outbuilding ever happens.
Plans page 49

p.49 Photo Collage (unnumbered) Reference

πŸ›  Technique
Three photos worth studying. The labeled lumber stacks (right side) show the write-on-every-piece habit at production scale; the roof-framing shot shows bracing still standing under finished strapping; the interior shots show the exposed-frame finish our sheathing choice preserves.

πŸ”— Through-Lines β€” the dependency chains, end to end

The Square Chain

Level pad (p.16) → deck diagonals 187½ (p.21) → level deck before plumbing walls (p.25) → rafter pairs meet (p.28) → “if the building is out of square the metal roofing will not fit” (p.36). Squareness is purchased once, at the deck, for the price of a tape measure and a mallet tap. Every page after either inherits it or pays interest on its absence. This is the single most important dependency in the document.

The Proud Siding Chain

Siding runs 1¾ above the plate (p.27) → rafters register against it instead of against measurements (p.28, drawn in section on p.43) → gable siding cuts flush to the set rafters (p.29) → fascia cuts flush to the gable siding (p.30). One reveal dimension turns four measuring problems into four contact problems. Our plywood inherits the siding's role unchanged.

The Layout-Up Chain

Half-laps up + rafter layout marked on the beams on the ground (p.22) → gable plates lap down and lock the corners (p.23) → rafters land on pre-made marks at height (p.28). Every fussy orientation instruction in Phase 3 is a question from Phase 4, answered early where answering is easy.

The RO Chain

ROs declared (p.8) → millwork sized to them (p.14) → framing forms them by their inner faces (p.23–26) → trim forgives ±¼ (p.31) → doors and sash built 5/8 under the measured opening (p.45, p.32). Hold the openings; let every other number float. With dimensional lumber this rule does even more work than the authors intended.

Fascia Before Metal

The 2″ panel overhang (p.36) is registered against the shadow board (p.30) — so trim precedes roofing, which is why the cedar fascia stock rides in our Order 2 with the metal rather than with the Order 3 trim. A purchasing decision encoded in a construction sequence.

Braces Until the Roof

Installed and tested in Phase 3 (p.25), explicitly kept through siding (p.27 box), trim (p.31 box), and roofing — removed as nearly the last act of Phase 5. Repeated on four pages because it is the rule most often broken, always expensively.

Our Additions to Their Chains

Trench before gravel · conduit before trench · salvage sash before Phase 3 (windows only — door lites never gate) · as-built photos before the stone skirt. Same grammar as theirs: do the cheap thing while it's cheap.

⏱ Time Ledger β€” hand vs gun, honest arithmetic

TaskBy handGunnedSaved
Floor plywood (~450 nails)2.5 h0.7 h~2 h
Framing: floor, walls, roof (~400 16d incl. toenails)6 h2 h~4 h
Wall sheathing (~700 nails)3 h1 h~2 h
Roof strapping (~120 nails, on ladders)1.5 h0.7 h~1 h
Cedar shingles (~1,540 nails, coursed)18 h6 h~12 h
Stops & small trim1.5 h0.7 h~1 h
Total~32.5 h~11 h~21 h

Estimates for a careful novice, including course layout and depth checks. Deliberately excluded: fascia (~80 nails, hand-driven by choice — see p.30), doors and hardware (screws by design). The honest summary: the gun arsenal converts roughly half a week of hammer swinging into a day and a half of trigger work, with the biggest single dividend on the shingle wall.

πŸ’Έ Costly Gotcha Index β€” the expensive mistakes, in one list

Shop Appendix β€” Deck-Frame Assembly Sequence (Gibson St method)

Referenced from p.20. Combines the plans' p.20–21 sequence with the site decisions of July 2026. The key site fact the plans never mention: the skids sit 10ΒΌ" inboard of the deck edges, so the rims float in air off the joist ends. The fix is to set the end joists first and let them carry the rim corners β€” the rims then need cribbing only at mid-span, and the whole frame assembles on a table instead of in mid-air.

