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  237. <div id="content">
  238. <header>
  239. <h1 class="title">
  240. <a href="./index.html" class="homepage-link">Pre-Quantum Electrodynamics</a>
  241. </h1>
  242. </header>
  243. <nav id="collapsed-table-of-contents">
  244. <details>
  245. <summary>
  246. Table of contents
  247. </summary>
  248. <ul>
  249. <li>
  250. <details>
  251. <summary>
  252. <a href="./in.html#in">Introduction</a><span class="headline-id">in</span>
  253. </summary>
  254. <ul>
  255. <li>
  256. <a href="./in_p.html#in_p">Preface</a><span class="headline-id">in.p</span>
  257. </li>
  258. <li>
  259. <details>
  260. <summary>
  261. <a href="./in_t.html#in_t">Tips for the reader</a><span class="headline-id">in.t</span>
  262. </summary>
  263. <ul>
  264. <li>
  265. <a href="./in_t_l.html#in_t_l">Section and equation labelling</a><span class="headline-id">in.t.l</span>
  266. </li>
  267. <li>
  268. <a href="./in_t_c.html#in_t_c">Contextual colors</a><span class="headline-id">in.t.c</span>
  269. </li>
  270. </ul>
  271. </details>
  272. </li>
  273. </ul>
  274. </details>
  275. </li>
  276. <li>
  277. <details>
  278. <summary>
  279. <a href="./ems.html#ems">Electromagnetostatics</a><span class="headline-id">ems</span>
  280. </summary>
  281. <ul>
  282. <li>
  283. <details>
  284. <summary>
  285. <a href="./ems_es.html#ems_es">Electrostatics</a><span class="headline-id">ems.es</span>
  286. </summary>
  287. <ul>
  288. <li>
  289. <details>
  290. <summary>
  291. <a href="./ems_es_ec.html#ems_es_ec">Electric Charge</a><span class="headline-id">ems.es.ec</span>
  292. </summary>
  293. <ul>
  294. <li>
  295. <a href="./ems_es_ec_b.html#ems_es_ec_b">Basics</a><span class="headline-id">ems.es.ec.b</span>
  296. </li>
  297. <li>
  298. <a href="./ems_es_ec_c.html#ems_es_ec_c">Conservation</a><span class="headline-id">ems.es.ec.c</span>
  299. </li>
  300. <li>
  301. <a href="./ems_es_ec_q.html#ems_es_ec_q">Quantization</a><span class="headline-id">ems.es.ec.q</span>
  302. </li>
  303. <li>
  304. <a href="./ems_es_ec_s.html#ems_es_ec_s">Structure</a><span class="headline-id">ems.es.ec.s</span>
  305. </li>
  306. </ul>
  307. </details>
  308. </li>
  309. <li>
  310. <details>
  311. <summary>
  312. <a href="./ems_es_efo.html#ems_es_efo">Electric Force and Energy</a><span class="headline-id">ems.es.efo</span>
  313. </summary>
  314. <ul>
  315. <li>
  316. <a href="./ems_es_efo_cl.html#ems_es_efo_cl">Coulomb's Law</a><span class="headline-id">ems.es.efo.cl</span>
  317. </li>
  318. <li>
  319. <a href="./ems_es_efo_ps.html#ems_es_efo_ps">Principle of Superposition</a><span class="headline-id">ems.es.efo.ps</span>
  320. </li>
  321. <li>
  322. <a href="./ems_es_efo_exp.html#ems_es_efo_exp">Experimental Investigations</a><span class="headline-id">ems.es.efo.exp</span>
  323. </li>
  324. <li>
  325. <a href="./ems_es_efo_e.html#ems_es_efo_e">Energy in Systems of Point Charges</a><span class="headline-id">ems.es.efo.e</span>
  326. </li>
  327. </ul>
  328. </details>
  329. </li>
  330. <li>
  331. <details>
  332. <summary>
  333. <a href="./ems_es_ef.html#ems_es_ef">Electrostatic Fields</a><span class="headline-id">ems.es.ef</span>
  334. </summary>
  335. <ul>
  336. <li>
  337. <a href="./ems_es_ef_pc.html#ems_es_ef_pc">Electrostatic Field of Point Charges</a><span class="headline-id">ems.es.ef.pc</span>
  338. </li>
  339. <li>
  340. <a href="./ems_es_ef_ccd.html#ems_es_ef_ccd">Electrostatic Field of Continuous Charge Distributions</a><span class="headline-id">ems.es.ef.ccd</span>
  341. </li>
  342. <li>
  343. <a href="./ems_es_ef_cE.html#ems_es_ef_cE">The Curl of \({\bf E}\)</a><span class="headline-id">ems.es.ef.cE</span>
  344. </li>
  345. <li>
  346. <a href="./ems_es_ef_Gl.html#ems_es_ef_Gl">Gauss's Law: the divergence of \({\bf E}\)</a><span class="headline-id">ems.es.ef.Gl</span>
  347. </li>
  348. </ul>
  349. </details>
  350. </li>
  351. <li>
  352. <details>
  353. <summary>
  354. <a href="./ems_es_ep.html#ems_es_ep">The Electrostatic Potential</a><span class="headline-id">ems.es.ep</span>
  355. </summary>
  356. <ul>
  357. <li>
  358. <a href="./ems_es_ep_d.html#ems_es_ep_d">Definition</a><span class="headline-id">ems.es.ep.d</span>
  359. </li>
  360. <li>
  361. <a href="./ems_es_ep_fp.html#ems_es_ep_fp">Field in terms of the potential</a><span class="headline-id">ems.es.ep.fp</span>
  362. </li>
  363. <li>
  364. <a href="./ems_es_ep_ex.html#ems_es_ep_ex">Example calculations for the potential</a><span class="headline-id">ems.es.ep.ex</span>
  365. </li>
  366. <li>
  367. <a href="./ems_es_ep_PL.html#ems_es_ep_PL">Poisson's and Laplace's Equations</a><span class="headline-id">ems.es.ep.PL</span>
  368. </li>
  369. <li>
  370. <a href="./ems_es_ep_bc.html#ems_es_ep_bc">Electrostatic Boundary Conditions</a><span class="headline-id">ems.es.ep.bc</span>
  371. </li>
  372. </ul>
  373. </details>
  374. </li>
  375. <li>
  376. <a href="./ems_es_e.html#ems_es_e">Electrostatic Energy from the Potential</a><span class="headline-id">ems.es.e</span>
  377. </li>
  378. <li>
  379. <details>
  380. <summary>
  381. <a href="./ems_es_c.html#ems_es_c">Conductors</a><span class="headline-id">ems.es.c</span>
  382. </summary>
  383. <ul>
  384. <li>
  385. <a href="./ems_es_c_p.html#ems_es_c_p">Properties</a><span class="headline-id">ems.es.c.p</span>
  386. </li>
  387. <li>
  388. <a href="./ems_es_c_ic.html#ems_es_c_ic">Induced Charges</a><span class="headline-id">ems.es.c.ic</span>
  389. </li>
  390. <li>
  391. <a href="./ems_es_c_sc.html#ems_es_c_sc">Surface Charge and the Force on a Conductor</a><span class="headline-id">ems.es.c.sc</span>
  392. </li>
  393. <li>
