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Transients, Surges, And Oscillations

Visual topic gallery

Transients, Surges, And Oscillations

Visual routes through condenser charge and discharge, transient terms, damping, impulses, lightning surges, reflections, and traveling waves.

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modern guide diagrams

reconstructions, not historical evidence
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figure candidates

OCR/PDF-text leads needing crop review
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formula candidates

math leads needing transcription review
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source text, workbench, visual and formula maps

Layer rule: original crops, figure candidates, modern redraws, and formula candidates are separated. Use this page to browse visually, then verify in the linked source text and workbench.

Distributed Constants Of A Transmission Line
Distributed Constants Of A Transmission Line

Modern reading aid for line capacity, inductance, leakage, waves, and transients.

distributed-constants, capacity, inductance, waves

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Impulse Surge And Reflection
Impulse Surge And Reflection

Modern reading aid for lightning, impulses, discharges, and traveling waves.

lightning-surges, impulse-current, traveling-wave

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Magnetic And Dielectric Energy Storage
Magnetic And Dielectric Energy Storage

Modern reading aid for Steinmetz’s paired magnetic-field and dielectric-field language.

dielectric-field, magnetic-field, energy-storage

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Equivalent Sine Waves And Harmonics
Equivalent Sine Waves And Harmonics

Modern reading aid for wave-shape analysis and higher harmonics.

harmonics, wave-shape, fourier-analysis

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Transient Condenser Response Redraw Sheet
Transient Condenser Response Redraw Sheet

Modern redraw sheet for logarithmic charge, critical damping, oscillatory charge, and decrement.

transient-phenomena, oscillation-damping, capacity, condenser

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Transient Decay And Oscillation
Transient Decay And Oscillation

Modern guide for permanent terms, temporary terms, decay, and oscillatory readjustment.

transient-phenomena, oscillation-damping, damping, stored-energy

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Field Wave Line
Field Wave Line

Modern reading aid for distributed constants, standing waves, traveling waves, and surge propagation.