  1. Skids on the blocks β€” cut 144" (Β±ΒΌ"), laid FLAT (5Β½" wide Γ— 3Β½" tall), bevels down-and-out, centered on the block stations. Set to 99Β½" outside-edge-to-outside-edge and 88Β½" inside-edge-to-inside-edge β€” check both, never the centerline. Rough position only; no leveling yet.
  2. Mark the joist layout on both rims β€” together, on sawhorses, before anything is set. Crown both rims and mark the crown direction. Pick one end as the reference and write “S” on both β€” the same physical end of the building. Clamp the two rims face-up with ends flush, hook the tape on the S end, and mark at 15ΒΌ", then every 16" (15ΒΌ, 31ΒΌ, 47ΒΌ …), squaring each line across both rims at once. Put an X on the north side of every line β€” the line is the joist’s near edge, the X says which side the body goes; this is the convention that prevents a floor built 1Β½" off. Why 15ΒΌ and not 16: it puts joist centers on 16 / 32 / 48 / 96, so plywood seams land on a centerline with ΒΎ" of bearing each side. Marking the rims separately guarantees they disagree by a sixteenth here and there, and every joist ends up slightly out of square.
  3. Perimeter rectangle β€” end joists FIRST. Set the two end joists (117", crowns up) on the skids at the layout ends; they span both skids and are fully supported. Bring a rim to an end joist, clamp the corner (removable clamps β€” the corner must still pivot), check the top edges flush, and tack with exactly two nails through the rim face into the joist end grain. Two, not one (one spins) and not more (the corner is a hinge until the diagonals match). Repeat at all four corners. Each rim is now held at the right height by the joists themselves.
  4. Rim cribbing β€” mid-span only (two stacks, one under each rim; the corners are already carried by the end joists). Target height is the skid top: 7Β½" above the gravel (4" block + 3Β½" skid). Flush or β…›" shy, never proud β€” a proud crib lifts the rim and cocks every joist it touches. Build-ups that hit it: a solid block (4") + a 4x6 offcut laid flat (3Β½") = 7Β½" exact; or a solid block + two 2x6 flat (3") + a β…œ" shim; or five 2x6 laid flat. Material note: cribbing is not blocking β€” the never-pre-cut rule applies to pieces that must fit an opening, and a crib fits nothing, so cut it ahead from scrap. Ten of the fourteen 2x6x10 become joists and three cover the blocking, so the fourteenth stick is genuinely spare β€” that is the cribbing stick. Nest the bottom piece into the gravel to fine-tune.
  5. Interior joists: stand the remaining eight on the layout marks, crowns UP β€” sight every stick, sixty seconds per board is the entire discipline β€” and tack each end with one or two nails. Work from outside the frame; a tacked grid doesn't take kindly to a knee dropped mid-span. Keep each joist flush to the rim top as you tack β€” ΒΌ" proud telegraphs through the plywood like a crown-down board.
  6. Square by racking: measure both diagonals; push (or tap with a sledge through a wood block) on the corners of the long diagonal until both read 187Β½" (true value 187.44" β€” what matters is that the two are equal to each other). The rims slide across the crib tops; if a crib topples, kick it back and re-seat it. Re-check after the last adjustment β€” racking usually overshoots.
  7. Nail off: every joist end up to four 3"Γ—.120 ring HDG through the rim (the plans' three 16d, translated with the +1 rule), including topping up the corner pairs. The square is now frozen.
  8. Toenail joists to skids β€” two per crossing (10 joists Γ— 2 skids = 40 toenails), 3"Γ—.120 HDG ring from the framing gun, sequential trigger (bump-fire skates the nose off a toenail). One nail from each side, opposing β€” that is the mechanism, not a detail: a pair of opposing toenails pinches the joist down onto the skid and locks it against sliding either way, while two from the same side simply walk the joist off its layout mark as you drive them. Start each about 1ΒΌ" up from the joist-to-skid intersection at roughly 45Β°. Drive one, re-check the joist is still on its mark, then drive the opposite; tap it back first if it crept. Have the second person hold or foot-block the joist β€” a held joist takes the nail, a loose one moves. ⚠ Before the first toenail, re-verify the skid positions (99Β½" outer, 88Β½" inner): the skids sit on slick aluminum shields and can scoot during racking, and toenailing is the step that freezes the geometry permanently. Only now β€” toenail early and you have bolted in a parallelogram.
  9. Blocking rows at the 4' chalk lines, each block cut to fit its own bay, flush to joist tops.
  10. Pull the cribbing out. It must be gone before leveling β€” a forgotten crib is a hard point that fights the jack β€” and permanently, the rims are designed to hang from the joist ends; nothing bears there long-term.
  11. LEVEL THE DECK β€” jack + shims at the block stations. The checkpoint everything above depends on. Shim spec: ⚠ not tapered carpenter’s shims β€” the cedar/pine wedges sold for door jambs crush, split and squeeze out under a building, and a taper bears on a line instead of an area. Use flat, full-bearing, rot-proof, non-tapered stock: asphalt shingle scraps (~β…›" each, the classic), composite-decking offcuts or plastic structural shims, or PT squares you cut to about 5Β½" Γ— 8" so the whole bearing footprint is supported; aluminum flashing for anything under 1/16". They go on top of the block, UNDER the termite shield β€” the shield has to stay in direct contact with the skid or termites walk around it. Never wedge-shaped: if a block top isn’t parallel to the skid, re-seat the block. More than ~Β½" of stack at any block means that block is wrong β€” pull it, adjust the gravel, re-seat. Jack on a plywood pad on the gravel, lifting under the skid, never under the rim (the rim will just bend): lift ΒΌ", slide the shim, lower onto it, re-read.
  12. Rig the four ground anchors (turnbuckle topside per the standing config), snug in opposite pairs β€” before wall framing makes the structure a sail.
  13. ΒΎ" ply perpendicular to joists, staggered, 6"/12" nailing with the 2"Γ—.113 ring sticks β€” conduit riser hole cut as its sheet goes down, drilled directly over the stub (all the slack is on the rim side).