  394. <a href="./ems_es_c_cap.html#ems_es_c_cap">Capacitors</a><span class="headline-id">ems.es.c.cap</span>
  395. </li>
  396. </ul>
  397. </details>
  398. </li>
  399. </ul>
  400. </details>
  401. </li>
  402. <li>
  403. <details>
  404. <summary>
  405. <a href="./ems_ca.html#ems_ca">Calculating or Approximating the Electrostatic Potential</a><span class="headline-id">ems.ca</span>
  406. </summary>
  407. <ul>
  408. <li>
  409. <details>
  410. <summary>
  411. <a href="./ems_ca_fe.html#ems_ca_fe">Fundamental Equations for the Electrostatic Potential</a><span class="headline-id">ems.ca.fe</span>
  412. </summary>
  413. <ul>
  414. <li>
  415. <a href="./ems_ca_fe_L.html#ems_ca_fe_L">The Laplace Equation</a><span class="headline-id">ems.ca.fe.L</span>
  416. </li>
  417. <li>
  418. <a href="./ems_ca_fe_g.html#ems_ca_fe_g">Green's Identities</a><span class="headline-id">ems.ca.fe.g</span>
  419. </li>
  420. <li>
  421. <a href="./ems_ca_fe_uP.html#ems_ca_fe_uP">Uniqueness of Solution to Poisson's Equation</a><span class="headline-id">ems.ca.fe.uP</span>
  422. </li>
  423. </ul>
  424. </details>
  425. </li>
  426. <li>
  427. <details>
  428. <summary>
  429. <a href="./ems_ca_mi.html#ems_ca_mi">The Method of Images</a><span class="headline-id">ems.ca.mi</span>
  430. </summary>
  431. <ul>
  432. <li>
  433. <a href="./ems_ca_mi_isc.html#ems_ca_mi_isc">Induced Surface Charges</a><span class="headline-id">ems.ca.mi.isc</span>
  434. </li>
  435. <li>
  436. <a href="./ems_ca_mi_fe.html#ems_ca_mi_fe">Force and Energy</a><span class="headline-id">ems.ca.mi.fe</span>
  437. </li>
  438. <li>
  439. <a href="./ems_ca_mi_o.html#ems_ca_mi_o">Other Image Problems</a><span class="headline-id">ems.ca.mi.o</span>
  440. </li>
  441. </ul>
  442. </details>
  443. </li>
  444. <li>
  445. <details>
  446. <summary>
  447. <a href="./ems_ca_sv.html#ems_ca_sv">Separation of Variables</a><span class="headline-id">ems.ca.sv</span>
  448. </summary>
  449. <ul>
  450. <li>
  451. <a href="./ems_ca_sv_car.html#ems_ca_sv_car">Cartesian Coordinates</a><span class="headline-id">ems.ca.sv.car</span>
  452. </li>
  453. <li>
  454. <a href="./ems_ca_sv_cyl.html#ems_ca_sv_cyl">Cylindrical Coordinates</a><span class="headline-id">ems.ca.sv.cyl</span>
  455. </li>
  456. <li>
  457. <a href="./ems_ca_sv_sph.html#ems_ca_sv_sph">Spherical Coordinates</a><span class="headline-id">ems.ca.sv.sph</span>
  458. </li>
  459. </ul>
  460. </details>
  461. </li>
  462. <li>
  463. <details>
  464. <summary>
  465. <a href="./ems_ca_me.html#ems_ca_me">The Multipole Expansion</a><span class="headline-id">ems.ca.me</span>
  466. </summary>
  467. <ul>
  468. <li>
  469. <a href="./ems_ca_me_a.html#ems_ca_me_a">Approximate Potential at Large Distance</a><span class="headline-id">ems.ca.me.a</span>
  470. </li>
  471. <li>
  472. <a href="./ems_ca_me_md.html#ems_ca_me_md">Monopole and Dipole Terms</a><span class="headline-id">ems.ca.me.md</span>
  473. </li>
  474. <li>
  475. <a href="./ems_ca_me_h.html#ems_ca_me_h">Higher Moments</a><span class="headline-id">ems.ca.me.h</span>
  476. </li>
  477. <li>
  478. <a href="./ems_ca_me_Ed.html#ems_ca_me_Ed">The Electric Field of a Dipole</a><span class="headline-id">ems.ca.me.Ed</span>
  479. </li>
  480. <li>
  481. <a href="./ems_ca_me_Eq.html#ems_ca_me_Eq">The Electric Field of a Quadrupole</a><span class="headline-id">ems.ca.me.Eq</span>
  482. </li>
  483. </ul>
  484. </details>
  485. </li>
  486. </ul>
  487. </details>
  488. </li>
  489. <li>
  490. <details>
  491. <summary>
  492. <a href="./ems_ms.html#ems_ms">Magnetostatics</a><span class="headline-id">ems.ms</span>
  493. </summary>
  494. <ul>
  495. <li>
  496. <details>
  497. <summary>
  498. <a href="./ems_ms_lf.html#ems_ms_lf">Charges in Motion: the Lorentz Force Law</a><span class="headline-id">ems.ms.lf</span>
  499. </summary>
  500. <ul>
  501. <li>
  502. <a href="./ems_ms_lf_pc.html#ems_ms_lf_pc">Point Charges</a><span class="headline-id">ems.ms.lf.pc</span>
  503. </li>
  504. <li>
  505. <a href="./ems_ms_lf_sc.html#ems_ms_lf_sc">Steady Currents</a><span class="headline-id">ems.ms.lf.sc</span>
  506. </li>
  507. </ul>
  508. </details>
  509. </li>
  510. <li>
  511. <a href="./ems_ms_ce.html#ems_ms_ce">Charge Conservation and the Continuity Equation</a><span class="headline-id">ems.ms.ce</span>
  512. </li>
  513. <li>
  514. <a href="./ems_ms_BS.html#ems_ms_BS">Steady Currents: the Biot-Savart Law</a><span class="headline-id">ems.ms.BS</span>
  515. </li>
  516. <li>
  517. <details>
  518. <summary>
  519. <a href="./ems_ms_dcB.html#ems_ms_dcB">Divergence and Curl of \({\bf B}\)</a><span class="headline-id">ems.ms.dcB</span>
  520. </summary>
  521. <ul>
  522. <li>
  523. <a href="./ems_ms_dcB_iw.html#ems_ms_dcB_iw">Simplistic case: infinite wire</a><span class="headline-id">ems.ms.dcB.iw</span>
  524. </li>
  525. <li>
  526. <a href="./ems_ms_dcB_d.html#ems_ms_dcB_d">Divergence of \({\bf B}\) from Biot-Savart</a><span class="headline-id">ems.ms.dcB.d</span>
  527. </li>
  528. <li>
  529. <a href="./ems_ms_dcB_c.html#ems_ms_dcB_c">Curl of \({\bf B}\) from Biot-Savart; Ampère's Law</a><span class="headline-id">ems.ms.dcB.c</span>
  530. </li>
  531. </ul>
  532. </details>
  533. </li>
  534. <li>
  535. <details>
  536. <summary>
  537. <a href="./ems_ms_vp.html#ems_ms_vp">The Vector Potential</a><span class="headline-id">ems.ms.vp</span>
  538. </summary>
  539. <ul>
  540. <li>
  541. <a href="./ems_ms_vp_A.html#ems_ms_vp_A">Definition; Gauge Choices</a><span class="headline-id">ems.ms.vp.A</span>
  542. </li>
  543. <li>
  544. <a href="./ems_ms_vp_mbc.html#ems_ms_vp_mbc">Magnetic Boundary Conditions</a><span class="headline-id">ems.ms.vp.mbc</span>
  545. </li>
  546. <li>
