Design Concept
In office buildings, the design emphasis should be laid on thermo-visual efficiency of the indoor environment, significantly affecting and curbing the recurring energy consumption costs, rather acoustical condition. The acoustical interference by undesirable sound in big rooms can be minimized by a judicious use of sound diffraction partial partitions or suitably designed screen of height between 2.1 to 2.5 m.The use of fiber glass sandwiched between two layers of tapestry is preferred owing to its high degree of sound absorption as compared to perforated acoustical boards (Choudhury, 1977). Owing to variations in the nature of work and working hours in office buildings, a different methodology other than residential or school buildings discussed elsewhere, (Maitreya, 1979 & 1986) has been adopted. The occasional non-availability of recommended lighting levels from daylight alone, which could be due to;
- internal or external obstructions covering more than 30 degrees from the observation point and not envisaged at design stage
- inadequate or improper location of fenestration or
- work performance beyond normal office hours, and variations in working hour's calls for putting in action available artificial light otherwise provided for only night usage. As per research, around 35% of energy is used for lighting purposes during daytime hours. To avoid thermal discomfort owing to instantaneous heat incursion through glazed area, use of curtains/venetian blinds, as internal shading devices, are very common. To cater such conditions, frequent use of artificial light meant for nighttime using (scotopic vision) during daytime hours is on the increase, when demands on agriculture and industrial load are high. Its also reported (Hollwich, 1975) that use of artificial light during daytime is harmful due to (i) the diverse spectral distribution (ii) excessive intensities of light and (iii) monotony of constant luminous output from artificial light. To avoid such problems not envisaged in natural lighting design, but needed to supplement the deficiency in available natural and maintain overall visual environment, use of artificial light becomes a prerequisite. Therefore, recourse is often made on the judicious use of supplementary artificial light. The proposed formula (Maitreya, 1977) helps in estimation of the quantum of artificial light required to supplement the available daylight for offices in India. Therefore, efficiency in environmental design and use of natural energy resources are not only at high topical currency but also feature high priority on any national agenda. To meet deficiency in natural light and meet problems not envisaged in during design, detailed studies were carried out not confined to task illuminance alone but taking due cognizance of adaptation, comfort, satisfaction and performance (CSP) criteria too, along with thermal comfort. This will lead to energy efficient fenestration design for prevailing the lighting and thermal conditions in the country. Although, location and size of glazing has a pronounced effect on the indoor daylight available and its distribution pattern at task performance and visual comfort, but limitations on its location and sill height, alongwith their width and height, it is not possible to provide desired lighting level at more than 7.0m depth in deep room constructions. Glazing provided below work-plane does not assist significantly on the quantum of work-plane illuminance except a part of reflected luminous flux. Hence, wherever possible, glazing on opposite wall is a sine quo non to meet such conditions. It means that the maximum permissible room depth for utilizing the availability of daylight indoors is restricted to 14.0m. It is observed that amount of light required for satisfactory performance of office task varies from 100 to 200 lux. Hence, 150 lux task illuminance with modeling vector lying between 1.5 and 2.5 represents an acceptable visual environment for offices. The average value of 1.2 for the ratio of work-plane illuminance, at center to rear of the room, lays due emphasis on the requirement of uniform lighting on work-planes.
It is often observed that the problem of fenestration design for lighting is found to conflict with indoor thermal requirements due to heat loss/gain from glazed area. In a tropical climate like India, the minimum thermal ingress through fenestration during daytime maximum cooling by nocturnal ventilation wherever possible has been the constant endeavour in energy saving. The thermal influx through glazed/masonry is comprised of; directly transmitted solar radiation (radiative part) and outside to inside air temperature difference and its cyclic variations (convective part). Each of them subsequently depends on:
- direct and diffuse solar insulation
- outside climatic conditions
- thermo-physical properties of glazed/masonry construction
- orientation of exposed surfaces etc.
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| Fig. 2: Thermal ingress for different Trans. Ratio |
Pragmatic Approach
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| Fig.3 Different types of office building layouts.(1) Double zone layout (central corridor type), (2) Single zone layout (one side corridor), (3) Open zone layout (cabin on one side), (4) Open zone layout without cabins) |
(i) central corridor type; (ii) corridor on one side and (iii) open-plan type (Fig.3.1) The large variations in room sizes and need of simplification in presenting the design information call for the adoption of a module concept. A module of a room with 3.0–4.5 m and depth varying from 6.0 m onwards has been considered.
To facilitate natural ventilation three cases of window location (i) window on exposed and opposite walls i.e. cross ventilation at sill height 0.9-1.2 m above floor level or at same sill height with inclined louver on opposite side of exposed wall, to maintain privacy and (iii) windows on corridor side with sill height higher by 60 cm from the opposite wall, are considered (Fig.3.2).
The adopted sill heights viz. 0.9-1.2 m are according to the requirements of uniformity ratio for light and ventilation at task-plane level. The doors, windows and the sill height limit the maximum window height to 1.2 m. In hot, dry climates, it is normal practice to keep windows and doors closed during daytime to avoid direct entry of warm air except during early office hours and late evenings to remove stored structural heat. Therefore, for promoting evaporative heat losses from the human body by accelerated air movement, recourse is made to ceiling fans.
Nomograph
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| Fig. 4: Nomograph depicting interactions in office buildings between design and environmental parameters for hot, dry and warm, humid climates. |
References
- Maitreya, V.K. "Energy Optimisation in Built-Environment", CIB W 70 Tokyo Symposium, 26-28, October, (1994).
- Maitreya, V.K. "Integrated Design for School Buildings," Building and Environment, (U.K.), Vol.14 pp.119-124 (1979).
- Maitreya, V.K. and Sharma, M.R. "Energy Optimised Fenestration Design for Office Buildings," Proc. CIB conference, Washington, 7 pp. 3279-3285, (1986).
- Choudhury, N.K.D. et.al. "Absorbing type partial partitions and their application in open plan spaces." Acoustica, (German), Vol.31, pp. 54-57 (1977).
- F.Hollwich, D. Dieckhues and C.O.Meiners, "Die physiologische Bedeutung des Lichtes fur den Menschem," Lichttechnik. (German) Vol.27, pp.388-394, (1975).
- Maitreya, V.K.. "Subjective evaluation of colour rendering properties of fluorescent lamps," Die Farbe, (German) Vol.24, pp.109-121, (1975).
- Maitreya, V.K. "Daytime Artificial Lighting for Office building in India," Building & Environment, (U.K.) Vol.12, pp.137-206, (1977).
- Maitreya, V.K.. "Daylight illumination and thermal Imbalance," Annual conference of the Illuminating Engineering Institute of Japan, Fukui-shi, Japan, April 5-6 (1995).
- Sharma, M.R., and Ali, S "Tropical Summer Index– A study on thermal comfort of Indian Subjects," Building and Environment," (U.K.), Vol. 21, pp.11-24, (1986).




