2024年考研英语作文素材精选 十一

雕龙文库 分享 时间: 收藏本文

2024年考研英语作文素材精选 十一

  2024考研英语作文素材精选

  39 The Salinity of Ocean Waters

  If the salinity of ocean waters is analyzed, it is found to vary only slightly from place to place. Nevertheless, some of these small changes are important. There are three basic processes that cause a change in oceanic salinity. One of these is the subtraction of water from the ocean by means of evaporation--- conversion of liquid water to water vapor. In this manner the salinity is increased, since the salts stay behind. If this is carried to the extreme, of course, white crystals of salt would be left behind.

  The opposite of evaporation is precipitation, such as rain, by which water is added to the ocean. Here the ocean is being diluted so that the salinity is decreased. This may occur in areas of high rainfall or in coastal regions where rivers flow into the ocean. Thus salinity may be increased by the subtraction of water by evaporation, or decreased by the addition of fresh water by precipitation or runoff.

  Normally, in tropical regions where the sun is very strong, the ocean salinity is somewhat higher than it is in other parts of the world where there is not as much evaporation. Similarly, in coastal regions where rivers dilute the sea, salinity is somewhat lower than in other oceanic areas.

  A third process by which salinity may be altered is associated with the formation and melting of sea ice. When sea water is frozen, the dissolved materials are left behind. In this manner, sea water directly materials are left behind. In this manner, sea water directly beneath freshly formed sea ice has a higher salinity than it did before the ice appeared. Of course, when this ice melts, it will tend to decrease the salinity of the surrounding water.

  In the Weddell Sea Antarctica, the densest water in the oceans is formed as a result of this freezing process, which increases the salinity of cold water. This heavy water sinks and is found in the deeper portions of the oceans of the world.

  NOTE:

  salinity / sэlinэti; sэ`linэti/

  n [U] the high salinity of sea water 海水的高含盐量.

  ---saline / seilain; US -li:n; `selin/

  1.adj [attrib 作定语] containing salt; salty 含盐的; 咸的:

  a saline lake 盐湖 saline springs 盐泉

  saline solution, eg as used for gargling, storing contact lenses, etc 盐溶液.

  2. n [U] solution of salt and water 盐水.

  40 Cohesion-tension Theory

  Atmospheric pressure can support a column of water up to 10 meters high. But plants can move water much higher; the sequoia tree can pump water to its very top more than 100 meters above the ground. Until the end of the nineteenth century, the movement of water in trees and other tall plants was a mystery. Some botanists hypothesized that the living cells of plants acted as pumps. But many experiments demonstrated that the stems of plants in which all the cells are killed can still move water to appreciable heights. Other explanations for the movement of water in plants have been based on root pressure, a push on the water from the roots at the bottom of the plant. But root pressure is not nearly great enough to push water to the tops of tall trees. Furthermore, the conifers, which are among the tallest trees, have unusually low root pressures.

  If water is not pumped to the top of a tall tree, and if it is not pushed to the top of a tall tree, then we may ask: how does it get there? According to the currently accepted cohesion-tension theory, water is pulled there. The pull on a rising column of water in a plant results from the evaporation of water at the top of the plant. As water is lost from the surface of the leaves, a negative pressure, or tension, is created. The evaporated water is replaced by water moving from inside the plant in unbroken columns that extend from the top of a plant to its roots. The same forces that create surface tension in any sample of water are responsible for the maintenance of these unbroken columns of water. When water is confined in tubes of very small bore, the forces of cohesion are so great that the strength of a column of water compares with the strength of a steel wire of the same diameter. This cohesive strength permits columns of water to be pulled to great heights without being broken.

 

  

  2024考研英语作文素材精选

  39 The Salinity of Ocean Waters

  If the salinity of ocean waters is analyzed, it is found to vary only slightly from place to place. Nevertheless, some of these small changes are important. There are three basic processes that cause a change in oceanic salinity. One of these is the subtraction of water from the ocean by means of evaporation--- conversion of liquid water to water vapor. In this manner the salinity is increased, since the salts stay behind. If this is carried to the extreme, of course, white crystals of salt would be left behind.

  The opposite of evaporation is precipitation, such as rain, by which water is added to the ocean. Here the ocean is being diluted so that the salinity is decreased. This may occur in areas of high rainfall or in coastal regions where rivers flow into the ocean. Thus salinity may be increased by the subtraction of water by evaporation, or decreased by the addition of fresh water by precipitation or runoff.

  Normally, in tropical regions where the sun is very strong, the ocean salinity is somewhat higher than it is in other parts of the world where there is not as much evaporation. Similarly, in coastal regions where rivers dilute the sea, salinity is somewhat lower than in other oceanic areas.

