跟读练习: What’s Ruining Our Ruins? - 通过视频学习英语口语
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The United Nations has designated roughly 1,000 culturally important world heritage sites around the world.
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But at many of them, something has quietly been going wrong.
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Paintings are flaking away, wood is rotting, even stone is slowly dissolving into powder.
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If you're wondering what's so powerful that it could take down some of our oldest and most protected sites, well, this destruction isn't the product of war or natural disasters or other huge events.
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It's the work of microbes.
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Here's how some mini-microbes are ruining our ruins.
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First up, we're going to the Maijishan Grottoes,
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a series of roughly 200 caves carved into the side of a sheer sandstone mountain in the Gansu province of northwest China.
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You have to be feeling brave to cross these soaring walkways that lead inside, but once you've entered Agrano,
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you can find sculptures and wall paintings from as far back as the 300s.
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But despite standing through 1700 years, the site is in trouble.
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In 2018, experts reported that microbial plaques had started growing on the art.
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As far as we know, it's not like microbes hate art or something.
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They do this to make a home for themselves or to get nutrients.
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In fact, while a painting might seem like a weird place for life to grow, if you're a microbe, paintings can be full of tasty bits.
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There's the paint itself, which might contain things like plant oils, egg yolk, or animal glue.
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But there may also be layers of organic materials like straw or other plant fibers beneath as well,
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which the ancient painters would have slathered on the wall to give themselves a smooth surface to work on.
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That is a balanced meal for a microbe.
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As for what kind of microbes, there's a wide variety of bacteria and algae.
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Both of those organisms can do art damaging things like poop out acids or form gooey biofilms that can trap water.
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You can also get molds and other fungi growing on those ruins, which spread their root-like hyphae underneath the surface looking for nutrients.
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All these little fellas can physically separate the layers of a painting, causing bits to flake or fall off.
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They can also cause changes in color, either by degrading existing pigments or by adding their own colors into the mix.
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Green algae can turn things, well, green.
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Certain bacteria can do green as well, plus yellow, brown, or black.
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One kind of bacteria can even create a lovely salmon pink.
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But in the case of Maijishan, there were mainly white and black splotches appearing on the walls.
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When scientists analyzed the splotches, they found that a common decomposing fungus was the dominant microbe in the black biofilms.
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Meanwhile, Cladosporium, a super common indoor mold, and an unclassified species of fungus were dominant in white biofilms.
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As for what caused the outbreak, they don't know for sure, but it probably had to do with cave critters.
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The decomposing fungus is associated with arthropods, like bugs, and fungi can also grow on animal dung or after flooding.
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So animals getting into these caves to shelter from heavy rains might be contributing.
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In fact, previous work on the splotches also pointed fingers at excess humidity as a possible cause
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and suggested it could be from more human visitors or even shifts in the weather thanks to climate change.
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We know this is possible.
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The Lescaux Caves in southwestern France contain wall paintings from as far back as 22,000 years ago.
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But after their rediscovery in the 1940s, lots of people began visiting, and the carbon dioxide, heat, and water vapor from their breath caused microbes to grow.
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The authorities eventually closed the caves to the public, and for 40-ish years tried using biocides, including antibiotics, to get rid of those microbes.
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And it worked on some of the microbes.
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But that opened up space for a new fungus to move in, which left a whole new set of white stains behind.
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Similar things happened when people tried to disinfect the frescoes of St. Paul in Ephesus.
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So biocides don't always work as well as we hope.
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Another option is manual removal, like using soft brushes, a vacuum, and a little bit of elbow grease,
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which they tried in the Maijishan grottos, along with biocide treatments.
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Those measures seem to have worked well, even though this is probably going to be an ongoing project.
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But paintings aren't the only type of heritage under pressure for microbes.
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We've also had some problems with wood.
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But before we go there, it's time for a quick ad.
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Worth Knowing, and it's live at the Wilshire Ebel Theater in Los Angeles, California on September 16th, 2026.
