Back to the future of skyscraper design
Answers to the problem of excessive electricity use by skyscrapers and large public buildings can be found in ingenious but forgotten architectural designs of the 19th and early-20th centuries
A The Recovery of Natural Environments in Architecture by Professor Alan Short is the culmination of 30 years of research and award-winning green building design by Short and colleagues in Architecture, Engineering, Applied Maths and Earth Sciences at the University of Cambridge.
‘The crisis in building design is already here,’ said Short. ‘Policy makers think you can solve energy and building problems with gadgets. You can’t. As global temperatures continue to rise, we are going to continue to squander more and more energy on keeping our buildings mechanically cool until we have run out of capacity.’
B Short is calling for a sweeping reinvention of how skyscrapers and major public buildings are designed – to end the reliance on sealed buildings which exist solely via the ‘life support’ system of vast air conditioning units.
Instead, he shows it is entirely possible to accommodate natural ventilation and cooling in large buildings by looking into the past, before the widespread introduction of air conditioning systems, which were ‘relentlessly and aggressively marketed’ by their inventors.
C Short points out that to make most contemporary buildings habitable, they have to be sealed and air conditioned. The energy use and carbon emissions this generates is spectacular and largely unnecessary. Buildings in the West account for 40-50% of electricity usage, generating substantial carbon emissions, and the rest of the world is catching up at a frightening rate. Short regards glass, steel and air-conditioned skyscrapers as symbols of status, rather than practical ways of meeting our requirements.
D Short’s book highlights a developing and sophisticated art and science of ventilating buildings through the 19th and earlier-20th centuries, including the design of ingeniously ventilated hospitals. Of particular interest were those built to the designs of John Shaw Billings, including the first Johns Hopkins Hospital in the US city of Baltimore (1873-1889).
‘We spent three years digitally modelling Billings’ final designs,’ says Short. ‘We put pathogens* in the airstreams, modelled for someone with tuberculosis (TB) coughing in the wards and we found the ventilation systems in the room would have kept other patients safe from harm.
E ‘We discovered that 19th-century hospital wards could generate up to 24 air changes an hour – that’s similar to the performance of a modern-day, computer-controlled operating theatre. We believe you could build wards based on these principles now.
Single rooms are not appropriate for all patients. Communal wards appropriate for certain patients – older people with dementia, for example – would work just as well in today’s hospitals, at a fraction of the energy cost.’
Professor Short contends the mindset and skill-sets behind these designs have been completely lost, lamenting the disappearance of expertly designed theatres, opera houses, and other buildings where up to half the volume of the building was given over to ensuring everyone got fresh air.
F Much of the ingenuity present in 19th-century hospital and building design was driven by a panicked public clamouring for buildings that could protect against what was thought to be the lethal threat of miasmas – toxic air that spread disease. Miasmas were feared as the principal agents of disease and epidemics for centuries, and were used to explain the spread of infection from the Middle Ages right through to the cholera outbreaks in London and Paris during the 1850s. Foul air, rather than germs, was believed to be the main driver of ‘hospital fever’, leading to disease and frequent death. The prosperous steered clear of hospitals.
While miasma theory has been long since disproved, Short has for the last 30 years advocated a return to some of the building design principles produced in its wake.
G Today, huge amounts of a building’s space and construction cost are given over to air conditioning. ‘But I have designed and built a series of buildings over the past three decades which have tried to reinvent some of these ideas and then measure what happens.
‘To go forward into our new low-energy, low-carbon future, we would be well advised to look back at design before our high-energy, high-carbon present appeared. What is surprising is what a rich legacy we have abandoned.’
H Successful examples of Short’s approach include the Queen’s Building at De Montfort University in Leicester. Containing as many as 2,000 staff and students, the entire building is naturally ventilated, passively cooled and naturally lit, including the two largest auditoria, each seating more than 150 people. The award-winning building uses a fraction of the electricity of comparable buildings in the UK.
Short contends that glass skyscrapers in London and around the world will become a liability over the next 20 or 30 years if climate modelling predictions and energy price rises come to pass as expected.
I He is convinced that sufficiently cooled skyscrapers using the natural environment can be produced in almost any climate. He and his team have worked on hybrid buildings in the harsh climates of Beijing and Chicago – built with natural ventilation assisted by back-up air conditioning – which, surprisingly perhaps, can be switched off more than half the time on milder days and during the spring and autumn.
Short looks at how we might reimagine the cities, offices and homes of the future. Maybe it’s time we changed our outlook.
* pathogens: microorganisms that can cause disease
Reading Passage 2 has nine section, A-I
Which section contains the following information?
Write the correct letter, A-I, in boxes 14-18 on your answer sheet.
题目定位词:avoided hospitals, 19th century
答案位置:F 部分第 1 段最后 1 句
题解:题目:19 世纪的人们避免去医院的原因
扫读至 F 部分时发现:该部分第 1 段最后 1 句提到富人们对医院唯恐避之不及,其中 steered clear of hospitals 对应题目中的 avoided hospitals;而前文提到 19 世纪民众非常恐慌(a panicked public),要求设计精妙的医院和建筑来免受瘴气伤害,因为人们害怕瘴气传播疾病,他们认为污浊的空气(foul air)才是“热病(hospital fever)”的主因,这些皆为人们不愿意去医院的原因。 因此答案为 F。
题目定位词:tall buildings, prestige
答案位置:C 部分倒数第 1 句
题解:题目:提到高楼大厦的流行与名誉声望有关
扫读至 C 部分时发现:该段提到的 buildings 是指 B 部分的摩天大楼(skyscrapers),对应题目中的 tall;此处提到西方国家电量消耗有 40%—50% 是高楼用电,其他国家也在以惊人的速度追赶,从侧面反映出摩天大楼是越来越多的,对应题目中的 popularity;最后一句中 Short 的话指出他认为 摩天大楼是地位的象征,其中 status 对应题目中的 prestige。因此答案为 C。
题目定位词:comparison, circulation, 19th-century building, modern standards
答案位置:E 部分第 1 段
题解:题目:对比 19 世纪建筑和现代标准建筑的通风状况
扫读至 E 部分第 1 段时发现:该段开头将 19 世纪的医院病房与一家由计算机控制的现代剧院的换气次数进行了对比;其中 19th-century hospital wards 对应题目中的 19th-century building,modern-day、computer-controlled operating theatre 对应题目中的 modern standards,similar to 体现出了对比(comparison),而 generate up to 24 air changes an hour 则说明了通风状况(circulation)。 因此答案为 E。
题目定位词:Short, tested, circulation, 19th-century
答案位置:D 部分第 2 段
题解:题目:Short 是如何测试 19 世纪建筑通风状况的
扫读至 D 部分时发现:该部分第 1 段提到了 19 世纪巧妙设计通风的医院大楼,其中 ventilating、 ingeniously ventilated 对应题目中的 circulation;紧 接着在第 2 段提到 Short 用数字模型(digitally modelling)模拟来自肺结核病人的病原体在空气中传播是否会影响其他病人。这一过程即是 Short 如何测试通风状况的。 因此答案为 D。
题目定位词:advertising, air conditioning
答案位置:B 部分第 2 段
题解:题目:暗示广告宣传导致了空调使用量的大幅度增加
扫读至 B 部分时发现:第 2 段谈到了空调的广泛普及,其中 the widespread introduction of air conditioning systems 对应题目中的 the large increase in the use of air conditioning,那么本题的难点在于考生能理解 advertising 和 marketed 在作动词时为同义表述,意为“营销推广”。 因此答案为 B。