  547. <a href="./ems_ms_vp_me.html#ems_ms_vp_me">Multipole Expansion of the Vector Potential</a><span class="headline-id">ems.ms.vp.me</span>
  548. </li>
  549. <li>
  550. <a href="./ems_ms_vp_comp.html#ems_ms_vp_comp">Comparison of Electrostatics and Magnetostatics</a><span class="headline-id">ems.ms.vp.comp</span>
  551. </li>
  552. <li>
  553. <a href="./ems_ms_vp_LC.html#ems_ms_vp_LC">The Levi-Civita Symbol</a><span class="headline-id">ems.ms.vp.LC</span>
  554. </li>
  555. </ul>
  556. </details>
  557. </li>
  558. </ul>
  559. </details>
  560. </li>
  561. </ul>
  562. </details>
  563. </li>
  564. <li>
  565. <details>
  566. <summary>
  567. <a href="./emsm.html#emsm">Electromagnetostatics in matter</a><span class="headline-id">emsm</span>
  568. </summary>
  569. <ul>
  570. <li>
  571. <details>
  572. <summary>
  573. <a href="./emsm_esm.html#emsm_esm">Electrostatics in matter</a><span class="headline-id">emsm.esm</span>
  574. </summary>
  575. <ul>
  576. <li>
  577. <details>
  578. <summary>
  579. <a href="./emsm_esm_mE.html#emsm_esm_mE">Matter Bathed in E Fields; Polarization</a><span class="headline-id">emsm.esm.mE</span>
  580. </summary>
  581. <ul>
  582. <li>
  583. <a href="./emsm_esm_mE_o.html#emsm_esm_mE_o">Overview</a><span class="headline-id">emsm.esm.mE.o</span>
  584. </li>
  585. <li>
  586. <a href="./emsm_esm_mE_P.html#emsm_esm_mE_P">Polarization</a><span class="headline-id">emsm.esm.mE.P</span>
  587. </li>
  588. </ul>
  589. </details>
  590. </li>
  591. <li>
  592. <details>
  593. <summary>
  594. <a href="./emsm_esm_po.html#emsm_esm_po">Polarized Objects; Bound Charges</a><span class="headline-id">emsm.esm.po</span>
  595. </summary>
  596. <ul>
  597. <li>
  598. <a href="./emsm_esm_po_pibc.html#emsm_esm_po_pibc">Physical Interpretation of Bound Charges</a><span class="headline-id">emsm.esm.po.pibc</span>
  599. </li>
  600. <li>
  601. <a href="./emsm_esm_po_fid.html#emsm_esm_po_fid">The Field Inside a Dielectric</a><span class="headline-id">emsm.esm.po.fid</span>
  602. </li>
  603. </ul>
  604. </details>
  605. </li>
  606. <li>
  607. <details>
  608. <summary>
  609. <a href="./emsm_esm_D.html#emsm_esm_D">The Electric Displacement</a><span class="headline-id">emsm.esm.D</span>
  610. </summary>
  611. <ul>
  612. <li>
  613. <a href="./emsm_esm_D_bc.html#emsm_esm_D_bc">Boundary Conditions</a><span class="headline-id">emsm.esm.D.bc</span>
  614. </li>
  615. </ul>
  616. </details>
  617. </li>
  618. <li>
  619. <a href="./emsm_esm_di.html#emsm_esm_di">Dielectrics</a><span class="headline-id">emsm.esm.di</span>
  620. </li>
  621. <li>
  622. <details>
  623. <summary>
  624. <a href="./emsm_esm_ld.html#emsm_esm_ld">Linear Dielectrics</a><span class="headline-id">emsm.esm.ld</span>
  625. </summary>
  626. <ul>
  627. <li>
  628. <a href="./emsm_esm_ld_sp.html#emsm_esm_ld_sp">Susceptibility, Permittivity, Dielectric Constant</a><span class="headline-id">emsm.esm.ld.sp</span>
  629. </li>
  630. <li>
  631. <a href="./emsm_esm_ld_bvp.html#emsm_esm_ld_bvp">Boundary Value Problems with Linear Dielectrics</a><span class="headline-id">emsm.esm.ld.bvp</span>
  632. </li>
  633. <li>
  634. <a href="./emsm_esm_ld_e.html#emsm_esm_ld_e">Energy in Dielectric Systems</a><span class="headline-id">emsm.esm.ld.e</span>
  635. </li>
  636. <li>
  637. <a href="./emsm_esm_ld_f.html#emsm_esm_ld_f">Forces on Dielectrics</a><span class="headline-id">emsm.esm.ld.f</span>
  638. </li>
  639. </ul>
  640. </details>
  641. </li>
  642. </ul>
  643. </details>
  644. </li>
  645. <li>
  646. <details>
  647. <summary>
  648. <a href="./emsm_msm.html#emsm_msm">Magnetostatics in matter</a><span class="headline-id">emsm.msm</span>
  649. </summary>
  650. <ul>
  651. <li>
  652. <details>
  653. <summary>
  654. <a href="./emsm_msm_m.html#emsm_msm_m">Magnetization</a><span class="headline-id">emsm.msm.m</span>
  655. </summary>
  656. <ul>
  657. <li>
  658. <a href="./emsm_msm_m_dpf.html#emsm_msm_m_dpf">Diamagnetism, Paramagnetism, Ferromagnetism</a><span class="headline-id">emsm.msm.m.dpf</span>
  659. </li>
  660. <li>
  661. <a href="./emsm_msm_m_fdi.html#emsm_msm_m_fdi">Torques and Forces on Magnetic Dipoles</a><span class="headline-id">emsm.msm.m.fdi</span>
  662. </li>
  663. <li>
  664. <a href="./emsm_msm_a.html#emsm_msm_a">Effect of Magnetic Field on Atomic Orbits</a><span class="headline-id">emsm.msm.a</span>
  665. </li>
  666. </ul>
  667. </details>
  668. </li>
  669. <li>
  670. <details>
  671. <summary>
  672. <a href="./emsm_msm_fmo.html#emsm_msm_fmo">The Field of a Magnetized Object</a><span class="headline-id">emsm.msm.fmo</span>
  673. </summary>
  674. <ul>
  675. <li>
  676. <a href="./emsm_msm_fmo_bc.html#emsm_msm_fmo_bc">Bound Currents</a><span class="headline-id">emsm.msm.fmo.bc</span>
  677. </li>
  678. <li>
  679. <a href="./emsm_msm_fmo_pibc.html#emsm_msm_fmo_pibc">Physical Interpretation of Bound Currents</a><span class="headline-id">emsm.msm.fmo.pibc</span>
  680. </li>
  681. <li>
  682. <a href="./emsm_msm_fmo_fim.html#emsm_msm_fmo_fim">The Magnetic Field Inside Matter</a><span class="headline-id">emsm.msm.fmo.fim</span>
  683. </li>
  684. </ul>
  685. </details>
  686. </li>
  687. <li>
  688. <details>
  689. <summary>
  690. <a href="./emsm_msm_H.html#emsm_msm_H">The H Field</a><span class="headline-id">emsm.msm.H</span>
  691. </summary>
  692. <ul>
  693. <li>
  694. <a href="./emsm_msm_H_A.html#emsm_msm_H_A">Ampère's Law in Magnetized Materials</a><span class="headline-id">emsm.msm.H.A</span>
  695. </li>
  696. </ul>
  697. </details>
  698. </li>
  699. <li>
  700. <details>
  701. <summary>
  702. <a href="./emsm_msm_lnlm.html#emsm_msm_lnlm">Linear and Nonlinear Media</a><span class="headline-id">emsm.msm.lnlm</span>
  703. </summary>
