Difference between revisions of "Catchment area (effective) (roof drainage)"

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*Catchment area can be a flat or sloping roof/ surfaces and also includes vertical surfaces.
 
*Catchment area can be a flat or sloping roof/ surfaces and also includes vertical surfaces.
  
*Effective catchment area for vertical surfaces
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*Effective catchment area for vertical surfaces. Single wall shall be 50% of its total surface area up to a maximum exposed height of 33feet (10metres).
Single wall shall be 50% of its total surface area up to a maximum exposed height of 33feet (10metres).
 
  
*Effective Catchment Area
 
- Flat roofs
 
  
[[File:Catchment-Area-Flat-Roof.jpeg]]
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== Effective Catchment Area ==
  
- Sloping roofs
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*'''FLAT ROOFS'''
The effective area, '''''A''''', roof draining to an eaves or parapet gutter (''should be calculated using the table below'')
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[[File:Catchment-Area-Flat-Roof.jpeg|Catchment-Area-Flat-Roof.jpeg]]
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'''Flat roof:''' <math>A = A_h</math>
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*'''SLOPING ROOFS'''
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The effective catchment area, '''''A''''', roof draining to an eaves or parapet gutter (''should be calculated using the table below'')
  
 
{| class="wikitable"
 
{| class="wikitable"
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[[File:Catchment-Area-Sloping-Roof-diagram.jpeg]]
 
[[File:Catchment-Area-Sloping-Roof-diagram.jpeg]]
  
- For valley gutter, one side of the roof will tend to be exposed to the wind and the other will tend to be sheltered. The methos of calculating the effective catchment are illutrated on the Figure below;
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'''Sloping roof:''' <math>A = A_h + \frac{A_V}{2}</math>
[[File:Catchment-Area-Valley.jpg]]
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*'''VALLEY GUTTER'''
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For valley gutter, one side of the roof will tend to be exposed to the wind and the other will tend to be sheltered. The methos of calculating the effective catchment are illutrated on the Figure below;
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[[File:Catchment-Area-Valley.jpeg]]
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'''Valley gutter:''' <math> A = A_h,1 + A_h,2 + \frac{1}{2} (A_v,2 - A_v,1)</math>
  
 
Run off from any vertical wall should be added to the effective catchment area.
 
Run off from any vertical wall should be added to the effective catchment area.
  
In area where wind is taken into account in rainfall calculations, where rain driven against a wall by the wind is taken;
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*'''Vertical surfaces'''
 
 
'''Vertical surfaces'''
 
 
The effective catchment area of a single wall should be taken as 50% of its area, up to a maximum height of 10 meters.
 
The effective catchment area of a single wall should be taken as 50% of its area, up to a maximum height of 10 meters.
 
Where two or more walls from an angle or bay, the direction of the wind should be assumed to be such that the walls considered together present the maximum vertical area to the rain, as illustrated in Figure below;
 
Where two or more walls from an angle or bay, the direction of the wind should be assumed to be such that the walls considered together present the maximum vertical area to the rain, as illustrated in Figure below;
  
[[File:Catchment-area-Vertical-Surfaces.jpeg]]
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[[File:Catchment-Area-Effective-Vertical-Surfaces.jpeg]]
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<math>A= \frac{1}{2} \surd (A^2_{v,1} + A^2_{v,2} - 2A_{v,1} - A^2_{v,2} \cos \theta)</math>
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Where <math>A_{v,1}</math> and <math>A_{v,2}</math>  are areas of the vertical walls, as shown, contributing to the flow of the gutter.
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For an enclosed area, the effective catchment area will be its plan area unless the surrounding walls are of unequal height. In the latter case, the value of A should be increased by half the area in the elevation by which the higher wall exceeds the lower wall.
 
For an enclosed area, the effective catchment area will be its plan area unless the surrounding walls are of unequal height. In the latter case, the value of A should be increased by half the area in the elevation by which the higher wall exceeds the lower wall.
  
'''Small Roofs'''
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'''Small Roofs.'''
 
For small roof area not exceeding 6 sq.mts. and no other area drains onto it, gutters and rainwater pipes may be omitted from a roof at any height.
 
