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Kelvin water dropper

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174:. The higher the charge that accumulates in each bucket, the higher the electrical potential on the rings and the more effective this process of electrostatic induction is. During the induction process, there is an electric current that flows in the form of positive or negative ions in the water of the supply lines. This is separate from the bulk flow of water that falls through the rings and breaks into droplets on the way to the containers. For example, as water approaches the negatively charged ring on the right, any free electrons in the water can easily flee toward the left, against the flow of water. 227: 122: 187:
deposit their charge on the oppositely charged rings, which decreases the charge on that side of the system. In that case also, the buckets will start to electrostatically repel the droplets falling towards them, and may fling the droplets away from the buckets. Each of these effects will limit the voltage that can be reached by the device. The voltages reached by this device can be in the range of kilovolts, but the amounts of charge are small, so there is no more danger to persons than that of static electrical discharges produced by shuffling feet on a carpet, for example.
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cylinder which is electrically connected to the opposite receiving container; the left ring (red) is connected to the right bucket, while the right ring (blue) is connected to the left bucket. The containers must be electrically insulated from each other and from electrical ground. Similarly, the rings must be electrically isolated from each other and their environment. The streams must break into separate droplets before reaching the containers. Typically, the containers are made of metal and the rings are connected to them by wires.
68: 260:(the Netherlands) constructed a microfluidic version of the Kelvin water dropper, which yields electrical voltages able to charge, deform and break water droplets of micrometric size by just using pneumatic force instead of gravity. A year later, they developed another version of a microfluidic Kelvin water dropper, using a microscale liquid jet (which then broke into microdroplets) shot onto a metal target, which yielded a maximum 48% efficiency. 336:
Investigations of the Kelvin electrostatic generator under various controlled conditions showed that it operated with tap water, distilled water (non-deionised) and a saturated solution of NaCl. It was also found that the generator worked well even if the two liquid streams originate from different
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between the two buckets, which always exists because the buckets are insulated from each other, is necessary to begin the charging process. Suppose, therefore, that the right bucket has a small positive charge. Now the left ring also has some positive charge because it is connected to the bucket.
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Thus positive charges are attracted to the right-hand stream by the ring, and positive charge drips into the positively charged right bucket. Negative charges are attracted to the left-hand stream and negative charge drips into the negatively charged left bucket. This process of charge separation
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The discussion above is in terms of charged droplets falling. The inductive charging effects occur while the water stream is continuous. This is because the flow and separation of charge occurs already when the streams of water approach the rings, so that when the water passes through the rings
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of opposite charges. As charging increases, a smooth and steady stream may fan out due to self-repulsion of the net charges in the stream. If the water flow is set such that it breaks into droplets in the vicinity of the rings, the drops may be attracted to the rings enough to touch the rings and
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A typical setup is shown in Fig. 1. A reservoir of water or other conducting liquid (top, grey) is connected to two hoses that release two falling streams of drops, which land in two buckets or containers (bottom, blue and red). Each stream passes (without touching) through a metal ring or open
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By the 1840s it was able to be demonstrated that streams of water could carry electric charge, that streams carrying like charge were repelled and that streams carrying unlike charge were attracted. It could also be demonstrated that physical charge separation, that is, separation of charge into
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may briefly arc between the two buckets or rings, decreasing the charge on each bucket. If there is a steady stream of water through the rings, and if the streams are not perfectly centered in the rings, one can observe the deflection of the streams prior to each spark due to the electrostatic
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Lord Kelvin used this foundation of accumulated knowledge to, in 1859, create an apparatus involving the interaction of a stream of water with the Earth's static electric field to cause charge separation and subsequent measurement of charge to make atmospheric electricity measurements.
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Once the right ring has a negative charge, it similarly attracts positive charge into the right-hand stream. When drops break off the end of that stream, they carry positive charge to the positively charged bucket, making that bucket even more positively charged.