  704. <ul>
  705. <li>
  706. <a href="./emsm_msm_lnlm_sp.html#emsm_msm_lnlm_sp">Magnetic Susceptibility and Permeability</a><span class="headline-id">emsm.msm.lnlm.sp</span>
  707. </li>
  708. <li>
  709. <a href="./emsm_msm_lnlm_fm.html#emsm_msm_lnlm_fm">Ferromagnetism</a><span class="headline-id">emsm.msm.lnlm.fm</span>
  710. </li>
  711. </ul>
  712. </details>
  713. </li>
  714. </ul>
  715. </details>
  716. </li>
  717. </ul>
  718. </details>
  719. </li>
  720. <li>
  721. <details>
  722. <summary>
  723. <a href="./emd.html#emd">Electromagnetodynamics</a><span class="headline-id">emd</span>
  724. </summary>
  725. <ul>
  726. <li>
  727. <details>
  728. <summary>
  729. <a href="./emd_Fl.html#emd_Fl">Induction: Faraday's Law</a><span class="headline-id">emd.Fl</span>
  730. </summary>
  731. <ul>
  732. <li>
  733. <a href="./emd_Fl_Fl.html#emd_Fl_Fl">Faraday's Law</a><span class="headline-id">emd.Fl.Fl</span>
  734. </li>
  735. <li>
  736. <a href="./emd_Fl_ief.html#emd_Fl_ief">The Induced Electric Field</a><span class="headline-id">emd.Fl.ief</span>
  737. </li>
  738. <li>
  739. <a href="./emd_Fl_i.html#emd_Fl_i">Inductance</a><span class="headline-id">emd.Fl.i</span>
  740. </li>
  741. <li>
  742. <a href="./emd_Fl_e.html#emd_Fl_e">Energy in Magnetic Fields</a><span class="headline-id">emd.Fl.e</span>
  743. </li>
  744. </ul>
  745. </details>
  746. </li>
  747. <li>
  748. <details>
  749. <summary>
  750. <a href="./emd_Me.html#emd_Me">Maxwell's Equations</a><span class="headline-id">emd.Me</span>
  751. </summary>
  752. <ul>
  753. <li>
  754. <a href="./emd_Me_ebM.html#emd_Me_ebM">Electrodynamics Before Maxwell</a><span class="headline-id">emd.Me.ebM</span>
  755. </li>
  756. <li>
  757. <a href="./emd_Me_dc.html#emd_Me_dc">Maxwell's Correction to Ampère's Law; the Displacement Current</a><span class="headline-id">emd.Me.dc</span>
  758. </li>
  759. <li>
  760. <a href="./emd_Me_Me.html#emd_Me_Me">Maxwell's Equations</a><span class="headline-id">emd.Me.Me</span>
  761. </li>
  762. <li>
  763. <a href="./emd_Me_mc.html#emd_Me_mc">Magnetic Charge</a><span class="headline-id">emd.Me.mc</span>
  764. </li>
  765. </ul>
  766. </details>
  767. </li>
  768. <li>
  769. <details>
  770. <summary>
  771. <a href="./emd_ce.html#emd_ce">Charge and Energy Flows</a><span class="headline-id">emd.ce</span>
  772. </summary>
  773. <ul>
  774. <li>
  775. <a href="./emd_ce_ce.html#emd_ce_ce">The Continuity Equation</a><span class="headline-id">emd.ce.ce</span>
  776. </li>
  777. <li>
  778. <a href="./emd_ce_poy.html#emd_ce_poy">Poynting's Theorem; the Poynting Vector</a><span class="headline-id">emd.ce.poy</span>
  779. </li>
  780. <li>
  781. <a href="./emd_ce_mst.html#emd_ce_mst">Maxwell's Stress Tensor</a><span class="headline-id">emd.ce.mst</span>
  782. </li>
  783. <li>
  784. <a href="./emd_ce_mom.html#emd_ce_mom">Momentum</a><span class="headline-id">emd.ce.mom</span>
  785. </li>
  786. <li>
  787. <a href="./emd_ce_amom.html#emd_ce_amom">Angular Momentum</a><span class="headline-id">emd.ce.amom</span>
  788. </li>
  789. </ul>
  790. </details>
  791. </li>
  792. <li>
  793. <details>
  794. <summary>
  795. <a href="./emd_emw.html#emd_emw">Electromagnetic waves in vacuum</a><span class="headline-id">emd.emw</span>
  796. </summary>
  797. <ul>
  798. <li>
  799. <a href="./emd_emw_we.html#emd_emw_we">The Wave Equation</a><span class="headline-id">emd.emw.we</span>
  800. </li>
  801. <li>
  802. <a href="./emd_emw_mpw.html#emd_emw_mpw">Monochromatic Plane Waves</a><span class="headline-id">emd.emw.mpw</span>
  803. </li>
  804. <li>
  805. <a href="./emd_emw_ep.html#emd_emw_ep">Energy and Momentum</a><span class="headline-id">emd.emw.ep</span>
  806. </li>
  807. </ul>
  808. </details>
  809. </li>
  810. </ul>
  811. </details>
  812. </li>
  813. <li>
  814. <details>
  815. <summary>
  816. <a href="./emdm.html#emdm">Electromagnetodynamics in Matter</a><span class="headline-id">emdm</span>
  817. </summary>
  818. <ul>
  819. <li>
  820. <details>
  821. <summary>
  822. <a href="./emdm_Me.html#emdm_Me">Maxwell's Equations in Matter</a><span class="headline-id">emdm.Me</span>
  823. </summary>
  824. <ul>
  825. <li>
  826. <a href="./emdm_Me_Mem.html#emdm_Me_Mem">Maxwell's Equations in Matter</a><span class="headline-id">emdm.Me.Mem</span>
  827. </li>
  828. <li>
  829. <a href="./emdm_Me_bc.html#emdm_Me_bc">Boundary Conditions</a><span class="headline-id">emdm.Me.bc</span>
  830. </li>
  831. </ul>
  832. </details>
  833. </li>
  834. <li>
  835. <details>
  836. <summary>
  837. <a href="./emdm_emwm.html#emdm_emwm">Electromagnetic Waves in Matter</a><span class="headline-id">emdm.emwm</span>
  838. </summary>
  839. <ul>
  840. <li>
  841. <a href="./emdm_emwm_plm.html#emdm_emwm_plm">Propagation in Linear Media</a><span class="headline-id">emdm.emwm.plm</span>
  842. </li>
  843. <li>
  844. <a href="./emdm_emwm_refr.html#emdm_emwm_refr">Refraction</a><span class="headline-id">emdm.emwm.refr</span>
  845. </li>
  846. <li>
  847. <details>
  848. <summary>
  849. <a href="./emdm_emwm_refl.html#emdm_emwm_refl">Reflection and Transmission</a><span class="headline-id">emdm.emwm.refl</span>
  850. </summary>
  851. <ul>
  852. <li>
  853. <a href="./emdm_emwm_refl_ni.html#emdm_emwm_refl_ni">Normal Incidence</a><span class="headline-id">emdm.emwm.refl.ni</span>
  854. </li>
  855. <li>
  856. <a href="./emdm_emwm_refl_oi.html#emdm_emwm_refl_oi">Oblique Incidence</a><span class="headline-id">emdm.emwm.refl.oi</span>
  857. </li>
  858. </ul>
  859. </details>
  860. </li>
  861. <li>
  862. <details>
  863. <summary>
  864. <a href="./emdm_emwm_ad.html#emdm_emwm_ad">Absorption and Dispersion</a><span class="headline-id">emdm.emwm.ad</span>