The tacking rule in one line: two nails per corner and one per interior joist end are pivot points, not fasteners β€” their career as hinges ends the moment the diagonals match, and any extra nail driven before that is a nail you'll be pulling out of end grain.

Shop Appendix — Foundation Component Locations (as-built record)

Two reference systems, on purpose. The x,y columns measure from the timber-wall INSIDE faces at gravel height (interior 142½″ E–W × 166½″ N–S) — that is how the layout was built. But the perimeter is not guaranteed plumb or straight forever, so the member-to-member dimensions are the durable record: once the skids are set, every component locates off skid faces and skid ends; once the deck exists, off the deck edges. When wall-measure and member-measure disagree, the members win.

Skids (4x6 laid FLAT — 5½″ wide × 3½″ tall — 144″ long, bevels down-and-out)

Outside edge to outside edge (measure this)99½″
Inside edge to inside edge (measure this too)88½″ — the two edge measures differ by exactly twice the skid width (11″). If they disagree, the skid isn’t the size you think it is.
Centerline to centerline (derived — do not measure)94″ — the plans’ value, preserved. Our skid is ½″ narrower than the plans’ full-dimension 4x6, and that loss is split evenly: overhang 10¼″ (vs 10″), clear span 88½″ (vs 88″).
x,y for layout onlycenterlines ~24¼″ off each side wall · runs y 11¼″–155¼″ · ±½″ fine — the deck squares itself on top. Length 144″ ±¼″: nothing mates to a skid end. Corroboration: the plans’ own pier alternative (p.19) puts its supports 13″ in from the deck edge — exactly where the balanced skid centerline lands (10¼″ overhang + 2¾″ half-width).

Blocks (6 — 3 per skid, PAIRED) — 16″ dimension ACROSS the skid, 8″ along it

Both skids get identical stations, so every station gives you a cross-pad pair to measure. All edge-to-edge numbers below assume the 16″-across orientation. If a block is ever re-set 8″-across, the cross-pad numbers change to: outside-to-outside 102″, inside-to-inside 86″ (centers unchanged).

