Mostrando entradas con la etiqueta 05_BUILDING ENVELOPES. Mostrar todas las entradas
Mostrando entradas con la etiqueta 05_BUILDING ENVELOPES. Mostrar todas las entradas

martes, 9 de mayo de 2017

Top ten construction innovations

New materials and energy, design approaches, as well as advances in digital technology and big data, are creating a wave of innovation within the construction industry. Here are ten of the most exciting developments

1. SELF-HEALING CONCRETE

self-healing concrete
Cement is one of the most widely used materials in construction, but also one of the largest contributors to harmful carbon emissions, said to be responsible for around 7 per cent of annual global emissions. Cracking is a major problem in construction, usually caused by exposure to water and chemicals. Researchers at Bath University are looking to develop a self-healing concrete, using a mix containing bacteria within microcapsules, which will germinate when water enters a crack in the concrete to produce limestone, plugging the crack before water and oxygen has a chance to corrode the steel reinforcement.

2. THERMAL BRIDGING

Aerogel_AspenAerogelsInc
Efficient insulation material is becoming increasingly important throughout the construction industry. Heat transmission through walls tends to be passed directly through the building envelope, be it masonry, block or stud frame, to the internal fascia such as drywall. This process is known as “thermal bridging”. Aerogel, a technology developed by Nasa for cryogenic insulation, is considered one of the most effective thermal insulation materials and US spin-off Thermablok has adapted it using a proprietary aerogel in a fibreglass matrix.  This can be used to insulate studs, which can reportedly increase overall wall R-value (an industry measure of thermal resistance) by more than 40 per cent.

3. PHOTOVOLTAIC GLAZING

polysolar
Building integrated photovoltaic (BIPV) glazing can help buildings generate their own electricity, by turning the whole building envelope into a solar panel. Companies such as Polysolar provide transparent photovoltaic glass as a structural building material, forming windows, façades and roofs. Polysolar’s technology is efficient at producing energy even on north-facing, vertical walls and its high performance at raised temperatures means it can be double glazed or insulated directly. As well as saving on energy bills and earning feed-in tariff revenues, its cost is only marginal over traditional glass, since construction and framework costs remain, while cladding and shading system costs are replaced.

4. KINETIC FOOTFALL

canary wharf kinetic energy pads
Kinetic energy is another technology under development. Pavegen provides a technology that enables flooring to harness the energy of footsteps. It can be used indoors or outdoors in high traffic areas, and generates electricity from pedestrian footfall using an electromagnetic induction process and flywheel energy storage. The technology is best suited to transport hubs where a large flow of people will pass over it. The largest deployment the company has done so far is in a football pitch in Rio de Janeiro to help power the floodlights around the pitch. It also currently has a temporary installation outside London’s Canary Wharf station powering street lights.

5. KINETIC ROADS

lybra
Italian startup Underground Power is exploring the potential of kinetic energy in roadways. It has developed a technology called Lybra, a tyre-like rubber paving that converts the kinetic energy produced by moving vehicles into electrical energy. Developed in co-operation with the Polytechnic University of Milan, Lybra operates on the principle that a braking car dissipates kinetic energy. The cutting-edge technology is able to collect, convert this energy into electricity and pass it on to the electricity grid. In addition to improving road safety, the device upgrades and promotes sustainability of road traffic.

6. PREDICTIVE SOFTWARE

Wembley-Stadium
The structural integrity of any building is only as good as its individual parts. The way those parts fit together, along with the choice of materials and its specific site, all contribute to how the building will perform under normal, or extreme, conditions. Civil engineers need to integrate a vast number of pieces into building designs, while complying with increasingly demanding safety and government regulations. An example of this was work on the structural integrity of the arch rotation brackets at Wembley Stadium, undertaken by Bennett Associates, using ANSYS software, which simulated the stresses on the brackets that hold and move the distinctive arches above the stadium.

7. 3D MODELLING

cybercity3D
Planning innovation has been driven by the growth of smart cities. CyberCity3D (CC3D) is a geospatial-modelling innovator specialising in the production of smart 3D building models. It creates smart digital 3D buildings to help the architectural, engineering and construction sector visualise and communicate design and data with CC3D proprietary software. The models integrate with 3D geographic information system platforms, such as Autodesk and ESRI, and can stream 3D urban building data to Cesium’s open architecture virtual 3D globe. It provides data for urban, energy, sustainability and design planning, and works in conjunction with many smart city SaaS platforms such as Cityzenith.