  865. </summary>
  866. <ul>
  867. <li>
  868. <a href="./emdm_emwm_ad_c.html#emdm_emwm_ad_c">EM Waves in Conductors</a><span class="headline-id">emdm.emwm.ad.c</span>
  869. </li>
  870. </ul>
  871. </details>
  872. </li>
  873. <li>
  874. <details>
  875. <summary>
  876. <a href="./emdm_emwm_wg.html#emdm_emwm_wg">Waveguides</a><span class="headline-id">emdm.emwm.wg</span>
  877. </summary>
  878. <ul>
  879. <li>
  880. <a href="./emdm_emwm_wg_gw.html#emdm_emwm_wg_gw">Guided waves</a><span class="headline-id">emdm.emwm.wg.gw</span>
  881. </li>
  882. <li>
  883. <a href="./emdm_emwm_wg_r.html#emdm_emwm_wg_r">Rectangular Waveguides</a><span class="headline-id">emdm.emwm.wg.r</span>
  884. </li>
  885. <li>
  886. <a href="./emdm_emwm_wg_c.html#emdm_emwm_wg_c">Coaxial Lines</a><span class="headline-id">emdm.emwm.wg.c</span>
  887. </li>
  888. </ul>
  889. </details>
  890. </li>
  891. </ul>
  892. </details>
  893. </li>
  894. </ul>
  895. </details>
  896. </li>
  897. <li>
  898. <details>
  899. <summary>
  900. <a href="./emf.html#emf">Electromagnetic Fields</a><span class="headline-id">emf</span>
  901. </summary>
  902. <ul>
  903. <li>
  904. <a href="./emf_svp.html#emf_svp">Scalar and Vector Potentials</a><span class="headline-id">emf.svp</span>
  905. </li>
  906. <li>
  907. <details>
  908. <summary>
  909. <a href="./emf_g.html#emf_g">Gauge Freedom and Choices</a><span class="headline-id">emf.g</span>
  910. </summary>
  911. <ul>
  912. <li>
  913. <a href="./emf_g_Cg.html#emf_g_Cg">Coulomb Gauge</a><span class="headline-id">emf.g.Cg</span>
  914. </li>
  915. <li>
  916. <a href="./emf_g_Lg.html#emf_g_Lg">Lorenz Gauge; d'Alembertian; Inhomogeneous Maxwell Equations</a><span class="headline-id">emf.g.Lg</span>
  917. </li>
  918. </ul>
  919. </details>
  920. </li>
  921. </ul>
  922. </details>
  923. </li>
  924. <li>
  925. <details open="">
  926. <summary class="toc-open">
  927. <a href="./red.html#red">Relativistic Electrodynamics</a><span class="headline-id">red</span>
  928. </summary>
  929. <ul>
  930. <li>
  931. <details>
  932. <summary>
  933. <a href="./red_sr.html#red_sr">Special Relativity</a><span class="headline-id">red.sr</span>
  934. </summary>
  935. <ul>
  936. <li>
  937. <a href="./red_sr_p.html#red_sr_p">Postulates and their consequences</a><span class="headline-id">red.sr.p</span>
  938. </li>
  939. <li>
  940. <a href="./red_sr_Lt.html#red_sr_Lt">Lorentz Transformations</a><span class="headline-id">red.sr.Lt</span>
  941. </li>
  942. <li>
  943. <a href="./red_sr_4v.html#red_sr_4v">Covariant and Contravariant Four-Vectors</a><span class="headline-id">red.sr.4v</span>
  944. </li>
  945. </ul>
  946. </details>
  947. </li>
  948. <li>
  949. <details>
  950. <summary>
  951. <a href="./red_rm.html#red_rm">Relativistic Mechanics</a><span class="headline-id">red.rm</span>
  952. </summary>
  953. <ul>
  954. <li>
  955. <a href="./red_rm_pt.html#red_rm_pt">Proper Time and Proper Velocity</a><span class="headline-id">red.rm.pt</span>
  956. </li>
  957. <li>
  958. <a href="./red_rm_rme.html#red_rm_rme">Relativistic Momentum and Energy</a><span class="headline-id">red.rm.rme</span>
  959. </li>
  960. <li>
  961. <a href="./red_rm_Mf.html#red_rm_Mf">Relativistic version of Newton's Laws; the Minkowski Force</a><span class="headline-id">red.rm.Mf</span>
  962. </li>
  963. </ul>
  964. </details>
  965. </li>
  966. <li>
  967. <details open="">
  968. <summary class="toc-open">
  969. <a href="./red_rem.html#red_rem">Relativistic Electromagnetism</a><span class="headline-id">red.rem</span>
  970. </summary>
  971. <ul>
  972. <li>
  973. <a href="./red_rem_mre.html#red_rem_mre">Magnetism as a Relativistic Effect</a><span class="headline-id">red.rem.mre</span>
  974. </li>
  975. <li class="toc-currentpage">
  976. <a href="./red_rem_Ltf.html#red_rem_Ltf">Lorentz Transformation of Electromagnetic Fields</a><span class="headline-id">red.rem.Ltf</span>
  977. </li>
  978. <li>
  979. <a href="./red_rem_Fmunu.html#red_rem_Fmunu">The Field Tensor</a><span class="headline-id">red.rem.Fmunu</span>
  980. </li>
  981. <li>
  982. <a href="./red_rem_Me.html#red_rem_Me">Maxwell's Equations in Relativistic Notation</a><span class="headline-id">red.rem.Me</span>
  983. </li>
  984. </ul>
  985. </details>
  986. </li>
  987. </ul>
  988. </details>
  989. </li>
  990. <li>
  991. <details>
  992. <summary>
  993. <a href="./qed.html#qed">Quantum Electrodynamics</a><span class="headline-id">qed</span>
  994. </summary>
  995. <ul>
  996. <li>
  997. <a href="./qed_L.html#qed_L">Lagrangian</a><span class="headline-id">qed.L</span>
  998. </li>
  999. </ul>
  1000. </details>
  1001. </li>
  1002. <li>
  1003. <details>
  1004. <summary>
  1005. <a href="./d.html#d">Diagnostics</a><span class="headline-id">d</span>
  1006. </summary>
  1007. <ul>
  1008. <li>
  1009. <a href="./d_ems.html#d_ems">Diagnostics: Electromagnetostatics</a><span class="headline-id">d.ems</span>
  1010. </li>
  1011. <li>
  1012. <a href="./d_ems_ca.html#d_ems_ca">Diagnostics: Calculating or Approximating the Electostatic Potential</a><span class="headline-id">d.ems.ca</span>
  1013. </li>
  1014. <li>
  1015. <a href="./d_emsm.html#d_emsm">Diagnostics: Electromagnetostatics in Matter</a><span class="headline-id">d.emsm</span>
  1016. </li>
  1017. <li>
  1018. <a href="./d_ems_ms.html#d_ems_ms">Diagnostics: Magnetostatics</a><span class="headline-id">d.ems.ms</span>
  1019. </li>
  1020. <li>
  1021. <a href="./d_emsm_msm.html#d_emsm_msm">Diagnostics: Magnetostatics in Matter</a><span class="headline-id">d.emsm.msm</span>
  1022. </li>
  1023. <li>
  1024. <a href="./d_emd.html#d_emd">Diagnostics: Electromagnetodynamics</a><span class="headline-id">d.emd</span>