electric-waves, distributed-constants, traveling-wave, lightning-surges

Open SVG - all recreated visuals

CandidateCaption leadSource sectionRoutes
radiation-light-and-illumination-fig-012
Fig. 12
They are used in wireless telegraphy, etc. I here connect (Fig. 12) FIG. 12. the condenser C of the apparatus which I used for operating the ultra-violet arc, to a spark gap Gv of which the one side is con-Radiation, Light and Illumination
Lecture 1: Nature And Different Forms Of Radiation
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radiation-light-and-illumination-fig-013
Fig. 13
o — ^^ — o FIG. 13. has been measured by Herz by producing standing waves by combination of main wave and reflected wave.Radiation, Light and Illumination
Lecture 1: Nature And Different Forms Of Radiation
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radiation-light-and-illumination-fig-033
Fig. 33
and you see the striated Geissler discharge through mercury FIG. 33. vapor appear between terminals 2 and 3, giving the green light> of the mercury spectrum. The terminals are quiet, as they doRadiation, Light and Illumination
Lecture 6: Luminescence
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elementary-lectures-electric-discharges-waves-impulses-fig-001
Fig. 1
G, the line A, and the load L, a current i flows, and voltages e Fig. 1. exist, which are constant, or permanent, as long as the conditions of the circuit remain the same. If we connect in some moreElementary Lectures on Electric Discharges, Waves and Impulses, and Other Transients
Lecture 1: Nature And Origin Of Transients
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elementary-lectures-electric-discharges-waves-impulses-fig-003
Fig. 3
permanent condition corresponding to the closed switch can occur, Fig. 3. the stored energy has to be supplied from the source of power; that is, for a short time power, in supplying the stored energy, flows…Elementary Lectures on Electric Discharges, Waves and Impulses, and Other Transients
Lecture 1: Nature And Origin Of Transients
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elementary-lectures-electric-discharges-waves-impulses-fig-006
Fig. 6
changes between potential gravitational and kinetic mechanical Fig. 6. Double-energy TransientElementary Lectures on Electric Discharges, Waves and Impulses, and Other Transients
Lecture 1: Nature And Origin Of Transients
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elementary-lectures-electric-discharges-waves-impulses-fig-025
Fig. 25
frequency, and as the result an increase of voltage and a distor- tion of the quadrature phase occurs, as shown in the oscillogram Fig. 25. Various momentary short-circuit phenomena are illustrated by the os…Elementary Lectures on Electric Discharges, Waves and Impulses, and Other Transients
Lecture 4: Single-Energy Transients In Alternating Current Circuits
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elementary-lectures-electric-discharges-waves-impulses-fig-029
Fig. 29
2 3 4 5 Fig. 29. 6 secondsElementary Lectures on Electric Discharges, Waves and Impulses, and Other Transients
Lecture 5: Single-Energy Transient Of Ironclad Circuit
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elementary-lectures-electric-discharges-waves-impulses-fig-033
Fig. 33
\ Fig. 33. hence, substituted in equation (28),Elementary Lectures on Electric Discharges, Waves and Impulses, and Other Transients
Lecture 6: Double-Energy Transients
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elementary-lectures-electric-discharges-waves-impulses-fig-034
Fig. 34
A B Fig. 34. However, if (8) are the equations of current and voltage at a point A of a line, shown diagrammatically in Fig. 34, at any otherElementary Lectures on Electric Discharges, Waves and Impulses, and Other Transients
Lecture 7: Line Oscillations
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elementary-lectures-electric-discharges-waves-impulses-fig-037
Fig. 37
section /i consists of 4 quarter- wave units, etc. Fig. 37. Fig. 38.Elementary Lectures on Electric Discharges, Waves and Impulses, and Other Transients
Lecture 7: Line Oscillations
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elementary-lectures-electric-discharges-waves-impulses-fig-038
Fig. 38
Fig. 37. Fig. 38. The same applies to case 1, and it thus follows that the waveElementary Lectures on Electric Discharges, Waves and Impulses, and Other Transients
