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Types & Materials of Flat Roofs
COURSE 3 / MODULE 2 - FLAT ROOF STRUCTURES / UNIT 1 - TYPES & MATERIALS OF FLAT ROOFS
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Flat roofs are typically formed from monolithic or semi-monolithic reinforced concrete slabs by layering several building technical elements above the slab. Typical layers may include sloping concrete, thermal insulation boards or waterproofing membranes, or even floor covering layers to ensure accessibility.
Most flat roofs are single-shelled structures. These are also known as warm roofs as the layers are closely stacked.
A variation of the flat roof is the double-shelled flat roof. Here, the layers are separated by a frame structure into the upper shell (for drainage and where appropriate, walkability) and the lower shell (for thermal insulation). The gap between the two shells provides ventilation, so these roofs are also called cold roofs. While they have advantages, their labour-intensive nature and the difficulties associated with ventilation mean that they are much less common than single-shelled roofs.
External drainage for double-shelled flat roofs typically employs a slope toward the perimeter gutter or drainage line.. The slope pattern is similar to that of a shed roof, but with a much smaller slope (a minimum of 2% up to a maximum of 8%). This type of roof is easy to clean and maintain, but builders need to consider protection against the eaves freezing.
For single-slope flat roofs, internal drains are typically designed with an optimal layout depending on the roof’s plan area, incline and geometry.
The main rules for designing a drainage system are:
- Interior drains should be located at the deepest point of the catchment area, at least 50 cm from walls and other structures.
- The maximum catchment area per interior drains should be 150-180 m2.
- The maximum distance along the slope line is 12 m.
- A minimum of 2 interior drains shall be required on each roof, or 1 interior drain and overflow scuppers.
- Adequate slope shall be maintained across the entire roof surface, with crossfalls around upstanding elements to eliminate ponding risk.
- Structures shall not be positioned within roof valleys.
- Slopes shall be a minimum of 2%, but also a minimum of 1% measured in the roof valley. However, slopes greater than 5% are not recommended.
There are two basic solutions to the grade plan: roof planes with uniform slopes or varying slopes.
Uniform slopes result in roof valleys meeting at right angles and varying roof plane elevations along parapet walls. The advantage of a different slope is the formation of parapet wall - roof plane intersections aligned with a single horizontal plane - that is a uniform height of the parapet wall relative to the edges of the roofs. For more complex roofs, a combination of both solutions may be possible.
The slope is usually constructed in two ways: with insulating boards or lightweight concrete. Thermal insulation materials can be of different types, depending on the layering. Some examples include expanded or extruded polystyrene, PIR boards or even high-density mineral wool.
The most common materials for rainproofing are bituminous or plastic membranes, which are forms of substructure insulation. There are various types of waterproofing coatings, although these are used less frequently.
Types of materials:
- Bituminous membranes: modified bituminous thick membranes are the most commonly used materials. They have now largely replaced oxide bituminous thin membranes and weldable thick membranes. Modified bituminous thick membranes come with a variety of coatings or inlays depending on the insulation requirement. They are always laid in two layers, at least: The bottom layer (the base sheet) is usually a modified bituminous thick sheet which is polyethilene-film-laminated or sandblasted. It is fixed either mechanically or welded in place. The top layer (the sealing plate) is a modified bituminous thick plate that is usually flame-welded to the bottom layer. If the top layer also acts as the roof sealing layer (as in conventional roof systems), a mineral-finished UV-resistant sheet should be chosen for this purpose. The thickness of the plates can vary between 4 to 4.5 mm. Some panels can only be fixed by welding, some by nailing too, and there are also self-adhesive panels.
- Plastic membranes: There are plastomeric (thermoplastic) plastic sheets such as PVC or PIB or elastomeric (rubber-like) sheets such as EPDM. These membranes are laid with mechanical fittings (clout nails). Membrane thickness varies between 1.2 and 2.0 mm.
- Waterproofing Coatings: can be polyester-, polyurethane- or bitumen-based and vary in thickness between 2 to 4 mm.