  1025. </li>
  1026. <li>
  1027. <a href="./d_emd_ce.html#d_emd_ce">Diagnostics: Conservation Laws</a><span class="headline-id">d.emd.ce</span>
  1028. </li>
  1029. <li>
  1030. <a href="./d_emd_emw.html#d_emd_emw">Diagnostics: Electromagnetic Waves</a><span class="headline-id">d.emd.emw</span>
  1031. </li>
  1032. <li>
  1033. <a href="./d_emf.html#d_emf">Diagnostics: Potentials, Gauges and Fields</a><span class="headline-id">d.emf</span>
  1034. </li>
  1035. <li>
  1036. <a href="./d_red.html#d_red">Diagnostics: Relativistic Electrodynamics</a><span class="headline-id">d.red</span>
  1037. </li>
  1038. <li>
  1039. <a href="./d_m.html#d_m">Diagnostics: Compendium - Mathematics</a><span class="headline-id">d.m</span>
  1040. </li>
  1041. </ul>
  1042. </details>
  1043. </li>
  1044. <li>
  1045. <details>
  1046. <summary>
  1047. <a href="./a.html#a">Appendices</a><span class="headline-id">a</span>
  1048. </summary>
  1049. <ul>
  1050. <li>
  1051. <a href="./a_l.html#a_l">Literature</a><span class="headline-id">a.l</span>
  1052. </li>
  1053. </ul>
  1054. </details>
  1055. </li>
  1056. <li>
  1057. <details>
  1058. <summary>
  1059. <a href="./c.html#c">Compendium</a><span class="headline-id">c</span>
  1060. </summary>
  1061. <ul>
  1062. <li>
  1063. <details>
  1064. <summary>
  1065. <a href="./c_m.html#c_m">Mathematics</a><span class="headline-id">c.m</span>
  1066. </summary>
  1067. <ul>
  1068. <li>
  1069. <details>
  1070. <summary>
  1071. <a href="./c_m_va.html#c_m_va">Vector Analysis</a><span class="headline-id">c.m.va</span>
  1072. </summary>
  1073. <ul>
  1074. <li>
  1075. <a href="./c_m_va_n.html#c_m_va_n">Notation and algebraic properties</a><span class="headline-id">c.m.va.n</span>
  1076. </li>
  1077. <li>
  1078. <a href="./c_m_va_sp.html#c_m_va_sp">Scalar product</a><span class="headline-id">c.m.va.sp</span>
  1079. </li>
  1080. <li>
  1081. <a href="./c_m_va_cp.html#c_m_va_cp">Cross product</a><span class="headline-id">c.m.va.cp</span>
  1082. </li>
  1083. <li>
  1084. <a href="./c_m_va_tp.html#c_m_va_tp">Triple Products</a><span class="headline-id">c.m.va.tp</span>
  1085. </li>
  1086. <li>
  1087. <a href="./c_m_va_pds.html#c_m_va_pds">Position, Displacement and Separation Vectors</a><span class="headline-id">c.m.va.pds</span>
  1088. </li>
  1089. </ul>
  1090. </details>
  1091. </li>
  1092. <li>
  1093. <details>
  1094. <summary>
  1095. <a href="./c_m_dc.html#c_m_dc">Differential Calculus</a><span class="headline-id">c.m.dc</span>
  1096. </summary>
  1097. <ul>
  1098. <li>
  1099. <a href="./c_m_dc_g.html#c_m_dc_g">Gradient</a><span class="headline-id">c.m.dc.g</span>
  1100. </li>
  1101. <li>
  1102. <a href="./c_m_dc_del.html#c_m_dc_del">The \({\boldsymbol \nabla}\) Operator</a><span class="headline-id">c.m.dc.del</span>
  1103. </li>
  1104. <li>
  1105. <a href="./c_m_dc_div.html#c_m_dc_div">The Divergence</a><span class="headline-id">c.m.dc.div</span>
  1106. </li>
  1107. <li>
  1108. <a href="./c_m_dc_curl.html#c_m_dc_curl">The Curl</a><span class="headline-id">c.m.dc.curl</span>
  1109. </li>
  1110. <li>
  1111. <a href="./c_m_dc_pr.html#c_m_dc_pr">Product arguments</a><span class="headline-id">c.m.dc.pr</span>
  1112. </li>
  1113. <li>
  1114. <a href="./c_m_dc_d2.html#c_m_dc_d2">Second Derivatives</a><span class="headline-id">c.m.dc.d2</span>
  1115. </li>
  1116. </ul>
  1117. </details>
  1118. </li>
  1119. <li>
  1120. <details>
  1121. <summary>
  1122. <a href="./c_m_ic.html#c_m_ic">Integral Calculus</a><span class="headline-id">c.m.ic</span>
  1123. </summary>
  1124. <ul>
  1125. <li>
  1126. <a href="./c_m_ic_lsv.html#c_m_ic_lsv">Line, Surface and Volume Integrals</a><span class="headline-id">c.m.ic.lsv</span>
  1127. </li>
  1128. <li>
  1129. <a href="./c_m_ic_ftc.html#c_m_ic_ftc">The Fundamental Theorem of Calculus</a><span class="headline-id">c.m.ic.ftc</span>
  1130. </li>
  1131. <li>
  1132. <a href="./c_m_ic_ftg.html#c_m_ic_ftg">The Fundamental Theorem for Gradients</a><span class="headline-id">c.m.ic.ftg</span>
  1133. </li>
  1134. <li>
  1135. <a href="./c_m_ic_gauss.html#c_m_ic_gauss">Gauss' Theorem</a><span class="headline-id">c.m.ic.gauss</span>
  1136. </li>
  1137. <li>
  1138. <a href="./c_m_ic_stokes.html#c_m_ic_stokes">Stokes' Theorem</a><span class="headline-id">c.m.ic.stokes</span>
  1139. </li>
  1140. <li>
  1141. <a href="./c_m_ic_ip.html#c_m_ic_ip">Integration by Parts</a><span class="headline-id">c.m.ic.ip</span>
  1142. </li>
  1143. </ul>
  1144. </details>
  1145. </li>
  1146. <li>
  1147. <details>
  1148. <summary>
  1149. <a href="./c_m_cs.html#c_m_cs">Coordinate Systems</a><span class="headline-id">c.m.cs</span>
  1150. </summary>
  1151. <ul>
  1152. <li>
  1153. <a href="./c_m_cs_sph.html#c_m_cs_sph">Spherical Coordinates</a><span class="headline-id">c.m.cs.sph</span>
  1154. </li>
  1155. <li>
  1156. <a href="./c_m_cs_cyl.html#c_m_cs_cyl">Cylindrical Coordinates</a><span class="headline-id">c.m.cs.cyl</span>
  1157. </li>
  1158. <li>
  1159. <a href="./c_m_cs_hyp.html#c_m_cs_hyp">Hyperbolic Coordinates</a><span class="headline-id">c.m.cs.hyp</span>
  1160. </li>
  1161. </ul>
  1162. </details>
  1163. </li>
  1164. <li>
  1165. <details>
  1166. <summary>
  1167. <a href="./c_m_dd.html#c_m_dd">Dirac delta Distribution</a><span class="headline-id">c.m.dd</span>
  1168. </summary>
  1169. <ul>
  1170. <li>
  1171. <a href="./c_m_dd_div.html#c_m_dd_div">The Divergence of \(\hat{\bf r}/r^2\)</a><span class="headline-id">c.m.dd.div</span>
  1172. </li>
  1173. <li>
  1174. <a href="./c_m_dd_1d.html#c_m_dd_1d">The One-Dimensional Dirac Delta Function</a><span class="headline-id">c.m.dd.1d</span>
  1175. </li>
  1176. <li>