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This first ever Complexly In-Person event is a fundraiser to support our mission of inspiring curiosity and lowering barriers to knowledge building.
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Because curiosity builds understanding, and understanding builds a better world.
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You can get your ticket at somethingworthknowing.org.
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See you there.
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In the desert of New Mexico, you can find Chaco Canyon.
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It's another UNESCO World Heritage Site, occupied by the ancestral Puebloan people for about 300 years, starting around the mid-800s.
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While they were there, they built impressive great houses and other infrastructure out of stone and wood.
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And so far, it's stood the test of time, but not entirely unscathed.
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For example, in the mid-aughts, expert examined some of the wooden beams that made up the buildings and found a significant amount of damage.
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Some was from weathering and other physical processes, but some was from microbes.
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Now, wood, especially wood in harsh, dry environments like the New Mexico desert, can be pretty resistant to microbes like bacteria.
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Wood is tough and durable because plant cells are surrounded by cell walls, and woody plants in particular pack them especially full of tough,
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hard-to-break-down molecules like cellulose and lignin.
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But wood is vulnerable to fungi because they have ways to get into and even get food from these compounds.
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One of the main troublemakers is a group of fungi that includes brown rot fungi.
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These little guys specialize in decaying the cellulose in plant cells, leaving the colorful lignin behind.
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This turns the wood soft, but leaves the wood's brown color behind.
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And that's where they got their name.
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White rot fungi, meanwhile, turn wood white, since they decay everything, including lignin.
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Some even specialize in lignin.
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Another major kind of fungal wood decay is soft rot.
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This looks really similar to brown rot.
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In fact, it's so similar
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that you generally need to look at samples under a microscope to tell soft rot and brown rot apart, even though the organisms behind the rot are pretty different.
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And experts have found some brown rot and a lot of soft rot setting in at Chaco.
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Some parts of the wood were so degraded they could be crushed into a fine powder with even slight pressure.
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Part of the problem may have come from fissures in the wood, which can catch moisture and nutrient-rich particles from the environment, the perfect conditions for microbes to move in.
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In this case, instead of biocides, we've been reburying parts of the site since the 1980s.
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The idea is that digging them up likely exposed them to the moisture the fungi needed to thrive, so reburying them should hopefully remove that moisture and stop further growth.
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As an added layer of protection, conservationists also installed things like moisture monitors alongside the buried material,
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as well as waterproof fabric sheets or drains and pipes that can funnel surface water away from stuff buried further down.
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Free burial is pretty low-tech, practical, and compared to trying to replace the wooden beams or other materials again and again, a good deal money-wise.
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We like to imagine technology solving all our problems, but sometimes the best option for archaeologists is to leave things alone and preserve them for the future.
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We can get the technology to fix it later.
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Although eventually everything breaks down, whether it's paint or wood or even stone itself, as our last location shows.
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In 2018, scientists took samples from a bunch of sites in Egypt, from tombs and obelisks to mosques and even the pyramids at Giza.
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These sites are ancient and have withstood the test of time, but over the years, people have noted damage at some of them,
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including black stains and pitting in the rocks themselves.
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Scientists have found two species of a common mold, along with Cladosporium, one of the fungi found at Mygishan.
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And we're not just seeing it in Egypt.
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Another desert site, Megiddo, was surveyed in 2023.
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This World Heritage site was swabbed from the visitor entrance to its major archeological sites.
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Experts didn't report damage, but did detect acid producing microbes.
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As for what a microbe would even want with stone, just like wood or paintings, it can give them a home and even food.
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They might even damage the stone itself by doing things like dissolving minerals from the rocks, which unfortunately for UNESCO can be especially damaging in rocks like limestone.
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Plus they can cause damage through things like those watery biofilms and root-like hyphae.
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And And in some cases, they can even poop out salts, which can be destructive both chemically and physically, if it starts to build up in cracks and force them apart.
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Case in point, the Egyptian group applied cladosporium fungi to some fresh stone and found it discolored and weakened.
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It had even dissolved some of the stone after just two months.