160:. When a drop breaks off the end of the left-hand stream, the drop carries a negative charge with it. When the negatively charged water drop falls into its bucket (the left one), it gives that bucket and the attached ring (the right one) a negative charge. 249:
When the containers are metal, the wires may be attached to the metal. Otherwise, the container-end of each wire must dip into the water. In the latter case, the charge resides on the surface of the water, not outside of the containers.
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electrically insulated reservoirs. A model was proposed in which the electric charge results from the separation of the positive aqueous hydrogen ion and the negative aqueous hydroxyl ion as the water droplets form.
238:". Also, the idea of bringing small amounts of charge into the center of a large metal object with a large net charge, as happens in Kelvin's water dropper, relies on the same physics as in the operation of a 133:
In Kelvin's original machine, instead of buckets, after falling through the charging electrodes the drops fall into metal funnels which collect the charge but let the water through. The charge is stored in two
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If the buckets are metal conductors, then the built-up charge resides on the outside of the metal, not in the water. This is part of the electrical induction process, and is an example of the related "
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included studies of static electricity produced by amber and its interaction with water. He observed the formation of conical structures on water which are commonly now called
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of the like-charged containers, which exerts an upward force against them, converting gravitational potential energy into electrical potential energy, plus motional
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there is already net charge on the water. When drops form, some net charge is trapped on each drop as gravity pulls it toward the like-charged container.
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systems. This eventually leads to an electric arc discharging in the form of a spark. It is used in physics education to demonstrate the principles of
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Maryam Zaiei-Moayyed; Edward Goodman; Peter Williams (November 2000). "Electrical deflection of polar liquid streams: A misunderstood demonstration".
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Tiberius Cavallo, "A Complete Treatise On Electricity in Theory and Practice with Original Experiments", Volumes I and II (MDCCXCV) (1795)
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Y.Xie et al., "High-efficiency ballistic electrostatic generator using microdroplets". "Nature Communications"(DOI:10.1038/ncomms4575).
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Joseph Priestley, "The History and Present State Of Electricity with Original Experiments by, Volumes I, II, and III (MDCCLXVII) (1747)
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Y.Xie et al., a "Pressure-driven ballistic Kelvin's water dropper for energy harvesting. ". "Lab on a chip"(DOI: 10.1039/C4LC00740A).
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William Watson, "Experiments and Observations Tending To Illustrate The Nature and Properties of Electricity". (MDCCXLVI) (1741)
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George John Singer, "Elements of Electricity and Electro-chemistry", Longman, Hurst, Rees, Orme, and Brown, Paternoster Row 1814
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Other early studies noting the interaction of static electricity with water and reported in the English language include:
210:. The kinetic energy is wasted as heat when the water drops land in the buckets, so when considered as an electric power 121: 699: 694: 356:"On a self-acting apparatus for multiplying and maintaining electric charges, with applications to the Voltaic Theory" 275: 97: 194:, as shown by the energy released as light and heat when a spark passes between them. This energy comes from the 109: 214:
the Kelvin machine is very inefficient. However, the principle of operation is the same as with other forms of
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The simple construction makes this device popular in physics education as a laboratory experiment for students.
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John Theophilus Desaguliers, "A Dissertation concerning Electricity" Innys and Longman, London MDCCXLII (1742)
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Eventually, when both buckets have become highly charged, several different effects may be seen. An
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James Ferguson, "An Introduction to Electricity", W. Strahan and T. Cadell, London MDCCLXX (1770)
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YouTube ("Reinhard Schumacher") – Kelvin Water Dropper: Implementation and Explanation
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different regions, could be induced in a body of water by a static electric field.
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Markus Zahn, "Self-excited a.c. high voltage generation using water droplets",
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The London, Edinburgh, and Dublin Philosophical Magazine and Journal of Science
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Detailed description of device and how to build your own Kelvin water dropper.
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Francis Hauksbee "Physico-Mechanical Experiments on Various Subjects". (1719)
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Fig. 3: A Kelvin water dropper set up at the 2014 Cambridge Science Festival
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YouTube ("Veritasium") – Sparks from Falling Water: Kelvin's Thunderstorm
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The opposite charges which build up on the buckets represent electrical
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The charge on the left ring will attract negative charges in the water (
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The apparatus can be extended to more than two streams of droplets.
