バナナの皮と核の抑止力 cloud seeding と 火山の噴火
鈴木長崎市長「そもそも核兵器の存在自体が許されない」高市内閣「非核三原則」見直し検討を受け(KTNテレビ長崎)
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核を持っても
あまり、、、抑止力に(?)なるのかな?
「首 斬る」発言
とか
「Entire China をbattle fieldに」発言の方がきくかも?
(北京?だけ?トランプさん)
(だって
台湾に首つっこまないでって
一国民は思っちゃったけど)
台湾に首突っ込んで
日本を戦地にしないでほしいけどな
首斬られるの???
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長崎平和宣言
1945 年8月9日、このまちに原子爆弾が投下されました。あの日から 80 年を迎える今、こんな世界になってしまうと、誰が想像したでしょうか。
「武力には武力を」の争いを今すぐやめてください。
対立と分断の悪循環で、各地で紛争が激化しています。
このままでは、核戦争に突き進んでしまう―。そんな人類存亡の危機が、地球で暮らす私たち一人ひとりに、差し迫っているのです
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BREAKING
The new Trump plan to end the war in Ukraine would grant Russia parts of eastern Ukraine it does not currently control, in exchange for a U.S. security guarantee for Ukraine and Europe against future Russian aggression — Axios
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次のウクライナは日本発言は岸田元首相
ウクライナみたいに
一部(沖縄? 昔アメリカだったみたいに?)中国にしたいの?
Entire Japanをbattle field にしたいの?
(台湾有事
首 斬る?)
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マグマと水なー
人工降雨
Cloud seeding
ある世界だから
マグマに水!
そして
人工噴火!
そんなこと、、、
「技術的に!戦争として!?」
できちゃうの?
Mount Vesuvius was triggered by injecting water into the magma chamber
ヴェスヴィオ山
イタリアのカンパニア州にある活火山
紀元79年の噴火:でポンペイとヘルクラネウムを破壊し街を埋め尽くした
1000 years prior to that the ancient world was already capable of such tunneling precision as seen in Hezekiah's tunnel
Hezekiah's tunnel
は紀元前701年
アッシリアの Sennacherib王による侵攻に備えエルサレムに水を供給するためのトンネル
水?
トンネル?
マグマ?
噴火?
ポンペイは、、、
The tunnels have long been filled in and cemented
But modern science can not only show how we can produce these explosive eruptions, but it can also locate these long lost tunnels despite hundreds of years of cover up
In time this will be proven
(えー!
そうなの!?)
ー
Rome fell because the Goths put a banana peel right where Rome was gonna step but more critically they also placed a garden rake right where Rome was gonna get back up
ばななか、、、
核の抑止力?
では
ローマではない中国の「バナナの皮」と「熊手」?!なんだろう
gonna step / gonna get back up
「場所どこ」?
核?バナナの皮?
(人類の進歩なのか、、、ある意味退化なのか?)
バナナの皮ですんでたのに、、、(地球は壊れない!お金?エコ?)
ー
(富士山はそのうち噴火する?
マグマって
どこ通ってるの?
やたらミサイル降ってきて海にぽちゃんと落ちてるけど
ああいうの
「海底」とか
「海底火山」
影響ゼロ?
(海のことはよくわからないな)
(すでに海底ケーブルは
あっちの海100マイル(中国は否定?ロシアサボタージュ)と台湾(中国)のあたりの海で、、、
海底で他には何が起こっているんだろうな?
原子力サブマリン?(抑止力?)
ドローンは飛んでくる(核は一応NATO持っているのでは?)
airports or flown over sensitive sites such as power plants, ports and military bases.
日本の原発
「おもちゃのドローン」とかから安全?
(街中でいたけど!おもちゃドローン!
おもちゃの実弾の拳銃すでにあるの?
日本!
レーザーポインター?)
核の抑止力?(ドローンそれでも飛ぶ?)
German military to take greater domestic role in countering drones
Germany recently moved to expand police powers to counter drone threats.
(日本の警察
熊撃つの?、、、京都府警みたいな警察だけど安全?
パスポートどっか持って行ってインジェクション!
18H coma!
外からロック!
心臓!
そして
在日コリアンのドクター!)
Recent drone incidents in Germany and elsewhere in Europe in recent months have been blamed on Russia,
ロシアなのか
(ドイツ)
今まで
撃ち落とせなかったの?
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WATCH
Live webcam recorded the dramatic advance of a glowing pyroclastic flow from Mount Semeru in Indonesia today
(世界中で噴火
マグマ
繋がってる?
マグママップ
水流マップみたいなの?あるの??)
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Geothermal drilling accidents
(、、、「わざとだよ」は今までの歴史上ないのかな?