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To treat those issues, they tried a bunch of different biocides on their stone blocks and found some that worked,
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including synthetic topical antiseptics, as well as natural options like clove oil.
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But we don't want to go indiscriminately killing all life at these UNESCO sites, because in some cases, microbes might actually protect them.
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At Angkor Wat in Cambodia, for example, scientists found that lichens might help protect the stone buildings there from water damage.
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They were effectively shielding the site from the weather, and may also have been pushing out other microbes that could have damaged the site.
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Now, lichens are actually a mix of microscopic bacteria and algae living inside a kind of fungal web, and some of them are microscopic so they might tow the line of microorganism,
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but for the purposes of this video, we are counting them.
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But if you're not team microbe when it comes to lichens, there are still other protective guys under the microscope.
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Some scientists are even experimenting with the idea of purposefully applying certain harmless bacteria
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or amoebas to different archeological sites as a preventative or even restorative treatment.
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In plaques and other microbial communities, including ones from places like murals or ruins, there are protective microbes that may crowd out,
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chemically suppress or directly prey upon the ones that cause damage.
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There are even microbe-targeting viruses we might be able to use.
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One group experimented with using sulfate-eating bacteria to remove unsightly black sulfate-rich gypsum deposits from the base of a famous marble sculpture,
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Michelangelo's Rondonini Pieta.
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The bacteria were mixed into a gel that could be slathered onto the sculpture.
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A day later, scientists came back, washed it off, and found that the deposits were gone.
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So along with all of the publications coming out that highlight microbes' destructive ways, people are experimenting with plenty of them that could help in preservation.
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We often talk about these sites as if they're kind of frozen in time, but in fact, they're constantly changing ecosystems.