8. MODULAR CONSTRUCTION

modular construction
Modular construction is increasingly popular where a building is constructed off-site using the same materials and designed to the same standards as conventional on-site construction. It limits environmental disruption, delivering components as and when needed, and turning construction into a logistics exercise. It also has strong sustainability benefits, from fewer vehicle movements to less waste. With up to 70 per cent of a building produced as components, it allows a move towards “just in time” manufacturing and delivery. In use in the United States and UK, Chinese developer Broad Sustainable Building recently completed a 57-storey skyscraper in 19 working days using this method.

9. CLOUD COLLABORATION

basestone
basestone is a system allowing the remote sharing of data on a construction site in real time. It is predominantly a review tool for engineers and architects which digitises the drawing review process on construction projects, and allows for better collaboration. The cloud-based collaboration tool is focused on the installation of everything from steel beams to light fittings. The system is used to add “snags”, issues that happen during construction, on to pdfs, then users can mark or add notes through basestone. Trials have revealed possible cost-savings of around 60 per cent compared with traditional paper-based review methods.

10. ASSET MAPPING

asset mapping
Asset mapping focuses on operational equipment, including heating and air conditioning, lighting and security systems, collecting data from serial numbers, firmware, engineering notes of when it was installed and by whom, and combines the data in one place. The system can show engineers in real time on a map where the equipment needs to be installed and, once the assets are connected to the real-time system using the internet of things, these can be monitored via the web, app, and other remote devices and systems. It helps customers build databases of asset performance, which can assist in proactive building maintenance, and also reduce building procurement and insurance costs.

https://www.raconteur.net/business/top-ten-construction-innovations

lunes, 8 de mayo de 2017

HIGH PERFORMANCE BUILDING ENVELOPE

Design strategies to maximize building envelope performance

THE CONTEXT

Historically, relaxed energy laws in the United States provided few limits in architectural expression, materials, and construction choices. More recently, green labels and a focus on energy optimization and savings have made it necessary for architects to better understand building science, mechanical systems, and envelope technology to ensure design endeavors comply with or exceed code.
Current efforts to optimize building performance often rely heavily on mechanical systems and energy usage. There is an opportunity for architects to more carefully consider building skin as a way to better integrate passive strategies. When properly implemented, such strategies can have a significant effect on overall building performance.

THE RESULTS

A high-performance building façade allows building envelopes and comfort systems to act in concert and is responsive to changing exterior and interior conditions. The role of high-performance skins is to protect the building from the elements, provide the occupants with fresh-air exchanges, collect solar energy through various technologies, harvest rainwater for cistern storage, heat water, and provide daylight and views to occupants while minimizing glare.
Passive strategies include low- or no-technology solutions such as the selection of a building site or orientation that contributes to the performance of a building. The early incorporation of passive strategies often mitigates the need for more active strategies that are usually more reliant on technology and building systems. Active strategies can also be considered on a shorter-term basis— building technology can be changed as it becomes obsolete or newer strategies come to market; passive strategies tend to be more permanent and represent investments across the building’s life cycle.

WHAT THIS MEANS

Maximize occupant shelter and comfort. In many cases, passive design can deliver a more pleasant environment (natural ventilation is more comfortable than forced-air systems) while also increasing energy efficiency and reducing life-cycle costs.
Design with the least amount of technology and systems necessary. This better aligns investment with long-term performance and sustainability goals, and saves money in the short run.
Consider passive design early. Designers need to ask new questions at critical points in the project process. Clear reference tools can promote discussions around façade and system strategies with consultants and clients. Informed discussions lead to energy-efficient buildings that can more readily meet, and exceed, stringent codes and regulations.
Use skin as a standard. Human skin reacts to environmental conditions, opening or closing to manage internal environment and using evaporation to reject heat.

WHAT’S NEXT?

Looking to the future of building façades, much of the industry expects continued developments in glass technology to create increasingly high-performance single-skin façades that will better address issues such as heat gain, insulation, solar performance, and energy generation (via integrated photovoltaic panels that also provide shading, as an example). Presently, these systems are not able to attain the same levels of performance achieved through multilayered building skin systems (such as those Gensler is using on the Shanghai Tower or The Tower at PNC Plaza).

TEAM
Olivier Sommerhalder, Sanjeev Tankha, Robert Garlipp, Shira Zur
YEAR COMPLETED
2011

lunes, 13 de marzo de 2017

A SYSTEM FOR A NEW ENERGY PARADIGM




Nowadays, it has become a reality to create transforming facades of buildings (traditionally conceived walls for insulation) into active skins capable of generating energy.