Why 16″ ACROSS the skid and not along it: placement tolerance, not bearing. Across, the skid can wander ±5″ and stay fully carried; along, only ±1¼″ — and these skids sit on slick shields, get nudged during racking, and are positioned by string rather than a jig. The bearing argument you would expect does not apply: at ~1,500 lb per block the 5½×8″ contact patch runs 34 psi against ~565 psi allowable for PT SYP in compression perpendicular to grain — 6% of capacity, so doubling the area buys nothing. The one honest point the other way: 16″ along would support 16″ of skid instead of 8″, slightly shortening the clear span. Second-order — center-to-center span governs the bending — and it does not change the call.

Blockx,y center (from walls)Along-skid position (from skid END — the durable measure)
Station 1 (south) — both skids~24¼″ from E / W · ~29¼″center 18″ from skid S end (edges 14″–22″). ~4.8″ clear of the as-built stub
Station 2 (middle) — both skids~24¼″ from E / W · ~84¼″center 73″ from skid S end (edges 69″–77″). ⚠ NORTH of the oak root — going south leaves an over-long span. The one field variable: center the root in the gap below, min 6″ from each measured root edge. Record the root’s actual N and S extents when exposed
Station 3 (north) — both skids~24¼″ from E / W · ~139¼″center 128″ from skid S end (edges 124″–132″) = 16″ from the skid N end
Cross-pad, every station (the arbiter)outside edge to outside edge 110″ · inside edge to inside edge 78″ · centers 94″ (derived). 110 − 78 = 32 = twice the 16″ block face — if that doesn’t hold, a block is turned wrong
Along skid, station to station1→3 centers 110″, identical both skids · spans 55″ and 55″ (clear gap 47″ each — equal gaps is the one-tape check) · cantilevers 18″ south, 16″ north
Why 6 and not 8 — full derivation in Base & Deck ConstructionA 5½″×3½″ flat SYP skid has ~30% less section modulus than the plans’ full-dimension hemlock, so spans want to stay ≤60–65″. A fourth block per skid would buy span but add two more pivot points to level and re-level forever — and a block that doesn’t bear is worse than no block. Six is the call. If the floor ever needs more, the blocks stay accessible under the open skirt: jack and slide two more in. It is the only structural decision on this build that stays reversible

Ground anchors (4 — installed; cables terminated at the eyes, tails coiled above gravel)

x,y (as planned)SE/SW: 29″ from E/W · 52″ from S    NE/NW: 29″ from E/W · 115″ from S
Off the skid (durable)4¾″ inboard of skid centerline = ~2″ from the skid inside face — corrected for the 5½″ skid (previously recorded as 4¼″, which assumed a 3½″ skid). Workable: the cable rises alongside and over the top, and the steeper angle puts more tension straight down. ⚠ Before setting skids, measure all four eyes off the side walls — any eye at 27″ or less ends up UNDER the skid
Along the skid (durable)S pair 40¾″ north of skid S end · N pair 40¼″ south of skid N end
Pair spacingsalong skid, centers 63″ · across pad, centers 84½″. Anchors were screwed by hand — the coiled tails poking through the gravel are the ground truth; trust a tail over this table.

Conduit stub — AS-BUILT July 21, 2026 (realized location, not the plan)

From timber walls (inside faces)center 18¼″ from EAST · 19¼″ from SOUTH (planned was 17¼/20¼ — drifted 1″ west + 1″ south in install)
From building outline / future deck edges7″ from the east edge · 8″ from the south edge
From the east skid (best on-the-ground reference)center ~2″ east of the skid outside face · 8″ north of the skid S end
Verified clearances (from conduit OD edge, 2″ PVC)east rim 4¼″ · skid face ~2″ (the tight side) · S end joist 5¼″ · next joist 6″ · block station 1 ~4.8″. Recomputed 8/5/26 against the corrected 5½″ skid width and the rebalanced skid position.
Floor-day ruleDrill the ply hole directly over the stub — never center it in the rim-to-skid channel; all the slack is on the rim side. Buried sweep exits south under the wall; outside cap marked (photo map + physical marker).