  A third process by which salinity may be altered is associated with the formation and melting of sea ice. When sea water is frozen, the dissolved materials are left behind. In this manner, sea water directly materials are left behind. In this manner, sea water directly beneath freshly formed sea ice has a higher salinity than it did before the ice appeared. Of course, when this ice melts, it will tend to decrease the salinity of the surrounding water.

  In the Weddell Sea Antarctica, the densest water in the oceans is formed as a result of this freezing process, which increases the salinity of cold water. This heavy water sinks and is found in the deeper portions of the oceans of the world.

  NOTE:

  salinity / sэlinэti; sэ`linэti/

  n [U] the high salinity of sea water 海水的高含盐量.

  ---saline / seilain; US -li:n; `selin/

  1.adj [attrib 作定语] containing salt; salty 含盐的; 咸的:

  a saline lake 盐湖 saline springs 盐泉

  saline solution, eg as used for gargling, storing contact lenses, etc 盐溶液.

  2. n [U] solution of salt and water 盐水.

  40 Cohesion-tension Theory

  Atmospheric pressure can support a column of water up to 10 meters high. But plants can move water much higher; the sequoia tree can pump water to its very top more than 100 meters above the ground. Until the end of the nineteenth century, the movement of water in trees and other tall plants was a mystery. Some botanists hypothesized that the living cells of plants acted as pumps. But many experiments demonstrated that the stems of plants in which all the cells are killed can still move water to appreciable heights. Other explanations for the movement of water in plants have been based on root pressure, a push on the water from the roots at the bottom of the plant. But root pressure is not nearly great enough to push water to the tops of tall trees. Furthermore, the conifers, which are among the tallest trees, have unusually low root pressures.

  If water is not pumped to the top of a tall tree, and if it is not pushed to the top of a tall tree, then we may ask: how does it get there? According to the currently accepted cohesion-tension theory, water is pulled there. The pull on a rising column of water in a plant results from the evaporation of water at the top of the plant. As water is lost from the surface of the leaves, a negative pressure, or tension, is created. The evaporated water is replaced by water moving from inside the plant in unbroken columns that extend from the top of a plant to its roots. The same forces that create surface tension in any sample of water are responsible for the maintenance of these unbroken columns of water. When water is confined in tubes of very small bore, the forces of cohesion are so great that the strength of a column of water compares with the strength of a steel wire of the same diameter. This cohesive strength permits columns of water to be pulled to great heights without being broken.

 

  

信息流广告 网络推广 周易 易经 代理招生 二手车 网络营销 招生代理 旅游攻略 非物质文化遗产 查字典 精雕图 戏曲下载 抖音代运营 易学网 互联网资讯 成语 成语故事 诗词 工商注册 注册公司 抖音带货 云南旅游网 网络游戏 代理记账 短视频运营 在线题库 国学网 知识产权 抖音运营 雕龙客 雕塑 奇石 散文 自学教程 常用文书 河北生活网 好书推荐 游戏攻略 心理测试 石家庄人才网 考研真题 汉语知识 心理咨询 手游安卓版下载 兴趣爱好 网络知识 十大品牌排行榜 商标交易 单机游戏下载 短视频代运营 宝宝起名 范文网 电商设计 免费发布信息 服装服饰 律师咨询 搜救犬 Chat GPT中文版 经典范文 优质范文 工作总结 二手车估价 实用范文 爱采购代运营 古诗词 衡水人才网 石家庄点痣 养花 名酒回收 石家庄代理记账 女士发型 搜搜作文 石家庄人才网 铜雕 词典 围棋 chatGPT 读后感 玄机派 企业服务 法律咨询 chatGPT国内版 chatGPT官网 励志名言 河北代理记账公司 文玩 朋友圈文案 语料库 游戏推荐 男士发型 高考作文 PS修图 儿童文学 买车咨询 工作计划 礼品厂 舟舟培训 IT教程 手机游戏推荐排行榜 暖通,电采暖, 女性健康 苗木供应 主题模板 短视频培训 优秀个人博客 包装网 创业赚钱 养生 民间借贷律师 绿色软件 安卓手机游戏 手机软件下载 手机游戏下载 单机游戏大全 免费软件下载 网赚 手游下载 游戏盒子 职业培训 资格考试 成语大全 英语培训 艺术培训 少儿培训 苗木网 雕塑网 好玩的手机游戏推荐 汉语词典 中国机械网 美文欣赏 红楼梦 道德经 网站转让 鲜花 社区团购 社区电商