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Henry Minchin Noad, "A Manual of Electricity" in two volumes (1857)
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John Cuthbertson, "Practical Electricity", J. Callow, London (1807)
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released when the water falls. The charged falling water drops do
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Alvaro G. Marin et al., "The microfluidic Kelvin water dropper".
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YouTube ("RimstarOrg") – Kelvin Water Dropper and How it Works
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George Adams, "An Essay on Electricity", London (1785)
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George W. Francis, "Electrostatic Experiments" (1844)
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Fig. 1: Schematic setup for the Kelvin water dropper.
530:"Lord Kelvin's atmospheric electricity measurements" 587:Desmet, S; Orban, F; Grandjean, F (1989-04-01). 56:occurring between interconnected, oppositely 8: 528:Aplin, K. L.; Harrison, R. G. (2013-09-03). 127:Replica of machine sold for educational use. 563: 545: 32:. The apparatus is variously called the 589:"On the Kelvin electrostatic generator" 346: 218:power. As always, energy is conserved. 28:. Kelvin referred to the device as his 7: 256:In 2013, a combined group from the 168:that occurs in the water is called 156:) into the left-hand stream by the 534:History of Geo- and Space Sciences 354:Thomson, William (November 1867). 14: 705:William Thomson, 1st Baron Kelvin 456:, vol. 41, pages 196–202 (1973). 20:, invented by Scottish scientist 158:Coulomb electrostatic attraction 120: 108: 96: 473:https://arxiv.org/abs/1309.2866 386:"Kelvin Water Dropper activity" 115:Kelvin's original 1867 drawing. 196:gravitational potential energy 147:A small initial difference in 103:A 1918 version of the machine. 38:Kelvin electrostatic generator 34:Kelvin hydroelectric generator 1: 412:Journal of Chemical Education 22:William Thomson (Lord Kelvin) 471:(DOI: 10.1039/C3LC50832C). ( 593:European Journal of Physics 454:American Journal of Physics 140:(large cylindrical objects) 721: 613:10.1088/0143-0807/10/2/008 44:. The device uses falling 42:Lord Kelvin's thunderstorm 675:Lego Kelvin water dropper 505:Electrostatic Experiments 690:Electrostatic generators 30:water-dropping condenser 503:Francis, G. W. (2005). 388:. CSIRO. Archived from 240:van de Graaff generator 171:electrostatic induction 88:Principles of operation 54:electrostatic induction 26:electrostatic generator 24:in 1867, is a type of 565:10.5194/hgss-4-83-2013 231: 72: 274:, published in 1600, 264:Historical background 229: 202:against the opposing 70: 646:Kelvin Water dropper 332:Experimental studies 258:University of Twente 236:Faraday's ice bucket 18:Kelvin water dropper 700:Scottish inventions 695:Physics experiments 605:1989EJPh...10..118D 556:2013HGSS....4...83A 424:2000JChEd..77.1520Z 432:10.1021/ed077p1520 232: 73: 418:(11): 1520–1524. 