  1177. <a href="./c_m_dd_3d.html#c_m_dd_3d">The Three-Dimensional Delta Function</a><span class="headline-id">c.m.dd.3d</span>
  1178. </li>
  1179. </ul>
  1180. </details>
  1181. </li>
  1182. <li>
  1183. <details>
  1184. <summary>
  1185. <a href="./c_m_vf.html#c_m_vf">Vector Fields</a><span class="headline-id">c.m.vf</span>
  1186. </summary>
  1187. <ul>
  1188. <li>
  1189. <a href="./c_m_vf_helm.html#c_m_vf_helm">The Helmholtz Theorem</a><span class="headline-id">c.m.vf.helm</span>
  1190. </li>
  1191. <li>
  1192. <a href="./c_m_vf_pot.html#c_m_vf_pot">Potentials</a><span class="headline-id">c.m.vf.pot</span>
  1193. </li>
  1194. </ul>
  1195. </details>
  1196. </li>
  1197. <li>
  1198. <details>
  1199. <summary>
  1200. <a href="./c_m_uf.html#c_m_uf">Useful Formulas</a><span class="headline-id">c.m.uf</span>
  1201. </summary>
  1202. <ul>
  1203. <li>
  1204. <a href="./c_m_uf_cyl.html#c_m_uf_cyl">Cylindrical coordinates</a><span class="headline-id">c.m.uf.cyl</span>
  1205. </li>
  1206. <li>
  1207. <a href="./c_m_uf_sph.html#c_m_uf_sph">Spherical coordinates</a><span class="headline-id">c.m.uf.sph</span>
  1208. </li>
  1209. <li>
  1210. <a href="./c_m_uf_vi.html#c_m_uf_vi">Vector identities</a><span class="headline-id">c.m.uf.vi</span>
  1211. </li>
  1212. </ul>
  1213. </details>
  1214. </li>
  1215. </ul>
  1216. </details>
  1217. </li>
  1218. </ul>
  1219. </details>
  1220. </li>
  1221. </ul>
  1222. </details>
  1223. </nav>
  1224. <ul class="breadcrumbs"><li><a class="breadcrumb-link"href="red.html">Relativistic Electrodynamics</a></li><li><a class="breadcrumb-link"href="red_rem.html">Relativistic Electromagnetism</a></li><li>Lorentz Transformation of Electromagnetic Fields</li></ul><ul class="navigation-links"><li>Prev:&nbsp;<a href="red_rem_mre.html">Magnetism as a Relativistic Effect&emsp;<small>[red.rem.mre]</small></a></li><li>Next:&nbsp;<a href="red_rem_Fmunu.html">The Field Tensor&emsp;<small>[red.rem.Fmunu]</small></a></li><li>Up:&nbsp;<a href="red_rem.html">Relativistic Electromagnetism&emsp;<small>[red.rem]</small></a></li></ul><div id="outline-container-red_rem_Ltf" class="outline-4">
  1225. <h4 id="red_rem_Ltf">Lorentz Transformation of Electromagnetic Fields<a class="headline-permalink" href="./red_rem_Ltf.html#red_rem_Ltf"><svg xmlns="http://www.w3.org/2000/svg" width="16" height="16" fill="currentColor" class="bi bi-link" viewBox="0 0 16 16">
  1226. <path d="M6.354 5.5H4a3 3 0 0 0 0 6h3a3 3 0 0 0 2.83-4H9c-.086 0-.17.01-.25.031A2 2 0 0 1 7 10.5H4a2 2 0 1 1 0-4h1.535c.218-.376.495-.714.82-1z"/>
  1227. <path d="M9 5.5a3 3 0 0 0-2.83 4h1.098A2 2 0 0 1 9 6.5h3a2 2 0 1 1 0 4h-1.535a4.02 4.02 0 0 1-.82 1H12a3 3 0 1 0 0-6H9z"/>
  1228. </svg></a><span class="headline-id">red.rem.Ltf</span></h4>
  1229. <div class="outline-text-4" id="text-red_rem_Ltf">
  1230. <p>
  1231. Now that we know that what one observer sees as an electric field
  1232. can be viewed by another as a magnetic field, we can ask the general
  1233. question of how fields transform upon Lorentz transformations.
  1234. </p>
  1235. <p>
  1236. Let's start with what is perhaps the simplest case: the electric field
  1237. between the plates of an infinite parallel-plate capacitor.
  1238. For a surface charge density \(\sigma_0\) on bottom
  1239. and \(-\sigma_0\) on top plates (putting the plates perpendicular to \(\hat{\boldsymbol y}\)), this is
  1240. \[
  1241. {\boldsymbol E}_0 = \frac{\sigma_0}{\varepsilon_0} \hat{\boldsymbol y}.
  1242. \]
  1243. </p>
  1244. <p>
  1245. Let us now assume that we move to a reference frame moving
  1246. at velocity \(v_0\) in direction \(\hat{\boldsymbol x}\).
  1247. In this frame, the field between the plates
  1248. will still be along \({\boldsymbol y}\). In terms of the surface
  1249. charge density per plate \(\sigma\) as measured in this frame,
  1250. \[
  1251. {\boldsymbol E} = \frac{\sigma}{\varepsilon_0} \hat{\boldsymbol y}.
  1252. \]
  1253. Lorentz contraction affects the
  1254. length scale longitudinal to the motion (it does not
  1255. affect the perpendicular length scales) so the surface charge density in the
  1256. moving frame becomes
  1257. \[
  1258. \sigma = \gamma_0 \sigma_0, \hspace{10mm}
  1259. \gamma_0 = \frac{1}{\sqrt{1 - v_0^2/c^2}}.
  1260. \]
  1261. In the two frames, the electric fields perpendicular to the direction of motion are thus related by
  1262. \[
  1263. {\boldsymbol E}^\perp = \gamma_0 {\boldsymbol E}_0^\perp.
  1264. \]
  1265. For the field parallel to the motion, we can simply repeat the
  1266. argument but now with motion along \({\boldsymbol y}\).
  1267. Since Lorentz contraction does not affect the surface charge
  1268. density, we get
  1269. \[
  1270. E^\parallel = E_0^\parallel.
  1271. \]
  1272. </p>
  1273. <p>
  1274. Going back to our setup with plates in the \(xz\) plane which we started from,
  1275. in the moving frame, there is now a magnetic field due to surface currents:
  1276. \[
  1277. {\boldsymbol K}_{\mbox{top}} = \sigma v_0 \hat{\boldsymbol x}
  1278. = -{\boldsymbol K}_{\mbox{bot}}.
  1279. \]
  1280. This magnetic field between the plates is thus
  1281. \[
  1282. {\boldsymbol B} = -\mu_0 \sigma v_0 ~\hat{\boldsymbol z}.
  1283. \]
  1284. </p>
  1285. <p>
  1286. If we now have a further referential frame \(\bar{S}\) moving at velocity
  1287. \(v\) with respect to \({\cal S}\) (and \(\bar{v}\) with respect to the original one), we'd have
  1288. \[
  1289. \bar{E}_y = \frac{\bar{\sigma}}{\varepsilon_0}, \hspace{10mm}
  1290. \bar{B}_z = - \mu_0 \bar{\sigma} \bar{v}
  1291. \]
  1292. where
  1293. \[
  1294. \bar{v} = \frac{v + v_0}{1 + v v_0/c^2}, \hspace{10mm}
  1295. \bar{\sigma} = \bar{\gamma} \sigma_0, \hspace{10mm}
  1296. \bar{\gamma} = \frac{1}{\sqrt{1 - \bar{v}^2/c^2}}.
