SAVING THE SOIL

More than a third of the Earth’s top layer is at risk. Is there hope for our planet’s most precious resource?

A More than a third of the world’s soil is endangered, according to a recent UN report. If we don’t slow the decline, all farmable soil could be gone in 60 years. Since soil grows 95% of our food, and sustains human life in other more surprising ways, that is a huge problem.

B Peter Groffman, from the Cary Institute of Ecosystem Studies in New York, points out that soil scientists have been warning about the degradation of the world’s soil for decades. At the same time, our understanding of its importance to humans has grown. A single gram of healthy soil might contain 100 million bacteria, as well as other microorganisms such as viruses and fungi, living amid decomposing plants and various minerals.

That means soils do not just grow our food, but are the source of nearly all our existing antibiotics, and could be our best hope in the fight against antibiotic-resistant bacteria. Soil is also an ally against climate change: as microorganisms within soil digest dead animals and plants, they lock in their carbon content, holding three times the amount of carbon as does the entire atmosphere. Soils also store water, preventing flood damage: in the UK, damage to buildings, roads and bridges from floods caused by soil degradation costs £233 million every year.

C If the soil loses its ability to perform these functions, the human race could be in big trouble. The danger is not that the soil will disappear completely, but that the microorganisms that give it its special properties will be lost. And once this has happened, it may take the soil thousands of years to recover.

Agriculture is by far the biggest problem. In the wild, when plants grow they remove nutrients from the soil, but then when the plants die and decay these nutrients are returned directly to the soil. Humans tend not to return unused parts of harvested crops directly to the soil to enrich it, meaning that the soil gradually becomes less fertile. In the past we developed strategies to get around the problem, such as regularly varying the types of crops grown, or leaving fields uncultivated for a season.

D But these practices became inconvenient as populations grew and agriculture had to be run on more commercial lines. A solution came in the early 20th century with the Haber-Bosch process for manufacturing ammonium nitrate. Farmers have been putting this synthetic fertiliser on their fields ever since.

But over the past few decades, it has become clear this wasn’t such a bright idea. Chemical fertilisers can release polluting nitrous oxide into the atmosphere and excess is often washed away with the rain, releasing nitrogen into rivers. More recently, we have found that indiscriminate use of fertilisers hurts the soil itself, turning it acidic and salty, and degrading the soil they are supposed to nourish.

E One of the people looking for a solution to his problem is Pius Floris, who started out running a tree-care business in the Netherlands, and now advises some of the world’s top soil scientists. He came to realise that the best way to ensure his trees flourished was to take care of the soil, and has developed a cocktail of beneficial bacteria, fungi and humus* to do this. Researchers at the University of Valladolid in Spain recently used this cocktail on soils destroyed by years of fertiliser overuse. When they applied Floris’s mix to the desert-like test plots, a good crop of plants emerged that were not just healthy at the surface, but had roots strong enough to pierce dirt as hard as rock. The few plants that grew in the control plots, fed with traditional fertilisers, were small and weak

F However, measures like this are not enough to solve the global soil degradation problem. To assess our options on a global scale we first need an accurate picture of what types of soil are out there, and the problems they face. That’s not easy. For one thing, there is no agreed international system for classifying soil. In an attempt to unify the different approaches, the UN has created the Global Soil Map project. Researchers from nine countries are working together to create a map linked to a database that can be fed measurements from field surveys, drone surveys, satellite imagery, lad analyses and so on to provide real-time data on the state of the soil. Within the next four years, they aim to have mapped soils worldwide to a depth of 100 metres, with the results freely accessible to all.

G But this is only a first step. We need ways of presenting the problem that bring it home to governments and the wider public, says Pamela Chasek at the International Institute for Sustainable Development, in Winnipeg, Canada. ‘Most scientists don’t speak language that policy-makers can understand, and vice versa.’ Chasek and her colleagues have proposed a goal of ‘zero net land degradation’. Like the idea of carbon neutrality, it is an easily understood target that can help shape expectations and encourage action.

For soils on the brink, that may be too late. Several researchers are agitating for the immediate creation of protected zones for endangered soils. One difficulty here is defining what these areas should conserve: areas where the greatest soil persity is present? Or areas of unspoilt soils that could act as a future benchmark of quality?

Whatever we do, if we want our soils to survive, we need to take action now.

Questions 14-17

Complete the summary below.
Write ONE WORD ONLY from the passage for each answer.

Write your answers in boxes 14-17 on your answer sheet.

Questions 18-21

Complete each sentence with the correct ending, A-F, below.

Write the correct letter, A-F, in boxes 18-21 on your answer sheet.

A. may improve the number and quality of plants growing there.
B. may contain data from up to nine countries.
C. may not be put back into the soil.
D. may help governments to be more aware of soil-related issues.
E. may cause damage to different aspects of the environment.
F. may be better for use at a global level.
18. Nutrients contained in the unused parts of harvested crops
18
19. Synthetic fertilisers produced with Haber-Bosch process
19
20. Addition of a mixture developed by Pius Floris to the soil
20
21. The idea of zero net soil degradation
21
Questions 22-26

Reading Passage 2 has seven paragraphs, A-G.

Which section contains the following information?

Write the correct letter, A-G, in boxes 22-26 on your answer sheet.

NB  You may use any letter more than once.


A. Paragraph A
B. Paragraph B
C. Paragraph C
D. Paragraph D
E. Paragraph E
F. Paragraph F
G. Paragraph G
22. a reference to one person's motivation for a soil-improvement project
22
23. an explanation of how soil stayed healthy before the development of farming
23
24. examples of different ways of collecting information on soil degradation
24
25. a suggestion for a way of keeping some types of soil safe in the near future
25
26. a reason why it is difficult to provide an overview of soil degradation
26
我的答案
14.
未作答
15.
未作答
16.
未作答
17.
未作答
正确答案
14.
minerals
15.
carbon
16.
water
17.
agriculture
题目解析

题目定位词:large variety, bacteria, as well as, plant remains
答案位置:B 部分第 1 段最后 1 行
题解:题目:健康的土壤富含大量细菌和其他微生物,也含有植物残余和…… 
审题时可知空白处与 plant remains 为并列成分,故只需在原文中找到植物残余即可;文中提到健康的土壤包含微生物,还包含以分解植物和各种矿物质为生的细菌 ;decomposing plants 即题目中的 plant remains。因此答案为 minerals。

题目定位词:antibiotics, function, storing, climate
答案位置:B 部分第 2 段第 4 行
题解:题目:它为我们提供食物和抗生素,它储存……的功能对气候有重大影响。 
通过动词 storing 的同义替换词 locking in 可知,土壤还可以锁住碳性物质。因此答案为 carbon。

题目定位词:prevents, damage, because, holds
答案位置:B 部分第 2 段倒数第 2 行
题解:题目:此外,它可以保护建筑物和基础设施不受伤害,因为它能存……
通过 holds 在原文中的同义替换词 store 可知,储存的还有水分;题目中的 property 及 infrastructure 对应原文中的 buildings, roads and bridges,即楼房与基础设施建设。 因此答案为 water。

题目定位词:The main factor, soil degradation, humans
答案位置:C 部分第 2 段第 1 行
题解:题目:土壤质量下降的主要原因是人类的……行为。
文中提到农耕是最大的问题;原文中 the biggest problem 即题目中 The main factor 的同义替换。因此答案为 agriculture。

正确
错误
14
15
16
17
18
19
20
21
22
23
24
25
26
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