Computational Physics Homework 10 of Mobingbizhen

1.Abstract

  • EXERCISES

4.9. In this section we saw that orbits are unstable for any value of β that is not precisely 2 in (4.12). A related question, which we did not address (until now), is how unstable an orbit might be. That is, how long will it take for an unstable orbit to become obvious. The answer to this question depends on the nature of the orbit. If the initial velocity is chosen so as to make the orbit precisely circular, then the value of β in (4.12) will make absolutely no difference. Of course, in practice it is impossible to construct an orbit that is exactly circular, so the instabilities when β ≠ 2 will always be apparent given enough time. Even so, orbits that start out as nearly circular will remain almost stable for a longer period than those that are highly elliptical. Investigate this by studying orbits with the same value of β (say, β = 2.05) and comparing the behavior with different values of the ellipticity of the orbit. You should find that the orientation of orbits that are more nearly circular will rotate more slowly than those that are highly elliptical.
<br />
4.10. Calculate the precession of the perihelion of Mercury, following the approach described in this section.




2.Background

  • The solar system

The Solar System is the gravitationally bound system comprising the Sun and the objects that orbit it, either directly or indirectly. Of those objects that orbit the Sun directly, the largest eight are the planets, with the remainder being significantly smaller objects, such as dwarf planets and small Solar System bodies. Of the objects that orbit the Sun indirectly, the moons, two are larger than the smallest planet, Mercury.

Planets
  • Precession of Mercury

Mercury in color

In 1859, the French mathematician and astronomer Urbain Le Verrier reported that the slow precession of Mercury's orbit around the Sun could not be completely explained by Newtonian mechanics and perturbations by the known planets. He suggested, among possible explanations, that another planet (or perhaps instead a series of smaller 'corpuscules') might exist in an orbit even closer to the Sun than that of Mercury, to account for this perturbation. (Other explanations considered included a slight oblateness of the Sun.) The success of the search for Neptune based on its perturbations of the orbit of Uranus led astronomers to place faith in this possible explanation, and the hypothetical planet was named Vulcan, but no such planet was ever found.

The perihelion precession of Mercury is 5,600 arcseconds (1.5556°) per century relative to Earth, or 574.10±0.65 arcseconds per century relative to the inertial ICRF. Newtonian mechanics, taking into account all the effects from the other planets, predicts a precession of 5,557 arcseconds (1.5436°) per century. In the early 20th century, Albert Einstein's general theory of relativity provided the explanation for the observed precession. The effect is small: just 42.98 arcseconds per century for Mercury; it therefore requires a little over twelve million orbits for a full excess turn. Similar, but much smaller, effects exist for other Solar System bodies: 8.62 arcseconds per century for Venus, 3.84 for Earth, 1.35 for Mars, and 10.05 for 1566 Icarus.

Mercury orbit in solar system
Apsidendrehung



3.Main

  • (This time, we use different system of units: length in AU and time in year )

  • Formulation

Physics of high school

  • Algorithm

Euler - Cromer Mehtod

  • Thinking

In the course of computational physics, when practicing,I will try my best to insist on two princples of programming in my mind:

  • Simplicity
    ***As you see, I have dropped the generality for simplicity. ***

  • Results

Ⅰ. problem 4.10


Ⅱ. problem 4.10

4. Conclusion

  • Animation

the solar system
the Earth

  • Qualitative solution:

Orbits that start put as nearly circular will remain almost stable for a longer period than those that are highly elliptical.

  • Quantative solution:

**By a least-squares fit, I gain the approximately the same result as the textbook. **




5. Acknowlegement

  • Prof. Cai
  • Wikipedia
  • Baidu
  • BOSS (Shen Yang)
最后編輯于
?著作權(quán)歸作者所有,轉(zhuǎn)載或內(nèi)容合作請(qǐng)聯(lián)系作者
  • 序言:七十年代末,一起剝皮案震驚了整個(gè)濱河市虐拓,隨后出現(xiàn)的幾起案子召夹,更是在濱河造成了極大的恐慌罗心,老刑警劉巖进泼,帶你破解...
    沈念sama閱讀 207,113評(píng)論 6 481
  • 序言:濱河連續(xù)發(fā)生了三起死亡事件任岸,死亡現(xiàn)場(chǎng)離奇詭異栋齿,居然都是意外死亡苗胀,警方通過查閱死者的電腦和手機(jī),發(fā)現(xiàn)死者居然都...
    沈念sama閱讀 88,644評(píng)論 2 381
  • 文/潘曉璐 我一進(jìn)店門瓦堵,熙熙樓的掌柜王于貴愁眉苦臉地迎上來基协,“玉大人,你說我怎么就攤上這事菇用±酵裕” “怎么了?”我有些...
    開封第一講書人閱讀 153,340評(píng)論 0 344
  • 文/不壞的土叔 我叫張陵刨疼,是天一觀的道長(zhǎng)泉唁。 經(jīng)常有香客問我,道長(zhǎng)揩慕,這世上最難降的妖魔是什么亭畜? 我笑而不...
    開封第一講書人閱讀 55,449評(píng)論 1 279
  • 正文 為了忘掉前任,我火速辦了婚禮迎卤,結(jié)果婚禮上拴鸵,老公的妹妹穿的比我還像新娘。我一直安慰自己蜗搔,他們只是感情好劲藐,可當(dāng)我...
    茶點(diǎn)故事閱讀 64,445評(píng)論 5 374
  • 文/花漫 我一把揭開白布。 她就那樣靜靜地躺著樟凄,像睡著了一般聘芜。 火紅的嫁衣襯著肌膚如雪。 梳的紋絲不亂的頭發(fā)上缝龄,一...
    開封第一講書人閱讀 49,166評(píng)論 1 284
  • 那天汰现,我揣著相機(jī)與錄音挂谍,去河邊找鬼。 笑死瞎饲,一個(gè)胖子當(dāng)著我的面吹牛口叙,可吹牛的內(nèi)容都是我干的。 我是一名探鬼主播嗅战,決...
    沈念sama閱讀 38,442評(píng)論 3 401
  • 文/蒼蘭香墨 我猛地睜開眼妄田,長(zhǎng)吁一口氣:“原來是場(chǎng)噩夢(mèng)啊……” “哼!你這毒婦竟也來了驮捍?” 一聲冷哼從身側(cè)響起疟呐,我...
    開封第一講書人閱讀 37,105評(píng)論 0 261
  • 序言:老撾萬榮一對(duì)情侶失蹤,失蹤者是張志新(化名)和其女友劉穎厌漂,沒想到半個(gè)月后萨醒,有當(dāng)?shù)厝嗽跇淞掷锇l(fā)現(xiàn)了一具尸體,經(jīng)...
    沈念sama閱讀 43,601評(píng)論 1 300
  • 正文 獨(dú)居荒郊野嶺守林人離奇死亡苇倡,尸身上長(zhǎng)有42處帶血的膿包…… 初始之章·張勛 以下內(nèi)容為張勛視角 年9月15日...
    茶點(diǎn)故事閱讀 36,066評(píng)論 2 325
  • 正文 我和宋清朗相戀三年富纸,在試婚紗的時(shí)候發(fā)現(xiàn)自己被綠了。 大學(xué)時(shí)的朋友給我發(fā)了我未婚夫和他白月光在一起吃飯的照片旨椒。...
    茶點(diǎn)故事閱讀 38,161評(píng)論 1 334
  • 序言:一個(gè)原本活蹦亂跳的男人離奇死亡晓褪,死狀恐怖,靈堂內(nèi)的尸體忽然破棺而出综慎,到底是詐尸還是另有隱情涣仿,我是刑警寧澤,帶...
    沈念sama閱讀 33,792評(píng)論 4 323
  • 正文 年R本政府宣布示惊,位于F島的核電站好港,受9級(jí)特大地震影響,放射性物質(zhì)發(fā)生泄漏米罚。R本人自食惡果不足惜钧汹,卻給世界環(huán)境...
    茶點(diǎn)故事閱讀 39,351評(píng)論 3 307
  • 文/蒙蒙 一、第九天 我趴在偏房一處隱蔽的房頂上張望录择。 院中可真熱鬧拔莱,春花似錦、人聲如沸隘竭。這莊子的主人今日做“春日...
    開封第一講書人閱讀 30,352評(píng)論 0 19
  • 文/蒼蘭香墨 我抬頭看了看天上的太陽(yáng)动看。三九已至尊剔,卻和暖如春,著一層夾襖步出監(jiān)牢的瞬間菱皆,已是汗流浹背须误。 一陣腳步聲響...
    開封第一講書人閱讀 31,584評(píng)論 1 261
  • 我被黑心中介騙來泰國(guó)打工笔咽, 沒想到剛下飛機(jī)就差點(diǎn)兒被人妖公主榨干…… 1. 我叫王不留,地道東北人霹期。 一個(gè)月前我還...
    沈念sama閱讀 45,618評(píng)論 2 355
  • 正文 我出身青樓,卻偏偏與公主長(zhǎng)得像拯田,于是被迫代替她去往敵國(guó)和親历造。 傳聞我的和親對(duì)象是個(gè)殘疾皇子,可洞房花燭夜當(dāng)晚...
    茶點(diǎn)故事閱讀 42,916評(píng)論 2 344

推薦閱讀更多精彩內(nèi)容