712: 633: 632: 584: 578: 577: 567: 549: 525: 519: 518: 500: 494: 491: 485: 482: 476: 465: 459: 450: 444: 443: 407: 401: 400: 398: 397: 382: 376: 375: 373: 371: 351: 192:potential energy 124: 112: 100: 720: 719: 715: 714: 713: 711: 710: 709: 680: 679: 642: 637: 636: 586: 585: 581: 527: 526: 522: 515: 502: 501: 497: 492: 488: 483: 479: 466: 462: 451: 447: 409: 408: 404: 395: 393: 384: 383: 379: 369: 367: 353: 352: 348: 343: 334: 276:William Gilbert 266: 224: 182:attraction via 149:electric charge 145: 144: 143: 142: 130: 129: 128: 125: 117: 116: 113: 105: 104: 101: 90: 78: 52:differences by 12: 11: 5: 718: 716: 708: 707: 702: 697: 692: 682: 681: 678: 677: 672: 667: 662: 657: 652: 641: 640:External links 638: 635: 634: 599:(2): 118–122. 579: 520: 513: 495: 486: 477: 469:Lab on a chip 460: 445: 402: 377: 366:(231): 391–396 345: 344: 342: 339: 333: 330: 321: 320: 317: 314: 311: 308: 305: 302: 299: 296: 293: 290: 265: 262: 223: 220: 208:kinetic energy 204:electric field 179:electric spark 132: 131: 126: 119: 118: 114: 107: 106: 102: 95: 94: 93: 92: 91: 89: 86: 77: 74: 62:electrostatics 13: 10: 9: 6: 4: 3: 2: 717: 706: 703: 701: 698: 696: 693: 691: 688: 687: 685: 676: 673: 671: 668: 666: 663: 661: 658: 656: 653: 651: 647: 644: 643: 639: 630: 626: 622: 618: 614: 610: 606: 602: 598: 594: 590: 583: 580: 575: 571: 566: 561: 557: 553: 548: 543: 539: 535: 531: 524: 521: 516: 514:0-917406-13-3 510: 506: 499: 496: 490: 487: 481: 478: 474: 470: 464: 461: 458: 455: 449: 446: 441: 437: 433: 429: 425: 421: 417: 413: 406: 403: 392:on 2005-02-08 391: 387: 381: 378: 365: 361: 357: 350: 347: 340: 338: 331: 329: 325: 318: 315: 312: 309: 306: 303: 300: 297: 294: 291: 288: 287: 286: 283: 281: 277: 273: 272: 263: 261: 259: 254: 251: 247: 243: 241: 237: 228: 221: 219: 217: 216:hydroelectric 213: 209: 205: 201: 197: 193: 188: 185: 184:Coulomb's law 180: 175: 173: 172: 165: 161: 159: 155: 150: 141: 137: 123: 111: 99: 87: 85: 82: 75: 69: 65: 63: 59: 55: 51: 47: 43: 39: 35: 31: 27: 23: 19: 596: 592: 582: 540:(2): 83–95. 537: 533: 523: 504: 498: 489: 480: 468: 463: 453: 448: 415: 411: 405: 394:. Retrieved 390:the original 380: 370:September 1, 368:. Retrieved 363: 362:. Series 4. 359: 349: 335: 326: 322: 284: 280:Taylor cones 269: 267: 255: 252: 248: 244: 233: 189: 176: 169: 166: 162: 146: 139: 83: 79: 48:to generate 41: 37: 33: 29: 17: 15: 138:capacitors 76:Description 684:Categories 396:2009-01-07 341:References 271:De Magnete 136:Leyden jar 629:250798055 621:0143-0807 574:2190-5029 547:1305.5347 212:generator 440:95473318 650:MIT OCW 601:Bibcode 552:Bibcode 420:Bibcode 222:Details 58:charged 50:voltage 627:  619:  572:  511:  438:  36:, the 625:S2CID 542:arXiv 436:S2CID 46:water 40:, or 617:ISSN 570:ISSN 509:ISBN 372:2015 200:work 154:ions 16:The 609:doi 560:doi 428:doi 268:In 686:: 648:– 623:. 615:. 607:. 597:10 595:. 591:. 568:. 558:. 550:. 536:. 532:. 475:). 434:. 426:. 416:77 414:. 364:34 358:. 282:. 242:. 64:. 631:. 611:: 603:: 576:. 562:: 554:: 544:: 538:4 517:. 442:. 430:: 422:: 399:. 374:.

Index

William Thomson (Lord Kelvin)
electrostatic generator
water
voltage
electrostatic induction
charged
electrostatics
Drawing of a typical setup for the Kelvin Water Dropper



Leyden jar
electric charge
ions
Coulomb electrostatic attraction
electrostatic induction
electric spark
Coulomb's law
potential energy
gravitational potential energy
work
electric field
kinetic energy
generator
hydroelectric

Faraday's ice bucket
van de Graaff generator
University of Twente
De Magnete

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