Cellular Concrete Panel HousesKen Land

Design documents · Roof panel spec (Lens 1)

Lift-in-Place Cellular Concrete Roof Panel — Lens 1 Spec (v1)

Loads, the span problem, the pick, interfaces and open items.

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Basis: Virtuoso "Studio and One-Bedroom Expansion" prelim set (2021, not for construction), scaled off the 5' bar. Ken's answers, 6 Sep 2026. Hand estimates only — for the model and for the PE conversation, not for construction.

1. Project facts (stated)#

ItemValue
LocationJamaica — hurricane wind region, no snow
Bearing walls3D-printed concrete walls
Roof membraneSpray-applied (Eco Finish industrial coating)
Footprint (studio, scaled)~25' wide (grid 1–2) × ~21' deep (grid A–B)
Stud directionSpan the 21' dimension (A to B)
Studs6" CFS, gauge to be proposed
Channel1-1/2" cold-rolled channel run horizontally under the stud bottom flanges, screwed up into the studs; punchouts left open for concrete flow and conduit
ReinforcementBasalt mesh sandwiched between stud bottom flange and channel (spec TBD)
Layer stack (form up)2" concrete cover → 1-1/2" channel + mesh → 6" stud cavity → 2" cap = 11.5" total
Ground pour6.5" (2" cover + 1.5" channel zone + 3" into the stud)
Top pour (on roof)5" (remaining 3" of cavity + 2" cap), slight slope to drain
Midspan bearingYes — printed interior wall or beam near grid 3; studs span ~10.5' each side
Cellular concrete30–40 pcf
PanelsOne panel per roof if possible, two if not; cast-in pick points
Cure before pick7 days
EngineeringPE to be engaged later (Ken has one in mind)

2. Loads (hand estimate, 35 pcf)#

Loadpsf
Cellular concrete, 11.5" @ 35 pcf34
Steel (studs, track, CRC, inserts)4
Membrane / misc1
Dead~39
Roof live (min)20
Slope build-up if 1/8"/ft over 21' (extra ~2.6" at the high edge, avg 1.3")+4 avg
Total gravity for sizing~60–65

Wind: hurricane-region flat roof. Net uplift at corners/edges routinely exceeds 0.6 × dead even at 34 psf dead. Anchorage to the printed walls is a design item, not a detail — see §5.

3. Span — the governing issue#

At 16" o.c., 21' clear span, ~60 psf:

  • Moment ≈ 53 kip-in per stud. A 600S162-68 (14 ga, 50 ksi) is roughly 42–45 kip-in allowable → over.
  • Deflection ≈ 4.2" single stud → ~L/65. Limit for a concrete-topped roof is L/240 or tighter (≈1.05").
  • The cellular concrete does not help: at 30–40 pcf it is 200–500 psi with negligible stiffness. Steel carries everything; concrete is fill, insulation (R-1.5/in → ~R-17 total), and ceiling.

A 6" CFS stud cannot clear-span 21' under this roof. Three ways out:

OptionWhat changesStud proposal
A. Midspan bearing (preferred if the printed wall layout allows)Add a printed interior bearing wall or a steel beam at ~10.5' (near grid 3 / the bath–kitchen wall line)600S162-54 @ 16" works with margin (≈L/400); use 600S162-68 @ 16" for screw pull-out and hurricane robustness
B. Deeper joists, keep the conceptStud depth 10"~1000S200-97 @ 16" clears 21' (≈L/290); panel gets ~4" thicker and ~12 psf heavier
C. Keep 6", double/box and tighten spacing12" o.c., boxed pairsStill marginal on deflection; not recommended

Option A keeps the 6" system exactly as Ken described. The animation should model A as the default with B as a config switch.

4. Panel at pick (Option A, one panel)#

ItemValue
Panel plan size~25' × 21' (525 sf) plus edge forms
Concrete at pick6.5" @ 35 pcf ≈ 19 psf
Steel~4 psf
Pick weight~12,000 lb (+ lifting frame)
CraneMid-size hydraulic (40–60 t class depending on reach); cast adjacent to the building
Pick points8 cast-in inserts on stud lines, 2 rows at ~0.2L from each end, spreader frame so all legs are vertical
Cracking risk7-day cellular concrete in a 2" layer under a flexing steel frame. Basalt mesh helps; the real control is a stiff spreader frame and keeping frame deflection under ~L/360 during the pick. PE to check
Two panels12.5' × 21' each ≈ 6,000 lb — fallback if crane access is tight; joint runs parallel to studs at grid 3

5. Interfaces to detail#

  • Wall top: cast a bond beam on the printed wall with embedded plates or anchor bolts. Panel bears on a continuous track; weld or bolt track to embeds. Uplift straps/anchors at each stud line at edges and corners.
  • Edge of panel: closure track or angle so the top pour doesn't run over the wall; the spray membrane turns down over it.
  • Ceiling: 2" cellular concrete under the studs is the finished ceiling (one skim coat max). Mesh should sit ~1" from the bottom face for crack control.
  • Top pour: 2" minimum cap over studs; build slope in the cap (1/16–1/8"/ft) toward scuppers or a drain edge. Second mesh layer in the cap if the PE wants it.
  • Penetrations: sleeves for plumbing vents and electrical set in the form before the ground pour.

6. Open items for Ken / the PE#

  1. Channel-to-stud screw pattern and spacing of channel rows (the channel now carries the 2" ceiling layer and the mesh; the PE will want to see the fastener count).
  2. Exact position of the midspan bearing line relative to the interior wall layout.
  3. Basalt mesh spec (grid, weight, layers).
  4. Design wind speed / exposure the PE will use (Jamaica NBC adopts ASCE 7-style loads).
  5. Cellular concrete supplier mix (density, 7-day and 28-day strength).
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