Layer Order:
- One-shelled flat roofs that are built with waterproofing positioned above the thermal insulation are called conventional roofs (warm roofs). In this case, the most common solution is to form the waterproofing slope with tapered insulation boards in the upper layer of the insulation. Most manufacturers offer ready-made tapered elements for this purpose. Special care must be taken to ensure minimum insulation requirements are met around drainage points, which represent the weakest areas of the thermal envelope. High-density rockwool or glass wool boards are the most commonly-used thermal insulation materials for this purpose. In a conventional system, it is imperative to protect the insulation underneath the waterproofing against vapour coming from the direction of the slab. A vapour barrier or vapour-retardant membrane should be applied on top of the slab. Finally, the surface of the tapered insulation system is waterproofed. In the less common approach of using sloped concrete, a lightweight concrete layer is typically cast onto horizontally-placed thermal insulation boards. In such a scenario, expanded polystyrene is the most commonly used thermal insulation, with the lightweight concrete slope layer laid on top. A separation layer must be created on top of the insulation to protect it. Also, it is necessary to lay a vapour control layer under the waterproofing. As previously-explained, it is necessary to apply a vapour barrier / vapour-retardant layer on top of the slab.
- For inverted roofs, the waterproofing is placed under the thermal insulation. The main advantage is that the waterproofing sheets have less exposure to solar radiation and thermal fluctuations and this increases their lifetime. Furthermore, the insulation does not need to be protected from humidity, as the waterproofing also acts as a vapour barrier. Since the thermal insulation is exposed to water in inverted roofs, only closed-cell insulation is an option: extruded polystyrene or PIR foam boards laid in a single layer, typically with shiplap edges. Above the slab, the layering is as follows: the lightweight concrete slab is cast first, then the waterproofing membranes are laid, followed by the thermal insulation boards, and finally, any other protective or other covering layers.
All these types can be designed in an accessible (utilised) or non-accessible (non-utilised) way, depending on their suitability for continuous occupancy.
Paving on accessible roofs first requires the installation of a base or bedding layer. Underneath these, it is common to use a layer of gravel and surface drainage. Green roofs are a special type of accessible flat roofs. They require the use of additional special layers, such as root-resistant sheets to prevent plant roots from breaking through the waterproofing membranes. Topsoil, a drainage layer (drainage sheets), a gravel drainage layer, and membrane separation layers are also required.
As a general rule, non-accessible roofs are usually built using a conventional system, while accessible and green roofs are more likely to be built using an inverted system.
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Conventional & Inverted Flat Roofs
COURSE 3 / MODULE 2 - FLAT ROOF STRUCTURES / UNIT 2 - CONVENTIONAL & INVERTED FLAT ROOFS
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Constructing a non-accessible, conventional system flat roof with nailed plastic waterproofing membrane
- The reinforced concrete slab surface must be dedusted with gaps filled and high spots levelled.
- Apply a primer coat to the entire surface.
- Position the interior drain base elements with factory-made insulation sleeves in slab penetrations and secure using sealing collars.
- Install vapour barrier / vapour-retardant membrane to the sealing collar of the interior drain and to the attic walls to protect the insulation from moisture loads.
- Lay the first insulation layer of expanded polystyrene in a staggered pattern to offset longitudinal joints.
- Form the second, slope-forming layer of insulation above using factory-cut tapered boards with a minimum slope of 2.5%. Laying is carried out in a brick pattern i.e. in both directions offset from the bottom layer. The interior drain must be lowered with a minimum radius of 40cm in the surface of the thermal insulation to create a slope of 5%.
- Since PVC board and expanded polystyrene foam are incompatible materials, a protective and separator layer must be laid on the surface of the insulation. This is done together with laying the 2 mm thick PVC plastic waterproofing membrane insulation in a single step, moving sideways in rolls. Fixing is carried out mechanically, by processing in precise lines, using galvanised clout nails to pierce the edge of the plastic membrane considering the density specified in the wind load analysis. The drilled clout nails are approximately 1 cm from the edge of the sheet (calculating from the edge of the clout nails’ heads). For a building height up to 20 m, 3 nails per square meter are required in the inner field, 6 nails per square meter in the edge field, and 9 nails per square meter in the corner field. The rolls are laid side by side with an overlap of 10 cm, starting with a longitudinally-realised offset. On the interior side of the overlaps, hot air welding creates a 3-4 centimetre weld strip over adjacent membranes, concealing the clout nail heads.
