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Science Junior High

(2)の①です。Dが中性でEはもう酸性だと思ったんですけど解説みたら全然違いました。解説みてもわからなかったので教えてください!!

MOTORE ■うすい硫酸とうすい水酸化バリウム水溶液を用いて,次の実験を行った。 次の問いに答えな 0.1. さい。(´22 兵庫県) <実験 > うすい水酸化バリウム水溶液をそれぞれ20cm²ずつビーカー A~Eにとり, BTB溶液を2,3滴ずつ加えた。その後, ビーカー A~Eに加えるうすい硫酸の体積を変化させて, (a)~(c)の手順 で実験を行った。 (a) うすい硫酸をメスシリンダーではかりとり,図1のように, ビーカーA~Eにそれぞれ加えて反応させた。 しばらくする と、ビーカー A~Eの底に白い沈殿ができた。 (b) 図2のように、電源装置と電流計をつないだステンレス電 極を用いて,ビーカーA~Eの液に流れる電流をはかった。 (c)(a)でできた白い沈殿をろ過し、ろ紙に残ったものをじゅう ぶんに乾燥させて質量をはかり, 加えたうすい硫酸の体積と できた白い沈殿の質量を表1にまとめた 表 1 図 1 うすい硫酸 うすい水酸化バリウム 水溶液 20cm A 図2 ビーカー - ステンレス 電極 A E B C D 加えたうすい硫酸の体積 [cm²] 10 20 30 40 50 できた白い沈殿の質量 〔g〕 0.24 0.48 0.72 0.82 0.82 電源装置 *** (S) 00. 9800 (E) 電流計 ESSERELLA 分授製水( 1. *HI DH (1) 水酸化バリウム水溶液に含まれるバリウムイオンについて説明した文として適切なもの を,次のア~エから1つ選んで、その符号を書きなさい。 ア バリウム原子が電子1個を失ってできた1価の陽イオンである。 イバリウム原子が電子2個を失ってできた2価の陽イオンである。 ウバリウム原子が電子1個を受け取ってできた1価の陰イオンである。漁 エバリウム原子が電子2個を受け取ってできた2価の陰イオンである。 DAVID (2) 次の文の 1 に入る色として適切なものを、あとのア~エからそれぞれ1枚し 2 つ選んで、その符号を書きなさい。 うすい水酸化バリウム水溶液が入ったビーカーEにBTB溶液を加えたとき, ビーカー の液は ① になり、うすい硫酸50cm²を加えると液は② ア 赤色 青色 緑色 エ 黄色 になる。 o[ + ][ {]

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English Senior High

問3について質問です。 当方、全くいい案が浮かばなかったのですが、皆さんがこのような英作文に当たったらどう対処しますか❓ 具体例としてはニホンカワウソやツシマヤマネコ、トキ、コウノトリが挙げられるようですが私はどの生き物も英語で書けません。(/ω\*) ちなみに私はホ... Read More

次の英文を読み, 設問に答えなさい。 Jaguars had called the American Continents their home since the Ice Age when their ascendents crossed the Bering Land Bridge that once joined what is now Alaska and Russia. They lived in the central mountains of the southwestern United States for hundreds of years until they were almost driven to extinction in the mid- 20th century after hunters shot the last one in the 1960s. Currently, jaguars are found in 19 different countries. Several males have been observed in Arizona and New Mexico over the last 20 years, but breeding pairs have not been seen or reported north of Mexico. Natural reestablishment of them is also unlikely because of urbanization and the U.S.-Mexico border blocking jaguar migration routes. Now, after more than a 50-year absence, conservation scientists are suggesting the jaguar's return to their native environment in a study that outlines what the rewilding effort may look like. The authors of the new paper suggest a suitable area for jaguars spanning 2 million acres from central Arizona to New Mexico. The space would provide a big enough range for 90 to 150 jaguars, the researchers explained. They also argued that bringing jaguars back to the U.S. is crucial to species conservation as they are listed as near-threatened on the IUCN Red List, and reintroduction could also help restore native ecosystems, the Associated Press reports. "The jaguar lived in these mountains long before Americans did. If done