NANAでいう
ヒールの高い靴
と終電に乗り遅れる女の子)
事故?でなく?「噴火させたかったの」?
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Grokの回答
Here’s a clear, evidence-based explanation of the underlying physics and volcanology that has been demonstrated in both laboratory experiments and observed in real volcanic systems (particularly in geothermal drilling incidents), focusing purely on the mechanism by which injecting cold water (or other fluids) into hot rock containing magma or near-magmatic temperatures can trigger an explosive eruption.
### Core Mechanism: Rapid Phase Change + Pressure Spike
1. **Thermal stress and rock fracturing**
When cold water (typically 20–100 °C from the surface) contacts very hot rock (>600–1000 °C near a magma body), the extreme temperature contrast causes the rock to contract and fracture almost instantly (thermo-mechanical quenching). This has been repeatedly reproduced in lab experiments with basalt and rhyolite at magmatic temperatures: cold water injection creates dense networks of micro-fractures within seconds, dramatically increasing the permeability of what was previously low-permeability crystalline rock.
2. **Flash boiling of injected water**
As soon as the newly created fractures reach rock hotter than ~350–400 °C (depending on pressure), the cold water flashes to steam. At depths of 1–3 km (typical for shallow magma chambers or crystallised intrusions), the boiling point of water under lithostatic pressure is suppressed, but once fractures open and pressure drops even slightly, the water explosively vaporises. The volume expansion from liquid water to steam at those temperatures is roughly 1:1000 to 1:1700. This is the same principle used in laboratory “hydrothermal eruption” analogues.
3. **Overpressurisation of the system**
The instantaneous steam generation creates a sudden pressure pulse that can easily exceed the tensile strength of the surrounding rock and the confining pressure. Experiments at volcanic labs (e.g., Munich, Liverpool, and INGV Pisa) using transparent cells or heavily instrumented blocks of hot rock show that only a few litres of cold water injected into a small hot zone can generate pressure rises of tens of megapascals in seconds—enough to fracture hundreds of metres of overlying rock.
4. **Connection to a magma body**
If the newly created fracture network intersects pockets of pressurised magma (or more commonly, a hydrothermal system sitting directly on top of magma that still contains exsolved volatiles), the sudden decompression triggers exsolution and expansion of dissolved CO₂, H₂O, SO₂, etc., in the melt. This is the same “second-boiling” process that occurs naturally during dome collapse or glacier removal, but here it is initiated artificially by the steam-driven pressure wave. The expanding magmatic volatiles then drive a sustained explosive eruption.
### Real-world controlled demonstrations (non-weapon context)
- Geothermal drilling accidents (accidental but scientifically well-documented):
- 2006 Menengai Caldera, Kenya: drilling into ~900 °C rock at ~2 km depth caused immediate hydrothermal explosion when drilling fluid hit the hot zone.
- 2013 Los Humeros, Mexico, and several Iceland Deep Drilling Project incidents: cold drilling mud hitting superheated rock instantly flashed, blowing out the rig. These are treated as near-perfect analogues for artificial triggering because the only variable introduced was cold fluid into a sealed, near-magmatic system.
- Laboratory analogues that exactly replicate the sequence:
- Research published in Nature Geoscience (2016) and JVGR used cylinders of crystallised magma or hot basalt with sealed bubbles of CO₂-rich fluid. Injection of cold water at pressures mimicking 1–2 km depth caused fracture propagation in <1 second, flash vaporisation, and explosive ejection of the analogue “magma” at velocities of 100–300 m/s—identical to natural phreatomagmatic explosions.
In summary, the proven scientific pathway is: cold fluid → thermal fracturing → sudden permeability increase → flash vaporisation → extreme local overpressurisation → propagation of fracture to magma → decompression-driven volatile exsolution → sustained explosive eruption. Every individual step has been repeatedly demonstrated in controlled lab settings and observed in accidental geothermal incidents.
Geothermal drilling accidents
(、、、「わざとだよ」?海底ケーブル?
事故?でなく?「噴火させたかったの」?)
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Japan, don’t worry! Tourists are fungible
— Melissa Chen (@MsMelChen) November 18, 2025
Singaporeans, Malaysians, Indonesians and Australians are going to make it up
✈️🇯🇵 pic.twitter.com/p4705Fqk7C
32パーが来なくなる予定の中国人観光客?(それだけ危ない日本に行くと!って考えてるの?Entire JapanをBattle fieldにと言われてはいる、「首」「斬る」とか 、、、もしくは工作員? KPOP STAN TIKTOK空席目立つキャンセル!みたいな?「数のパワー」?)
491000 Japan bound air ticket
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