Lecture 7: Line Oscillations
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elementary-lectures-electric-discharges-waves-impulses-fig-040
Fig. 40
Line Fig. 40. former, the high-tension switches are opened at the generator end of the transmission line. The energy stored magnetically andElementary Lectures on Electric Discharges, Waves and Impulses, and Other Transients
Lecture 8: Traveling Waves
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elementary-lectures-electric-discharges-waves-impulses-fig-042
Fig. 42
constant in the direction of propagation, as indicated by A in Fig. 42. BElementary Lectures on Electric Discharges, Waves and Impulses, and Other Transients
Lecture 8: Traveling Waves
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elementary-lectures-electric-discharges-waves-impulses-fig-054
Fig. 54
which it can draw in supplying power. In permanent condition the line could not add to the power, but must consume, that is, the permanent power-transmission diagram must always be like Fig. 54. Not so, as s…Elementary Lectures on Electric Discharges, Waves and Impulses, and Other Transients
Lecture 9: Oscillations Of The Compound Circuit
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elementary-lectures-electric-discharges-waves-impulses-fig-056
Fig. 56
Line Fig. 56. The diagram of the power of the two waves of opposite direc- tions, and of the resultant power, is shown in Fig. 57, assumingElementary Lectures on Electric Discharges, Waves and Impulses, and Other Transients
Lecture 9: Oscillations Of The Compound Circuit
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elementary-lectures-electric-discharges-waves-impulses-fig-008
Fig. 8
tance, the lines of magnetic force are concentric circles, shown by drawn lines in Fig. 8, page 10, and the lines of dielectric force are straight lines radiating from the conductor, shown dotted in Fig. 8…Elementary Lectures on Electric Discharges, Waves and Impulses, and Other Transients
Lecture 10: Inductance And Capacity Of Round Parallel Conductors
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elementary-lectures-electric-discharges-waves-impulses-fig-066
Fig. 66
approximately Fig. 66. Aa = D -f- £ cos 0 + - cosElementary Lectures on Electric Discharges, Waves and Impulses, and Other Transients
Lecture 10: Inductance And Capacity Of Round Parallel Conductors
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elementary-lectures-electric-discharges-waves-impulses-fig-068
Fig. 68
o Fig. 68. 1\ 12 ^3Elementary Lectures on Electric Discharges, Waves and Impulses, and Other Transients
Lecture 10: Inductance And Capacity Of Round Parallel Conductors
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theory-calculation-alternating-current-phenomena-fig-100
Fig. 100
JTTTTTTTTTTTTTTTTTTTTTTT- Fig. 100. In this case the intensity as well as phase of the current, and consequently of the counter e.m.f. of inductive reactance andTheory and Calculation of Alternating Current Phenomena
Chapter 15: Distributed Capacity, Inductance, Resistance, And Leakage
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theory-calculation-alternating-current-phenomena-fig-101
Fig. 101
iEo Fig. 101. Denoting in Fig. 101.Theory and Calculation of Alternating Current Phenomena
Chapter 15: Distributed Capacity, Inductance, Resistance, And Leakage
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theory-calculation-transient-electric-phenomena-oscillations-fig-099
Fig. 99
given for ^ = 0, where tt = t] for any other point of the line X the wave shape is the same, but all the ordinates reduced by the factor £~115* in the proportion as shown in the dotted curve in Fig. 99. Fig…Theory and Calculation of Transient Electric Phenomena and Oscillations
Chapter 4: Traveling Waves
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general-lectures-electrical-engineering-fig-018
Fig. 18
c/ Fig. 18. In Fig. i8 letGeneral Lectures on Electrical Engineering
Lecture 5: Long Distance Transmission
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general-lectures-electrical-engineering-fig-023
Fig. 23
saturation. Fig. 23. In a transformer, e. m. f. and exciting current thereforeGeneral Lectures on Electrical Engineering
Lecture 6: Higher Harmonics Of The Generator Wave
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Formula Leads That Pair With The Visual Topic