- Weld the waterproofing membrane edges to the foil flashing at the top of the parapet walls. The parapet coping consists of impregnated wood panels with insulation between. Both faces of the parapet wall are insulated to eliminate thermal bridging.
Constructing an accessible, inverted terrace roof with torch-applied bituminous waterproofing membrane
- Form the sloping substrate on the slab surface using lightweight concrete ensuring a minimum slope of 2% on the surface and 1% in the roof valleys. The sloped concrete begins at the edges of the square-form sealing collar of the interior drain, with a minimum initial thickness of 5 cm. A 5 cm thick extruded polystyrene insulation is placed under the sealing collar of the drain as blackout. Thermal insulation expansion joint fillers are installed around the slab perimeter at all wall connections. Finally, cast the lightweight concrete substrate.
- The substrate is dedusted when the sloped concrete has hardened, and any gaps are filled and high points are repaired.
- Prime the sloped concrete substrate and vertical parapet and superstructure surfaces using a cold-applied bituminous compound on dry surfaces or a bitumen emulsion primer on wet surfaces.
- Construct approximately 10 cm coved joints (fillets) using trapezoidal profile insulation elements along all wall and superstructure interfaces.
- Install the bottom layer with modified bitumen membrane perpendicular or parallel to the roof edge, commencing from the interior drain. Drainage outlets must be integrated with factory-fabricated insulation components. Secure the membrane by full surface torch-bonding, melting the bitumen substrate layer on the underside of the roll so the adhesive melts and bonds. Slowly roll the roll into the heated bitumen melt and press down smoothly immediately behind the unrolling section. Sheet edges should be sufficiently torch-heated to melt a 2-3 cm bead of adhesive extrude from the edges to join the lateral seams. Rolls are laid side-by-side with an 8 cm overlap, ensuring a longitudinal offset to prevent seam alignment between courses. For seams, it is again the torch-on technique that ensures proper fusion bonding.
- Form the corner joints at the coves and fold the bottom bituminous sheet over the insulation wedges (fillets) at the interfaces. A splice (upstand) is then created along the parapet walls by folding the waterproofing membrane over the coves and fixing it to the wall structure. Extend the membrane upstand to a minimum height of 30 cm above the future walkway on the parapet walls and fasten mechanically. For lower parapet heights, terminate the membrane at a pre-formed metal flashing profile installed at the top of the parapet wall. Secure with battens and fix atop the thermal insulation.
- When installing or bonding the second layer of modified bitumen sheeting, follow the same procedure as at the bottom layer, but offset the overlap seams by half a roll width (staggered seams).
- Complete the corner joints at the coves, extending the top layer to cover the horizontal section fully.
- Install the protective separation layer above the thermal insulation.
- Install the extruded polystyrene foam insulation boards with staggered joints, laid in offset rows, ensuring the specified board thickness is achieved.
- At the parapets, install protective extruded polystyrene foam perimeter insulation along the wall with a minimum thickness of 5 cm.
- Layer the following: filter/separator geocomposite layer, 6 cm gravel ballast bedding, and 5 cm concrete paving slabs.
- Install the top outlet bowl of the interior drains and the drain dome.
- Finish the parapet wall cappings with sheet metal flashing, and mechanically fasten the bituminous membrane.
Inverted Roof Assembly for Intensive Green Roof with Torch-Applied Modified Bitumen Waterproofing
Assembly procedures are carried out using the standard methodology for accessible roofs, with the following differences:
- Two layers of modified bituminous waterproofing membrane, each a minimum of 4 mm thick, must be certified as root- and rhizome-resistant as per FLL Guidelines.
- Install a drainage mat above the protection and separation layer over the thermal insulation. This will function as a combined drainage and water retention layer.
- For extensive green roofs, install another filter and separation layer before placing a growing medium or substrate layer above it. For intensive green roofs, add a granular filter layer above the filter and separation layer before placing followed by a geotextile layer, and complete the assembly with a growing medium layer.
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