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🔬#MESExperiments - Introduction to MES Science Experiments!
16:27
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🔬#MESExperiments 1: Gyroscopes Precess Upwards on Low Friction & Rotating Surfaces
10:56
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🔬#MESExperiments 2: Super Precision Gyroscope Precesses Upwards Even at Very Steep Angle
18:41
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🔬#MESExperiments 3: Gyroscopes Exert 'Inertial Forces' With Zero Loss of Spin Rate
18:45
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🔬#MESExperiments 4: Gyroscopes Precess with Zero ‘Angular Momentum’
2:16
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🔬#MESExperiments 5: Gyroscopes Precess Upwards on Ice with Zero Centripetal Force
9:35
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🔬#MESExperiments 6: Gyroscopes Precess with Zero Centripetal Force on Ice Even at Horizontal Angle
5:04
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🔬#MESExperiments 7: Gyroscopes Precess Upwards on Ice Even While Outer Casing Spins
13:28
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🔬#MESExperiments 8: Large Gyro Wheel Precesses at 1000X Torque Over-Unity
4:02
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🔬#MESExperiments 9: Gyroscope With Counterweight Hung on a String Rises 'DOWNWARDS'!
12:09
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🔬#MESExperiments 10: Gyroscopes on a String Can Rise But Not if Sufficient Counterweight is Added
12:13
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🔬#MESExperiments 11: Increasing Gyroscope Spin Speed Doesn't Necessarily Increase Rising Rate
14:26
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🔬#MESExperiments 12: Gyroscopes at Steeper Angles Usually Means Exponentially Longer Rising Times
9:56
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🔬#MESExperiments 13: Steepest Gyroscope Rising Experiment Ever! 74 Degrees from the Vertical
2:14
🔬#MESExperiments 14: Angle of Gyroscope Has Little Effect on Rate/Period of Precession
10:38
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🔬#MESExperiments 15: Gyroscopes Tend to Rise Until Precession Rate Has Peaked #Interesting
8:41
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🔬#MESExperiments 16: Gyroscopes Can Even Rise on the Tip of a Thin Needle!
3:19
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🔬#MESExperiments 17: Gyroscopes Can Even Rise on a Slanted Needle
2:01
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🔬#MESExperiments 18: Gyroscopes Even Rise on a Flimsy Rotating Needle
1:15
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🔬#MESExperiments 19: A Gyroscope is an Inverted Pendulum Without Electronic Sensors
15:27
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🔬#MESExperiments 20: Forced Precession of a Gyroscope Generates Inertial Lift (i.e. Weight Loss)
1:04
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🔬#MESExperiments 21: Added Weight Can Make a Gyroscope Rise Faster
2:58
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🔬#MESExperiments 22: Added Weight Can Make a Gyroscope Rise Faster (No Casing Rotation)
2:25
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🔬#MESExperiments 23: Added Weight Doesn’t Always Make Gyroscopes Rise Faster #Nuance
10:54
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🔬#MESExperiments 24: Gyroscope Rises Even With 70% Added Weight #Amazing
2:16
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🔬#MESExperiments 25: Increasing Spin Friction Can Make Gyroscopes Rise Much Faster
25:07
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🔬#MESExperiments 26: Increasing Spin Friction Can Make a Gyroscope Rise from a Very Steep 72° Angle
4:40
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🔬#MESExperiments 27: Spin Friction Can Make Gyroscope Rise from Steep 70° Angle (No Casing Rotation)
2:43
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🔬#MESExperiments 28: Magnetic Spinning Top Aligns Opposite of Magnetic Attraction
2:20
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🔬#MESExperiments 29: Magnetic Spinning Top Aligns Opposite of Asymmetric Magnetic Attraction
3:16
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🔬#MESExperiments 30: Magnetic Spinning Top Aligns Opposite of Both Gravity and Magnetic Attraction
2:11
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🔬#MESExperiments 31: Mechanical Demonstration of Inertia by Francis McCabe
3:21
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🔬#MESExperiments 32: Comparing Tippe Top, Phi Top, and Gyroscope Rising Tests
2:54

🔬#MESExperiments 14: Angle of Gyroscope Has Little Effect on Rate/Period of Precession

1 year ago
65

In #MESExperiments 14, I demonstrate a very interesting finding that I had not previously suspected with gyroscopes and that is the steepness of the angle of precession has very little direct effect on the rate of precession. Note that in this context I refer to the rate or “period” of precession as the number of precession revolutions per time (in this case per minute hence RPM) and should be distinguished from precessional or angular velocity which is the actual speed of the center of mass moving in precession. This observation of the precession rate being unaffected by the steepness of the angle indicates both that the angular velocity of the center of mass is increasing as the angle is steeper (since the gyro has further distance to precess) but also that there is an underlying symmetry taking place between the gyro spin speed and the rate of precession.

Furthermore, my prior intuition was that the steeper the gyroscope the more “torque” would be imposed which should drive both the precession rate and velocity faster to maintain its (anti-gravitic) levitation. But given my earlier experiments of gyroscopes literally behaving massless in precession, it seems fitting and more reasonable that precession has a much more correlated and direct connection to the spin speed than conventionally understood.

Four gyroscope tests were performed in this experiment and at angles: 31°, 45°, 65°, and 84° from the vertical. The full results are show in the Excel Spreadsheet file and corresponding Steemit Notes.

- Excel File: https://1drv.ms/x/s!As32ynv0LoaIh_F1zEvJGUMvdW_6zw?e=B3X619
- Hive Notes: https://peakd.com/mesexperiments/@mes/mesexperiments-14-angle-of-gyroscope-has-little-effect-on-rate-period-of-precession-interesting

I discuss the data and findings in the Steemit article so make sure to go over it. Interesting findings include the precession rate increases with elapsed time but up to a “peak precession rate” after which the precession rate drops. Since the near horizontal 84° gyro fell down quickly it did not exhibit a typical “peak precession rate” but rather fell at its highest precession rate. This is definitely a subject of further study.

Further discussion of the findings, the links to the original gyro tests, specific data measurements, and weight measurements (the gyro used is 150.68 grams with the stem) are also included in the Steemit post.

Note: I accidentally skipped over the 233 revolutions count for the 65° test but have corrected this in the Excel/Steemit data.

Stay Tuned for #MESExperiments 15…

Related Videos:

#MESExperiments video series: https://peakd.com/experiments/@mes/list
DRAFT #MESExperiments video series: https://mes.fm/experiments-draft
#MESScience video series: https://mes.fm/science-playlist
#AntiGravity video series: https://peakd.com/antigravity/@mes/series
#FreeEnergy video series: https://mes.fm/freeenergy-playlist .

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