Gravitational lensing by Morris~--- Thorne type wormhole
Čelâbinskij fiziko-matematičeskij žurnal, Tome 4 (2019) no. 1, pp. 118-124.

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Wormholes are exact solutions of Einstein's equations and such objects are physically more likely to exist as a result of some high energy process. Using Will — Bodenner method an exact formula for light deflection is obtained. Some special features like energetics and tidal forces of the considered solution are pointed out.
Keywords: wormhole, gravitational lensing, tidal forces.
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R. F. Lukmanova; I. V. Obukhov; M. M. Tayupov. Gravitational lensing by Morris~--- Thorne type wormhole. Čelâbinskij fiziko-matematičeskij žurnal, Tome 4 (2019) no. 1, pp. 118-124. http://geodesic.mathdoc.fr/item/CHFMJ_2019_4_1_a10/

[1] Morris M.S., Thorne K.S., “Wormholes in spacetime and their use for interstellar travel: A tool for teaching general relativity”, American Journal of Physics, 56:5 (1988), 395–412 | DOI | MR | Zbl

[2] Lynden-Bell D., Katz J., Bi\ifmmode \check{c}\else č\fi ák J.N., “Energy and angular momentum densities of stationary gravitational fields”, Physical Review D, 75:2 (2007), 024040 | DOI | MR

[3] Katz J., Lynden-Bell D., Bi\ifmmode \check{c}\else č\fi ák J.N., “Gravitational energy in stationary spacetimes”, Classical and Quantum Gravity, 23:23 (2006), 7111 | DOI | MR | Zbl

[4] Horowitz G.T., Ross S.F., “Naked black holes”, Physical Review D, 56:4 (1997), 2180–2187 | DOI | MR

[5] Bodenner J., Will C.M., “Deflection of light to second order: A tool for illustrating principles of general relativity”, American Journal of Physics, 71:8 (2014), 770 | DOI

[6] Bhattacharya A., Bagchi B., Garipova R. et al., “Modeling by autonomous Hamiltonian system: fixing the sign of a parameter”, Indian Journal of Physics, 86:6 (2012), 463–469 | DOI

[7] Lukmanova R., Kulbakova A., Izmailov R., et al., “Gravitation microlensing by Ellis wormhole: second order effects”, International Journal of Theoretical Physics, 55:11 (2016), 4723–4730 | DOI | Zbl

[8] Harko T., Kovacs Z., Lobo F.S.N., “Electromagnetic signatures of thin accretion disks in wormhole geometries”, Physical Review D, 78:8 (2008), 084005 | DOI