Is laser space propulsion practical?: review

被引:3
|
作者
Phipps, C. R. [1 ]
Loktionov, E. Y. [2 ]
Bonnal, C. [3 ]
Boyer, S. A. E. [4 ]
Sharaborova, E. [2 ]
Tahan, G. [4 ]
机构
[1] Photon Associates LLC, 200A Ojo de la Vaca Rd, Santa Fe, NM 87508 USA
[2] Bauman Moscow State Tech Univ, 5-1 2nd Baumanskaya Str, Moscow 105005, Russia
[3] CNES, 52 Rue Jacques Hillairet, F-75612 Paris, France
[4] CEMEF CNRS 7635, Mines Paris PSL, Sophia Antipolis, France
关键词
ABLATION; SYSTEM; DEBRIS; EARTH; LEO;
D O I
10.1364/AO.434245
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
In this paper, we review practical limitations to laser space propulsion that have been discussed in the literature. These are as follows: (1) thermal coupling to the propelled payload, which might melt it; (2) a decrease in mechanical coupling with number of pulses, which has been observed in some cases; and (3) destruction of solar panels in debris removal proposals that might create more debris rather than less. Previously, lack of data prevented definite assessments. Now, new data on multipulse vacuum laser impulse coupling coefficient Cm on several materials at 1064 nm, at 1030 nm, and at 532 nm are available. We are now able to compare the results for single and multiple pulses on materials that have been considered for laser ablation space propulsion (LASP), or that are likely space debris constituents, and decide whether LASP is a practical idea. Laser space propulsion and debris removal concepts depend on thousands or hundreds of thousands of repetitive pulses. Repetitive pulse mechanical coupling as well as thermal coupling (which can melt the target rather than propel it) are both important considerations. Materials studied were 6061T6 aluminum, carbon-doped polyoxymethylene (POM), undoped POM, a yellow POM copolymer, and a mixture of Al and POM microparticles combined and pressed, containing a 50%/50% mixture of the two materials by mass. We address 6 and 70 ps pulses because of the availability of data at these pulse durations. We also briefly consider continuous wave (CW) laser propulsion. Finally, we consider a recent paper concerning solar panel destruction froma positive perspective. (C) 2021 Optical Society of America
引用
收藏
页码:H1 / H11
页数:11
相关论文
共 50 条
  • [41] Advanced Rocket Propulsion Techniques for Deep Space Travel: A Review
    Singh, Swaraj
    Borah, Nitish Kumar
    Pardeshi, Abhinav Singh
    Vats, Ankur
    2017 INTERNATIONAL CONFERENCE ON INFOCOM TECHNOLOGIES AND UNMANNED SYSTEMS (TRENDS AND FUTURE DIRECTIONS) (ICTUS), 2017, : 850 - 853
  • [42] Review of micro propulsion technology for space gravitational waves detection
    Liu, Hui
    Niu, Xiang
    Zeng, Ming
    Wang, Shangsheng
    Cui, Kai
    Yu, Daren
    Acta Astronautica, 2022, 193 : 496 - 510
  • [43] Review of micro propulsion technology for space gravitational waves detection
    Liu, Hui
    Niu, Xiang
    Zeng, Ming
    Wang, Shangsheng
    Cui, Kai
    Yu, Daren
    ACTA ASTRONAUTICA, 2022, 193 : 496 - 510
  • [44] Potential application of the solar wind to space propulsion: A critical review
    Vulpetti, G
    COURSE ON SOLAR SYSTEM PLASMA PHYSICS, 1997, 56 : 263 - 271
  • [45] A Pulsed Laser-Electromagnetic Hybrid Accelerator For Space Propulsion Application
    Shinohara, Tadaki
    Horisawa, Hideyuki
    Baba, Msahumi
    Tei, Kazuyoku
    BEAMED ENERGY PROPULSION, 2010, 1230 : 338 - +
  • [46] Fundamental study of a forward laser plasma accelerator for space propulsion applications
    Kuramoto, H
    Oyaizu, K
    Horisawa, H
    Kimura, I
    BEAMED ENERGY PROPULSION, 2004, 702 : 493 - 502
  • [47] Laser power beaming: An emerging technology for power transmission and propulsion in space
    Bennett, HE
    FREE-ELECTRON LASER CHALLENGES, 1997, 2988 : 245 - 256
  • [48] Thrust measurements and evaluation of asymmetric infrared laser resonators for space propulsion
    O. Neunzig
    M. Weikert
    M. Tajmar
    CEAS Space Journal, 2022, 14 : 45 - 62
  • [49] Laser-assisted pulsed plasma thruster for space propulsion applications
    Horisawa, H
    Kawakami, M
    Kimura, I
    APPLIED PHYSICS A-MATERIALS SCIENCE & PROCESSING, 2005, 81 (02): : 303 - 310
  • [50] Thrust measurements and evaluation of asymmetric infrared laser resonators for space propulsion
    Neunzig, O.
    Weikert, M.
    Tajmar, M.
    CEAS SPACE JOURNAL, 2022, 14 (01) : 45 - 62