The system is developed by the BERSA industry consortium, designed and conceived by RLA 
"BioPix" is a multidisciplinary project applied to a universal facade system able to respond to cuttent needs. As construction has reached a rate of 30% of the total energy consumption. The particular concept highlights the advantages provided by high thermal insulation adding new technologies of solar engineering systems.


The Biopix patent is a flexible system that is able to provide the best energy rate response for each location, especially developed to adapt to the particular weather conditions.

Design & concept: RLA studio, Madrid
Industrialization System:  BERSA industry consortium

jueves, 16 de febrero de 2017


 Agbar Tower



The Agbar Tower has been build between 2001 and 2005 in the city of Barcelona. The authors of this tower are B720 Arquitectos and Jean Nouvel. This project needed the collaboration of the technical architect Josep Gilabert and the engineering companies Gepro BOMA and Master Ingeniria.

The building was inspired by the Sagrada Familia of Gaudi. The building represent the constant changing of a water fountain.



The Catalonian tower is 144 meters height, 35 meters width and 39 meters length. It is composed by 35 floors accessible by 11 elevators. The land area reach a total of 50.700 square meters.


The façade can be qualified of media – active. The structure is build with reinforced concrete while the outside layer of the double façade is composed out of over 4.500 window openings cut of the structural concrete. The translucent glass supported by an aluminium frame as well as the concrete surface allows the building to have a good insulation to the exterior and thus make it easy to control the inside temperatures. 

3




The building is formed as the union of two opposites : the lightness of glass that covers the building in the form of slats 120 x 30 cm, forming a large brise -soleil and the massiveness of the concrete structure, creating between one great fractal. The space between the façade layers allows a natural circulation of air in the building.



The concrete skin pattern is the result of calculations. The part snot needed to transmit the loads have been removed in order to create apertures. The apertures have also been designed in order to play with the views of the city.






The interior main core as well as the concrete façade allows the interior plan to be free from pillars.






Depending on the incidence of light, the tower changes its colours - the coloured aluminium sheeting that reflects the light consists of 40 different colours of high gloss.



The building is also very impressive at night as the 4.500 glass louvers get illuminated.











Bibliography

"Agbar Tower." Agbar Tower – WikiArquitectura. N.p., n.d. Web.

"Torre Agbar." Filt3rs. N.p., n.d. Web.

"Torre Agbar." Torre Agbar, the Newest Attraction of Barcelona

martes, 31 de enero de 2017



BREATHE BRICK



"What if a building, like the organ, could filter toxins and protect people?"


A facade made out of prefab concrete pieces with a passive filtration system that cleans the particles from the aire such as dust.





Assembly: The coupler is the entrance of aire and filter for the particles.
                                          The concrete blocks have several voids for the reinforcement shafts and the coupler




The filtered air enters through the opening of the coupler and through a spiral system the particles are pushed down and collected in the hopper located in the base of the wall. The clean air is introduced in the building


Asembly of the pieces from the base.


Concrete block real scale



jueves, 26 de enero de 2017

BBVA Headquarters_Madrid_Herzog & de Meuron



Building envelope


      • A facade of the highest thermal and acoustic insulation (double glazing, inert gas chamber, ...). Brise-soleils are designed for energy simulation to optimize the entry of natural light, avoiding the direct sunlight and allowing the outside views.
       • The tests performed show that the air conditioning systems requires two hours less of daily consumption compared with other buildings without these elements.




Brise-soleils







• Screens are fixed pieces, although many people think otherwise. The orientation of the slats changes in each façade, according to sunlight.


• These are pieces of steel coated with carbon-fibre-reinforced polyester and lacquered white. The design of these pieces is based on the human scale, the figure of a person sitting and standing are the positions of a worker in the office area, in order to generate a balance.

• Brise-soleils have various widths to achieve a relatively smooth surface on the outside. Theones of a single height are placed along the whole facade and double brise-soleils are placed on entrances or connecting areas. Moreover, the pieces protect from direct solar incidence and allow the opening of exterior views, allowing light to enter all spaces. Thanks to these brise-soleils it is possible to have a 49,000 m² glazed surface that allows 90% of the interior space to have natural light, thus generating huge energy savings.





Composition of glass

The glass is composed of a section formed by:
- Double monolithic glass (6+6mm).
- Argon chamber of 20 mm.
- Double laminated glass (8+8 mm).