  1297. \]
  1298. </p>
  1299. <p>
  1300. We now want to express \(\bar{\boldsymbol E}, \bar{\boldsymbol B}\) in terms of
  1301. \({\boldsymbol E}, {\boldsymbol B}\) and other data in frame \({\cal S}\).
  1302. To start, we have
  1303. \[
  1304. \bar{E}_y = \frac{\bar{\gamma}}{\gamma_0} \frac{\sigma}{\varepsilon_0},
  1305. \hspace{10mm}
  1306. \bar{B}_z = - \frac{\bar{\gamma}}{\gamma_0} \mu_0 \sigma \bar{v}.
  1307. \]
  1308. The ratio of contraction factors is
  1309. \[
  1310. \frac{\bar{\gamma}}{\gamma_0} = \frac{\sqrt{1 - v_0^2/c^2}}{\sqrt{1 - \bar{v}^2/c^2}}
  1311. = \frac{\sqrt{c^2 - v_0^2} ~(1 + v v_0/c^2)}{\sqrt{c^2 (1 + vv_0/c^2)^2 - (v + v_0)^2}}
  1312. = \frac{1 + v v_0/c^2}{\sqrt{1 - v^2/c^2}} = \gamma (1 + vv_0/c^2).
  1313. \]
  1314. We can thus write
  1315. \[
  1316. \bar{E}_y = \gamma (1 + v v_0/c^2) \frac{\sigma}{\varepsilon_0}
  1317. = \gamma \left( E_y - \frac{v}{c^2 \varepsilon_0 \mu_0} B_z \right)
  1318. = \gamma \left( E_y - v B_z \right)
  1319. \]
  1320. and
  1321. \[
  1322. \bar{B}_z = -\gamma (1 + vv_0/c^2) \mu_0 \sigma \frac{v + v_0}{1 + vv_0/c^2}
  1323. = \gamma (B_z - \varepsilon_0 \mu_0 v E_y)
  1324. = \gamma (B_z - \frac{v}{c^2} E_y).
  1325. \]
  1326. </p>
  1327. <p>
  1328. To do \(E_z\) and \(B_y\), simply put the capacitor in the \(xy\) plane.
  1329. Following the same argument, this gives
  1330. \[
  1331. \bar{E}_z = \gamma (E_z + v B_y), \hspace{10mm}
  1332. \bar{B}_y = \gamma \left( B_y + \frac{v}{c^2} E_z \right).
  1333. \]
  1334. We already know that \(\bar{E}_x = E_x\). For \(B_x\), we consider a
  1335. solenoid with axis along \(x\). The windings get tighter,
  1336. \(\bar{n} = \gamma n\) but the clock goes slower so \(\bar{I} = \frac{1}{\gamma} I\).
  1337. These factors cancel so \(\bar{B}_x = B_x\).
  1338. </p>
  1339. <p>
  1340. We thus obtain the
  1341. </p>
  1342. <div class="core div" id="org3cf1e4c">
  1343. <p>
  1344. <b>EM field transformation laws</b> <i>(motion along \(x\) with velocity \(v\))</i>
  1345. </p>
  1346. <div class="eqlabel" id="orgc368b6d">
  1347. <p>
  1348. <a id="EMtr"></a><a href="./red_rem_Ltf.html#EMtr"><svg xmlns="http://www.w3.org/2000/svg" width="16" height="16" fill="currentColor" class="bi bi-link" viewBox="0 0 16 16">
  1349. <path d="M6.354 5.5H4a3 3 0 0 0 0 6h3a3 3 0 0 0 2.83-4H9c-.086 0-.17.01-.25.031A2 2 0 0 1 7 10.5H4a2 2 0 1 1 0-4h1.535c.218-.376.495-.714.82-1z"/>
  1350. <path d="M9 5.5a3 3 0 0 0-2.83 4h1.098A2 2 0 0 1 9 6.5h3a2 2 0 1 1 0 4h-1.535a4.02 4.02 0 0 1-.82 1H12a3 3 0 1 0 0-6H9z"/>
  1351. </svg></a>
  1352. </p>
  1353. <div class="alteqlabels" id="orga9279ba">
  1354. </div>
  1355. </div>
  1356. \begin{align}
  1357. \bar{E}_x &amp;= E_x, \hspace{10mm} &amp;
  1358. \bar{B}_x &amp;= B_x, \nonumber \\
  1359. \bar{E}_y &amp;= \gamma (E_y - v B_z), &amp;
  1360. \bar{B}_y &amp;= \gamma \left( B_y + \frac{v}{c^2} E_z \right), \nonumber \\
  1361. \bar{E}_z &amp;= \gamma (E_z + v B_y), &amp;
  1362. \bar{B}_z &amp;= \gamma \left( B_z - \frac{v}{c^2} E_y \right)
  1363. \tag{EMtr}\label{EMtr}
  1364. \end{align}
  1365. </div>
  1366. <p>
  1367. Two special cases can be mentioned:
  1368. </p>
  1369. <p>
  1370. <b>If</b> \({\boldsymbol B} = 0\) <b>in</b> \({\cal S}\):
  1371. Then, \(\bar{\boldsymbol B} = \gamma \frac{v}{c^2} (E_z \hat{\boldsymbol y} - E_y \hat{\boldsymbol z}) = \frac{v}{c^2} (\bar{E}_z \hat{\boldsymbol y} - \bar{E}_y \hat{\boldsymbol z})\) so
  1372. \[
  1373. \bar{\boldsymbol B} = -\frac{1}{c^2} {\boldsymbol v} \times \bar{\boldsymbol E}.
  1374. \]
  1375. </p>
  1376. <p>
  1377. <b>If</b> \({\boldsymbol E} = 0\) <b>in</b> \({\cal S}\):
  1378. Then, \(\hat{\boldsymbol E} = -\gamma v (B_z \hat{\boldsymbol y} - B_y \hat{\boldsymbol z}) = -v (\bar{B}_z \hat{\boldsymbol y} - \bar{B}_y \hat{\boldsymbol z})\)
  1379. so
  1380. \[
  1381. \bar{\boldsymbol E} = {\boldsymbol v} \times \bar{\boldsymbol B}.
  1382. \]
  1383. </p>
  1384. </div>
  1385. </div>
  1386. <br><ul class="navigation-links"><li>Prev:&nbsp;<a href="red_rem_mre.html">Magnetism as a Relativistic Effect&emsp;<small>[red.rem.mre]</small></a></li><li>Next:&nbsp;<a href="red_rem_Fmunu.html">The Field Tensor&emsp;<small>[red.rem.Fmunu]</small></a></li><li>Up:&nbsp;<a href="red_rem.html">Relativistic Electromagnetism&emsp;<small>[red.rem]</small></a></li></ul>
  1387. <br>
  1388. <hr>
  1389. <div class="license">
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  1391. target="_blank" class="m-2">
  1392. <img alt="Creative Commons License" style="border-width:0"
  1393. src="https://licensebuttons.net/l/by/4.0/80x15.png"/>
  1394. </a>
  1395. Except where otherwise noted, all content is licensed under a
  1396. <a rel="license noopener" href="https://creativecommons.org/licenses/by/4.0/"
  1397. target="_blank">Creative Commons Attribution 4.0 International License</a>.
  1398. </div>
  1399. <div id="postamble" class="status">
  1400. <p class="author">Author: Jean-Sébastien Caux</p>
  1401. <p class="date">Created: 2022-03-24 Thu 08:42</p>
  1402. <p class="validation"></p>
  1403. </div>
  1404. </div>
  1405. </html>