Showing posts with label corporate 3d modeling. Show all posts
Showing posts with label corporate 3d modeling. Show all posts

Architectural Visualization Of Corporate Building Designs



Corporate Building Design


Corporate Building Design - A corporate structure is what we enjoy the most, as the possibilities in designing the structure is endless. Through our perspective exterior renderings, it is possible to see the shapes and volumes of the buildings conceived in the blueprints. Our only focus while conceptualizing a corporate structure is to make the big idea real with photo real production of 3D visuals and cinematic animation with unmatched value and service.


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FUTURISTIC ARCHITECTURE

Optimization of Indian building design using genetic algorithm
 Sep 20, 2015  


Introduction

The energy performance of a building depends on a high number of parameters. It is determined by its response as a complete system to the outdoor environment and the indoor conditions. Improved levels of performance require the coherent application of measures which altogether optimize the performance of the complete building system. Given the number of individual attributes that have to be combined to make a single building, the number of possible designs is very large, and determining the most efficient one is a complex problem.

Optimization of building energy performance is more complex in the case of Indian buildings. While in some cold European regions only heating energy consumption is usually considered, the Indian climate makes it essential to consider both heating and cooling energy uses. Varying some parameters of the building over their ranges of practical values can have opposite effects on heating and cooling energy consumptions. It is evident that an insulated building envelope helps in reducing the heating demand. But in summer, the outdoor night temperature being generally lower than the required indoor temperature, un-insulated but high thermal capacity walls allow for the evacuation of the heat stored in the building during the day, leading to the reduction of air-conditioning need. One important question is raised: what is the wall composition that leads to the lowest energy consumption in both seasons? The answer is not straightforward.
The main characteristics of the two sided problem are: a large multi-dimensional space to be searched, a range of different variable types and a non-linear objective function. Using genetic algorithms to solve such problems is a good alternative that allows us to identify not only the best design, but a set of good solutions.


Design variables

In cold countries there is not a real need for summer air-conditioning except where internal gains are high such as concert halls or opera houses. Our situation being different, in the present work, the objective function can be taken as being the sum of the heating and air conditioning energy loads.
In order to find the optimal design of a building, we have to compare the energy performance of a large number of configurations, which needs the computation of the heating and cooling loads for each of them. In the optimization approach, we propose to use a simplified procedure that is more straightforward and easier.The losses across the envelope and the gross free gains depend on the lateral surface of the building, the type of used partitions as well as glazed surfaces on each of the facades. The shape and the dimensions of the solar protections have direct impact on the amount of the solar free gains received by the glazed areas. The vastness of the optimization problem would itself be a problem; therefore we have defined a set of possible configurations, by combining different cases of these design variables, taken inside reasonable values. The resulting set of configurations defines the space of research of our problem.
While keeping a constant volume, we can vary the dimensions of the building envelope and its shape. We can consider a simple cell-test having a rectangular shape with a fixed volume V or similarly a fixed floor area. For the opaque partitions i.e. walls and roofs we can consider different types of roofing (based on their insulation) and different kinds of walls (with different inertia and levels of insulation). Facades of the building can also be glazed, for such a case we can choose between simple and double glazing that differ by their transmission.
An efficient solar protection should allow for minimizing the cooling load without excessive increase in the heating load. This means that the shadowed portion of the glazed area should be as large as possible in summer and as low as possible in winter. Knowledge of the shaded part is necessary to compute the gross solar gains. The efficiencies of different sun shading devices can be adjudged from there “solar factors”; they are defined as the ratios of the received solar radiation in the presence of the shadowing device over the radiation that would be received in its absence.Courtyards are considered ‘the spaces through which a building breathes’. They are an efficient element of passive feature in a building. However there is an optimal size for a courtyard; a very large courtyard breaks the unity of the building while a small one becomes more like a duct. A building with a given foot-print needs a courtyard that is a fixed percentage of the foot-print area. This criterion may form one of constraints in our case.


Genetic algorithms

Genetic algorithms have proved their efficiency in dealing with different optimization problems such as the optimization of building thermal design and control and solar hot water systems as well as the design of thermally comfortable buildings and the control of artificial lights. These techniques belong to a class of probabilistic search methods that strike a remarkable balance between exploration and exploitation of the search space. Genetic algorithms are initiated by selecting a population of randomly generated solutions for the considered problem. They move from one generation of solutions to another by evolving new solutions using the objective evaluation, selection, crossover and mutation operators.A basic genetic algorithm has three main operators that are carried out at every iteration:
Reproduction: chromosomes or solutions of the current generation are copied to the next one with some probability based on the value they achieve for the objective function which is also called fitness.
Crossover: randomly selected pairs of chromosomes are mated creating new ones that will be inserted in the next generation.
Mutation: it is an occasional random alteration of the allele of a gene.
While the selection operator for reproduction is useful for creating a new generation that is globally better than the preceding one, crossover brings diversity to the population by handling the genes of the created chromosomes and mutation introduces the necessary hazard to an efficient exploration of the research space. It makes the algorithm likely to reach all the points of research space. Before developing a genetic algorithm, we must choose the encoding that will be used to represent an eventual solution of the problem by a chromosome where the value of each variable is represented by one or several genes. The quality of the developed algorithm depends essentially on the adopted encoding strategy and its adequacy to the used crossover and mutation operators, while respecting the nature of variables and the constraints of the problem.