For small roof area not exceeding 6 sq.mts. and no other area drains onto it, gutters and rainwater pipes may be omitted from a roof at any height.
  
'''Tall buildings'''
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'''Tall buildings.'''
 
Gutters and rainwater pipes may be omitted from tall structures where runoff would be dispersed before the ground. Such runoff should be directed so as to avoid undesirable pattern staining and splashing of windows.
 
Gutters and rainwater pipes may be omitted from tall structures where runoff would be dispersed before the ground. Such runoff should be directed so as to avoid undesirable pattern staining and splashing of windows.
  
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# SS 525:2006 Code of Practice for Drainage of roofs
 
# SS 525:2006 Code of Practice for Drainage of roofs
 
# ASTM A112.6.9 Standard for Siphonic Roof drainage Systems
 
# ASTM A112.6.9 Standard for Siphonic Roof drainage Systems
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# ASPE Standard 45 Siphonic Roof Drainage

Latest revision as of 15:53, 13 April 2017

Catchment-Roof.gif
  • Area to be drained within a roof. Unit of measurement is in square meter (m^2).
  • Catchment area can be a flat or sloping roof/ surfaces and also includes vertical surfaces.
  • Effective catchment area for vertical surfaces. Single wall shall be 50% of its total surface area up to a maximum exposed height of 33feet (10metres).


Effective Catchment Area

  • FLAT ROOFS
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Flat roof: A = A_h


  • SLOPING ROOFS

The effective catchment area, A, roof draining to an eaves or parapet gutter (should be calculated using the table below)

Effective Impermeable Roof Area
Allowance to be made for the effect of wind Effective impermeable roof are, A

m^2

Wind driven rain, 26degrees to vertical A=L_R \cdot (B_R + \frac{H_R}{2})
Rain perpendicular to roof(i.e. surface area of roof used) A=L_R \cdot T_R

NOTES:

L_R is the length of roof to be drained, in metres (m);

B_R is the plan width of roof from gutter to ridge, in metres (m);

H_R is the height of roof from gutter to ridge, inmetres (m);

T_R is the distance from gutter to ridge measured along the roof, in metres (m);

A is the effective impermeable roof area, in square metres (m^2)

Figure below illustrated these dimensions.


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Sloping roof: A = A_h + \frac{A_V}{2}


  • VALLEY GUTTER

For valley gutter, one side of the roof will tend to be exposed to the wind and the other will tend to be sheltered. The methos of calculating the effective catchment are illutrated on the Figure below;

Error creating thumbnail: Unable to save thumbnail to destination

Valley gutter:  A = A_h,1 + A_h,2 + \frac{1}{2} (A_v,2 - A_v,1)

Run off from any vertical wall should be added to the effective catchment area.

  • Vertical surfaces

The effective catchment area of a single wall should be taken as 50% of its area, up to a maximum height of 10 meters. Where two or more walls from an angle or bay, the direction of the wind should be assumed to be such that the walls considered together present the maximum vertical area to the rain, as illustrated in Figure below;

Error creating thumbnail: Unable to save thumbnail to destination

A= \frac{1}{2} \surd (A^2_{v,1} + A^2_{v,2} - 2A_{v,1} - A^2_{v,2} \cos \theta)

Where A_{v,1} and A_{v,2} are areas of the vertical walls, as shown, contributing to the flow of the gutter.


For an enclosed area, the effective catchment area will be its plan area unless the surrounding walls are of unequal height. In the latter case, the value of A should be increased by half the area in the elevation by which the higher wall exceeds the lower wall.

Small Roofs. For small roof area not exceeding 6 sq.mts. and no other area drains onto it, gutters and rainwater pipes may be omitted from a roof at any height.

Tall buildings. Gutters and rainwater pipes may be omitted from tall structures where runoff would be dispersed before the ground. Such runoff should be directed so as to avoid undesirable pattern staining and splashing of windows.


References:

  1. BS EN 12056-3
  2. SS 525:2006 Code of Practice for Drainage of roofs
  3. ASTM A112.6.9 Standard for Siphonic Roof drainage Systems
  4. ASPE Standard 45 Siphonic Roof Drainage