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English Senior High

英文がわからないです心の優しい方、英文の解き方を教えて欲しいです🙇‍♀️

35 15 20 signatures in business. However, no one used fingerprints in crime work until the late In ancient times, people used fingerprints to identify people. They also used them as 1880s. Three men, working in three different areas of the world, made this possible. (1) The first man who collected a large number of fingerprints was William Herschel. He worked for the British government in India. He took fingerprints when people (7) official papers. For many years, he collected the same people's fingerprints several times. He made an important discovery. Fingerprints do not change over time. At about the same time, a Scottish doctor in Japan began to study fingerprints. Henry Faulds was looking at ancient Japanese pottery* one day when he noticed small It occurred to him that the lines were 2,000-year-old fingerprints. Faulds wondered, "Are fingerprints unique to each person?" He began to take fingerprints of all his friends, co-workers, and students at his medical school. Each print was (). He also wondered, "Can you change your fingerprints?” shaved the fingerprints off his fingers with a razor to find out. Would they grow back lines on the pots. (2) He the same? They did. One day, there was a theft in Faulds's medical school. Some alcohol was missing. Faulds found fingerprints on the bottle. He compared the fingerprints to the ones in his records, and he found a match. The thief was one of his medical students. By examining fingerprints, Faulds solved the crime. Both Herschel and Faulds collected fingerprints, but there was a problem. It was very difficult to use their collections to identify a specific fingerprint. Francis Galton in England made it easier. He noticed common patterns in fingerprints. He used these to help classify fingerprints. These features, called "Galton details," made it easier for police to search through fingerprint records. The system is still in use today. When 25 police find a fingerprint, they look at the Galton details. Then they search for other fingerprints with similar features. (4) Like Faulds, Galton believed that each person had a unique fingerprint. According to Galton, the chance of two people with the same fingerprint was 1 in 64 billion. Even the fingerprints of identical twins are ( ). Fingerprints were the perfect tool to 30 identify criminals. For mo than 100 years, no one found two people with the same prints. Then, in 2004, terrorists (I) a crime in Madrid, Spain. Police in Madrid found a fingerprint. They used computers to search databases of fingerprint records all over the world. Three fingerprint experts agreed that a man on the West Coast of the United States was one of the criminals. Police arrested him, but the experts were wrong. The man was innocent. Another man was (). Amazingly, the two men who were 6,000 5 10 136 Lesson 日本大学 470 words 22 (3) 23 024 25 26

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Physics Senior High

2番の問題の時って、入射してる時のVは波長変わる前と変わらない、fだけ長くなる 屈折したあとはfは入射してる時と変わらない であってますか あと屈折したあとの光の速さは633の時より遅くなりますよね

A 屈折率nの物質中では, 光の速さが空気中の速さの一になる。 屈折率は光の波 17643 KM MOTOR SE J n *86 【8分・20点】 ke& 長によって異なり, 水の屈折率は可視光線の範囲では, 図1に示すように波長が長く なるにつれて減少する。ただし,空気の屈折率は1とする。 いま図2に示すように, 空気中から水槽に入射角iで 633nm (赤色) のレーザー光 を入射したところ, 光線は水中では図のように屈折角の方向に進んだ。 205 明 **** 1.345 の1.340 屈 折 1.335 率 1.330 レーザー光 JAN G 1 400 450 500 550 600 650 波長(nm) 図1 ONES 151 図2 OTHEOS こる側の 問1 レーザー光の水中での波長と振動数は,空気中のそれに比べるとどのようにな るか の ① 波長も振動数も変化しない。 ②波長は長くなり,振動数は変化しない。 ③波長は短くなり, 振動数は変化しない。 ④ 波長は変化せず, 振動数は大きくなる。 ⑤ 波長は変化せず, 振動数は小さくなる。 問2 レーザー光の波長を 515nm (緑色) に変え, 同じ入射角で入射したとき,水中 に入った光は,633nmの場合に比べてどのように変化するか。 ① 屈折角も, 光の速さも一定で変化しない。 ② 屈折角 ③ 屈折角 ④ 屈折角 がわずかに大きくなる。 ⑤ 屈折角がわずかに小さくなる。 光の速さが大きくなる。 は一定のまま, 光の速さが小さくなる。 は一定のまま,

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