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The Great Comet of 1106, a Chinese Comet of 1138, and Daylight Comets in late 363 As Key Objects in Computer Simulated History of Kreutz Sungrazer System
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We present the results of our orbital computations in support of the recently proposed contact-binary model for the Kreutz sungrazer system (Sekanina 2021, 2022). We demonstrate that comet Ikeya-Seki (C/1965 S1) previously passed perihelion decades after the Great Comet of 1106 (X/1106 C1) and argue that, like the Great September Comet of 1882 (C/1882 R1), it evidently was a fragment of the comet recorded by the Chinese in September 1138. The 1106 sungrazer appears instead to have been the previous appearance of the Great March Comet of 1843 (C/1843 D1). With no momentum exchange involved, fragments of a Kreutz sungrazer breaking up tidally near perihelion are shown to end up in orbits with markedly different periods because their centers of mass are radially shifted by a few kilometers relative to the parent. The daylight comets of AD 363, recorded by a Roman historian, are accommodated in our computations as the first appearance of the Kreutz sungrazers after their bilobed progenitor's breakup. We link the 1843-1106-363 (Lobe I) and 1882-1138-363 (Lobe II) returns to perihelion by single nongravitational orbits and gravitationally with minor center-of-mass shifts acquired in fragmentation events. We also successfully model the motion of Aristotle's comet as the rotating progenitor that at aphelion split (at a few m/s) into the two lobes, the precursors of, respectively, the 1843 and 1882 sungrazers; and provide a 1963-1041-363 link for comet Pereyra (C/1963 R1). Material fatigue could contribute to sungrazers' fragmentation throughout the orbit, including aphelion. -- Continuing problems with the nongravitational law in orbit software are noted.
Forward citations
Cited by 5 Pith papers
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The Great Comets of 1843 and 1882 at Their Previous Return to Perihelion in the Twelfth Century: One Spectacular, the Other Dull
The Chinese comet of 1138, identified as the previous return of the 1882 sungrazer, would have been invisible in daylight and only appeared about a month after perihelion, while the 1106 comet's daylight sighting matc...
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Comet ATLAS (C/2024 S1) -- Second Ground-Based Discovery of a Kreutz Sungrazer in Thirteen Years
Comet ATLAS C/2024 S1 is identified as a Population II dwarf Kreutz sungrazer, possibly a fragment of the same parent as the great comets of 1882 and 1965.
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Orbital-Period Determination As an Indispensable Tool to Study the Pedigree of a Sungrazing Comet
Sekanina uses observation-arc truncation and a radiation-pressure correction to assign previous perihelion dates of AD 363 (C/2026 A1), 1140 (Ikeya-Seki), and 1369 (Lovejoy), revising Kreutz sungrazer pedigrees.
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New Insights into the Nature and Orbital Motion of Aristotle's Comet in 372 BC
Aristotle's comet of 372 BC likely reached perihelion on January 20, and its observed path and 60-degree tail fit the orbit predicted for the Kreutz sungrazer progenitor.
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Orbital Motion and History of Sungrazing Comet C/2026 A1 (MAPS)
For comet C/2026 A1, the claimed AD-363 previous perihelion is produced by truncating astrometric data at a light-curve anomaly; other arc choices give dates from AD 276 to 357.
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