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Microbial research helps us understand those changes so we can preserve the sites for generations to come.
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Sometimes if you want a better view of the future, you need to get out a microscope.
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✨ 推荐视频
本课的词汇与口语要点
这节 B2 级别的口语课以视频“What’s Ruining Our Ruins?”为素材。 视频中反复出现的词有:microbe, site, wood, fungi, rot。 这段视频共有 120 个句子、1965 个单词可供跟读。 讲话部分时长为 11:19。 说话人语速自然,每分钟约 174 个词,接近日常对话。 只有 77% 的单词属于英语最常用的 3,000 词,词汇难度较高。
视频中的重点词汇
视频中最难的 15 个单词,附发音和释义:
| 单词 | 发音 | 释义 |
|---|---|---|
| microbe 名词 | /ˈmaɪkɹoʊb/ | 微生物 |
| bacterium 名词 | /bækˈtɪəɹ.ɪəm/ | 細菌 /细菌 |
| lignin 名词 | /ˈlɪɡ.nɪn/ | 木質素 /木质素 |
| fungus 名词 | /ˈfʌŋ.ɡəs/ | 菌類 /菌类, 真菌 |
| moisture 名词 | /ˈmɔɪs.t͡ʃɚ/ | 濕氣 /湿气 |
| alga 名词 | /ˈæl.ɡə/ | 水藻, 藻類 /藻类 |
| dissolve 动词 | /dɪˈzɑlv/ | 解散 |
| lichen 名词 | /ˈlaɪ.kən/ | 地衣 |
| microscope 名词 | /ˈmaɪ.kɹəˌskoʊp/ | 顯微鏡 /显微镜 |
| nutrient 名词 | /ˈnuː.tɹi.ənt/ | 養分 /养分, 營養素 /营养素 |
| sculpture 名词 | /ˈskʌlpt͡ʃɚ/ | 雕塑, 雕像 |
| cellulose 名词 | /ˈsɛljəloʊs/ | 纖維素 /纤维素 |
| decompose 动词 | /ˌdiːkəmˈpəʊz/ | 分解 |
| sulfate 名词 | /ˈsʌlfeɪt/ | 硫酸鹽 /硫酸盐 |
| organism 名词 | /ˈɔɹ.ɡəˌnɪz.əm/ | 生物, 有機體 /有机体 |
视频中出现的短语动词
| 单词 | 发音 | 释义 |
|---|---|---|
| break down 动词 | 壞了 /坏了, 出故障 | |
| come back 动词 | 回來 /回来, 返回 | |
| come out 动词 | /ˌkʌm ˈaʊt/ | 出, 出來 /出来 |
| make up 动词 | /ˌmeɪk ˈʌp/ | 組成 /组成 |
视频中的语法
说话人最常用的结构,并附上视频中的原话:
| 结构 | 视频中的用法 |
|---|---|
| 现在完成进行时 have/has been + -ing — 以前开始、现在仍在继续的动作 | we've been reburying · have been pushing |
| 被动语态 be + 过去分词 — 强调发生了什么,而不是谁做的 | is associated · are surrounded · could be crushed |
| 现在完成时 have/has + 过去分词 — 过去发生但与现在仍有关联的事 | has designated · you've entered · have found |
| 定语从句 who / which + 从句 — 补充说明人或事物 | wood, which can · salts, which can |
需要注意的发音
说话人用了 16 次缩略和弱读形式,例如 don't, you're, they're。请按听到的简短形式来说。
- “th” 音: slather /ˈslæðə(ɹ)/, arthropod /ˈɑːθɹəpɒd/, thrive /θɹajv/, synthetic /sɪnˈθɛtɪk/, underneath /ˌʌndɚˈniθ/
- “sh” 和 “zh” 音: specialize /ˈspɛʃəˌlaɪz/, sheer /ʃɪɚ/, preservation /ˌpɹɛz.əˈveɪ.ʃən/, harsh /ˈhɑɹʃ/, crush /kɹʌʃ/
- 长单词——注意重音位置: microbial /maɪˈkɹəʊ.bi.əl/, microscopic /ˌmaɪ.kɹəˈskɑ.pɪk/, organism /ˈɔɹ.ɡəˌnɪz.əm/, curiosity /ˌkjʊɹ.iˈɑ.sə.ti/, ancestral /ænˈsɛs.təɹ.əl/
中文母语者容易读错的音:
- /v/ — 不要读成 /w/,上齿轻触下唇: dissolve /dɪˈzɑlv/, destructive /dɪˈstɹʌktɪv/, visitor /ˈvɪzɪtɚ/, protective /pɹəˈtɛk.tɪv/, preserve /pɹəˈzɝv/
- 词尾辅音 — 要读清楚,后面不要加元音: microbe /ˈmaɪkɹoʊb/, biocide /ˈbaɪoʊsaɪd/, fungus /ˈfʌŋ.ɡəs/, dissolve /dɪˈzɑlv/, splotch /splɑt͡ʃ/
- /r/ 和 /l/ 的区别: microbial /maɪˈkɹəʊ.bi.əl/, slather /ˈslæðə(ɹ)/, ancestral /ænˈsɛs.təɹ.əl/, archaeologist /ˌɑɹ.kiˈɑ.lə.d͡ʒɪst/, durable /ˈdʊɹəbəl/
如何用这段视频练习
- 先完整听一遍视频,不要开口,记下不认识的单词。
- 先用 0.75 倍速逐句跟读,熟练之后再回到正常速度。
- 录下自己的声音并与原声对比,特别注意 microbe, bacterium, lignin 这类单词。
什么是跟读法?
跟读法 (Shadowing) 是一种有科学依据的语言学习技巧,最初开发用于专业口译员的培训,并由多语言者Alexander Arguelles博士普及。这个方法简单而强大:您在听英语母语原声的同时立即大声重复——就像是一个延迟1-2秒紧跟说话者的影子。与被动听力或语法练习不同,跟读法强迫您的大脑和口腔肌肉同时处理并模仿真实的讲话模式。研究表明它能显着提高发音准确性,语调,节奏,连读,听力理解和口语流利度——使其成为雅思口语备考和真实英语交流最有效的方法之一。





