Section titled “Formula Leads That Pair With The Visual Topic”
CandidateOCR/PDF textSource sectionRoutes
theory-calculation-transient-electric-phenomena-oscillations-eq-candidate-0272
transients-oscillation
At the moment 0 = 0, let the e.m.f. e = E cos (0 - 00) beTheory and Calculation of Transient Electric Phenomena and Oscillations
Chapter 4: Inductance And Resistance In Alternating Current Circuits
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elementary-lectures-electric-discharges-waves-impulses-eq-candidate-0195
transients-oscillation
i = io cos (0 - 7) = io cos 7 cos <j> + i0 sin 7 sinElementary Lectures on Electric Discharges, Waves and Impulses, and Other Transients
Lecture 6: Double-Energy Transients
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electric-discharges-waves-impulses-1914-eq-candidate-0240
transients-oscillation
e = 2;oCe-”’ sin (0 =F co - 7) jElementary Lectures on Electric Discharges, Waves and Impulses, and Other Transients
Lecture 7: Line Oscillations
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electric-discharges-waves-impulses-1914-eq-candidate-0293
transients-oscillation
i = e~ ”’ J ai cos </) cos co + 6i sin cf) cos co + Ci cos 0 sin coElementary Lectures on Electric Discharges, Waves and Impulses, and Other Transients
Lecture 7: Line Oscillations
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theory-calculation-alternating-current-phenomena-1900-eq-candidate-0240
symbolic-ac
is r - j (x -f x0} = r = .6, x + x0 = 0, and tan S>0 = 0 ;Theory and Calculation of Alternating Current Phenomena
Chapter 8: Circuits Containing Resistance, Inductance, And Capacity
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theory-calculation-transient-electric-phenomena-oscillations-eq-candidate-0276
transients-oscillation
Since e = E cos (0 - 00) = impressed e.m.f.,Theory and Calculation of Transient Electric Phenomena and Oscillations
Chapter 4: Inductance And Resistance In Alternating Current Circuits
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theory-calculation-transient-electric-phenomena-oscillations-eq-candidate-0296
transients-oscillation
i = -z | cos (I? - 00- 0J- i~x° cos (00 + OJ j (9)Theory and Calculation of Transient Electric Phenomena and Oscillations
Chapter 4: Inductance And Resistance In Alternating Current Circuits
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elementary-lectures-electric-discharges-waves-impulses-eq-candidate-0220
transients-oscillation
if = 140 cos 0.2 1 - 80 sin 0.2 1,Elementary Lectures on Electric Discharges, Waves and Impulses, and Other Transients
Lecture 6: Double-Energy Transients
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theory-calculation-alternating-current-phenomena-1897-eq-candidate-0161
symbolic-ac
but E = E^y I^E^j z. If x^ > - 2,t-, it raises, if ;r < - 2 jr,Theory and Calculation of Alternating Current Phenomena
Chapter 8: Capacity
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theory-calculation-alternating-current-phenomena-1900-eq-candidate-0281
inductance-capacity
Then, if E0 = impressed E.M.F.,-Theory and Calculation of Alternating Current Phenomena
Chapter 8: Circuits Containing Resistance, Inductance, And Capacity
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elementary-lectures-electric-discharges-waves-impulses-eq-candidate-0014
transients-oscillation
w=j*pdt, (10)Elementary Lectures on Electric Discharges, Waves and Impulses, and Other Transients
Lecture 2: The Electric Field
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electric-discharges-waves-impulses-1914-eq-candidate-0018
transients-oscillation
f = j (13)Elementary Lectures on Electric Discharges, Waves and Impulses, and Other Transients
Lecture 2: The Electric Field
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electric-discharges-waves-impulses-1914-eq-candidate-0029
transients-oscillation
K = j^; (21)Elementary Lectures on Electric Discharges, Waves and Impulses, and Other Transients
Lecture 2: The Electric Field
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elementary-lectures-electric-discharges-waves-impulses-eq-candidate-0037
transients-oscillation
(B = -j =/z JClinespercm2.Elementary Lectures on Electric Discharges, Waves and Impulses, and Other Transients
Lecture 2: The Electric Field
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elementary-lectures-electric-discharges-waves-impulses-eq-candidate-0039
transients-oscillation
7 = -j = yG am-Elementary Lectures on Electric Discharges, Waves and Impulses, and Other Transients
Lecture 2: The Electric Field
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elementary-lectures-electric-discharges-waves-impulses-eq-candidate-0178
transients-oscillation
io = eo y j = e02/o. (11)Elementary Lectures on Electric Discharges, Waves and Impulses, and Other Transients
Lecture 6: Double-Energy Transients
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electric-discharges-waves-impulses-1914-eq-candidate-0135
transients-oscillation
(S!,J = 20,000 lines per cm^. *Elementary Lectures on Electric Discharges, Waves and Impulses, and Other Transients
Lecture 5: Single-Energy Tra.Nsient Of Ironclad Circuit
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elementary-lectures-electric-discharges-waves-impulses-eq-candidate-0185
transients-oscillation
ii = IQ cos 7 = initial transient current. (14)Elementary Lectures on Electric Discharges, Waves and Impulses, and Other Transients
Lecture 6: Double-Energy Transients
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This gallery is meant for discovery, not final citation. The strongest current source distribution is: Elementary Lectures on Electric Discharges, Waves and Impulses, and Other Transients (634), Theory and Calculation of Transient Electric Phenomena and Oscillations (301), Theory and Calculation of Alternating Current Phenomena (237), General Lectures on Electrical Engineering (148). Promote a diagram or formula only after the scan, page label, exact caption, and mathematical notation are checked.