The developed algorithm

In this work, a genetic algorithm needs to be developed in order to provide a method for obtaining a set of optimal architectural configurations. There are few things which are quite clear even before we start, for example, having a large southern facade is beneficial because it is the sunniest in winter and the least in summer. But it is not desirable to have a building with a large lateral surface because it increases the heat loss through the envelope. A compromise needs to be worked out in such type of area.


Conclusion

The energy problem presented in this paper is particularly interesting. While it is relatively easy to find the best characteristics of a building under winter or summer conditions separately, tackling the two problems simultaneously is more complex. There is a trade-off that has to be done between the two seasons requirements. An optimization algorithm coupling the genetic algorithms’ techniques to the thermal assessment tool needs to be developed for Indian buildings. This algorithm further can be used to identify the best configurations from both energetic and economic points of view. Genetic algorithms represent a simple and very efficient approach for the solution of non-linear combinatorial optimization problems. Although Genetic Algorithms find good solutions without exploring the whole space of research, yet they need the evaluation of a large number of building configurations. The algorithm presents also the big advantage of converging not only toward the best solution but toward a set of configurations all of a high quality and diverse enough to allow the user to choose the most adequate one to his personal considerations that are not necessarily quantifiable. The fact that the required result is a set of very good solutions (and not the best one) means that good evaluation accuracy is sufficient.





House and office complex by J mayer H features monochrome facades and false shadows



The four buildings that make up the Sonnenhof complex range in height from five to seven storeys, and are clustered around a central courtyard.
All four buildings feature faceted monochrome facades. Skewed pentagonal and square windows are outlined by grey aluminium paneling, contrasting the stark white plasterwork.



In homage to this detailing, J Mayer H chose to paint different areas of the courtyard black and white, creating the illusion that dark shadows are cast onto the ground.
Wedge-shaped planters with integrated benches contribute to this effect.


The Sonnenhof complex is located in Jena, a town in the Saale river valley in eastern Germany.



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Eminent Vidhana Soudha


It was Winston Churchill who once quipped that men made the buildings but that the buildings subsequently made men. The magnificent and gigantic granite, the seat of Karnataka Legislature and the government stands as testimony to this observation. What was once a virtual wilderness surrounding the Old Residency Building (Now called the Raj Bhavan), has been transformed into a marvellous Architectural pieces in the country.


Sri K. Hanumanthaiya, who was Chief Minister of the then Mysore from 1951 to 1956, will be long remembered in the annals of the History of the State for his administration and achievements built this imposing edifice. The sprawling building and its surroundings occupy 60 acres. Sri Hanumanthaiya wanted "Vidhana Soudha" to symbolise the legislative sovereignty of the people like the capital in Washington or The House of Commons in London. The then Prime Minister Sri Pandit Jawaharalal Nehru laid the foundation on 13th July 1951. It was completed in the year 1956 as a result of relentless work of thousands workers with an expenditure of Rs 1.84 crores.


The building is rectangular in shape measuring 700 feet north-south and 350 feet east-west, with two inner open quadrangles on either side of the central wing measuring about 230 feet by 230 feet each. The northern wings with a ground and three upper floors is 63 feet 6 inches high, while the southern wing with a cellar floor, a ground floor, and three upper floors is 73 feet 6 inches high from the ground level. The Central Wing with a Banquet Hall on the ground floor and the Legislative Assembly Chamber above is 112 feet high. It is therefore one of the largest of the Legislative buildings and impresses many visitors as larger as and more beautiful than similar buildings in Australia, the United States and even Canada.


Marvel of neo-Dravidian architecture and one of the most imposing buildings not only in Bangalore but in India. One of the interesting features of this building in grand stairs is in its front. The grand stairs has a flight of forty-five steps 204 feet wide 70 feet deep giving a direct access to the foyer of first floor leading to an Assembly Chamber. The architecture of the building is based on Dravidian style, comprising richly carved bases and capitals for pillars, deep friezes, kapotha cornices, chaithya arches, heavy pediments domical finials, etc; At the same time, the construction has been on modern designs, making use of the present-day materials like steel, reinforced cement concrete glass, plastic, etc.


The general appearance of the Vidhana Soudha with its skillful blending of ancient and modern 'architectural styles, is both massive and striking. The twelve forty-foot columns in front of the Assembly Hall provided an imposing background for the Central dome and six smaller ones. The Central dome, supported by eight pillars is sixty feet in diameter and provides the roof over the State Banquet Hall.



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