49 research outputs found
Measuring shock-bang timing and rR evolution of D3He implosions at OMEGA
- Author
- Publication venue
- MIT Plasma Science and Fusion Center
- Publication date
- 21/05/2004
- Field of study
Impeding hohlraum plasma stagnation in inertial-confinement fusion
- Author
- Publication venue
- MIT Plasma Science and Fusion Center
- Publication date
- Field of study
Proton radiography of dynamic electric and magnetic fields in laser-produced high-energy-density plasmas
- Author
- Publication venue
- MIT Plasma Science & Fusion Center
- Publication date
- 25/11/2008
- Field of study
Laser light Backscatter from Intermediate and High Z plasmas
- Author
- Publication venue
- Lawrence Livermore National Laboratory
- Publication date
- 23/02/2006
- Field of study
Laser light backscatter from intermediate and high Z plasmas
- Author
- Publication venue
- 'AIP Publishing'
- Publication date
- Field of study
Cryogneic-Target Performance and Implosion Physics Studies on OMEGA
- Author
- B. Yaakobi
- C. K. Li
- C. Stoeckl
- D. D. Meyerhofer
- D. H. Edgell
- D. R. Harding
- D. Shvarts
- F. H. Séguin
- F. J. Marshall
- J. A. Delettrez
- J. A. Frenje
- J. M. Soures
- J. P. Knauer
- Knauer J. P.
- Lindl J. D.
- P. B. Radha
- P. W. McKenty
- R. Betti
- R. D. Petrasso
- R. L. McCrory
- R. S. Craxton
- R. W. Short
- S. P. Regan
- S. Skupsky
- S. X. Hu
- T. C. Sangster
- T. R. Boehly
- V. A. Smalyuk
- V. N. Goncharov
- V. Yu. Glebov
- W. Seka
- Publication venue
- University of Rochester. Laboratory for Laser Energetics.
- Publication date
- 06/03/2009
- Field of study
Recent progress in direct-drive cryogenic implosions on the OMEGA Laser Facility [T. R. Boehly et al., Opt. Commun. 133, 495 (1997)] is reviewed. Ignition-relevant areal densities of ~200 mg/cm^2 in cryogenic D2 implosions with peak laser-drive intensities of ~5 x 10^14 W/cm^2 were previously reported [T. C. Sangster et al., Phys. Rev. Lett. 100, 185006 (2008)]. The laser intensity is increased to ~10^15 W/cm^2 to demonstrate ignition-relevant implosion velocities of 3–4 x 10^7 cm/ s, providing an understanding of the relevant target physics. Planar-target acceleration experiments show the importance of the nonlocal electron-thermal-transport effects for modeling the laser drive. Nonlocal and hot-electron preheat is observed to stabilize the Rayleigh–Taylor growth at a peak drive intensity of ~10^15 W/cm^2. The shell preheat caused by hot electrons generated by two-plasmon-decay instability was reduced by using Si-doped ablators. The measured compressibility of planar plastic targets driven with high-compression shaped pulses agrees well with one-dimensional simulations at these intensities. Shock mistiming has contributed to compression degradation of recent cryogenic implosions driven with continuous pulses. Multiple-picket (shock-wave) target designs make it possible for a more robust tuning of the shock-wave arrival times. Cryogenic implosions driven with double-picket pulses demonstrate somewhat improved compression performance at a peak drive intensity of ~10^15 W/cm^2
Lawson Criterion for Ignition Exceeded in an Inertial Fusion Experiment
- Author
- Abu-Shawareb H
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- Adams J
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- Publication venue
- Publication date
- 01/01/2022
- Field of study
Lawson criterion for ignition exceeded in an inertial fusion experiment
- Author
- Abu-Shawareb H
- Acree R
- Adams J
- Adams P
- Addis B
- Aden R
- Adrian P
- Afeyan BB
- Aggleton M
- Aghaian L
- Aguirre A
- Aikens D
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- Albert F
- Albrecht M
- Albright BJ
- Albritton J
- Alcala J
- Alday C
- Alessi DA
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- Alfonso J
- Alfonso N
- Alger E
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- Ali ZA
- Alley WE
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- Amendt PA
- Amick P
- Ammula S
- Amorin C
- Ampleford DJ
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- Aracne-Ruddle C
- Araya E
- Arend M
- Arnold P
- Arnold T
- Asay J
- Atherton LJ
- Atkinson D
- Atkinson R
- Auerbach JM
- Austin B
- Auyang L
- Awwal AS
- Ayers J
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- Azevedo S
- Bachmann B
- Back CA
- Bae J
- Bailey DS
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- Baisden T
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- Bass I
- Batha SH
- Baxamusa SH
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- Beagle JK
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- Benage JF
- Benedetti LR
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- Besenbruch G
- Betcher J
- Bettenhausen R
- Betti R
- Bezzerides B
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- Tietbohl G
- Tipton RE
- Tobin M
- Tomlin N
- Tommasini R
- Toreja AJ
- Torres J
- Town RPJ
- Townsend S
- Trenholme J
- Trivelpiece A
- Trosseille C
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- Trummer D
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- Truong T
- Tubbs D
- Tubman ER
- Tunnell T
- Turnbull D
- Turner RE
- Ulitsky M
- Upadhye R
- Vaher JL
- Van Wonterghem BM
- VanArsdall P
- VanBlarcom D
- Vandenboomgaerde M
- VanQuinlan R
- Varnum WS
- Velikovich AL
- Vella A
- Verdon CP
- Vermillion B
- Vernon S
- Vesey R
- Vickers J
- Vignes RM
- Visosky M
- Vocke J
- Volegov PL
- Von Rotz R
- Vonhof S
- Vu HX
- Vu M
- Wall D
- Wall J
- Wallace R
- Wallin B
- Walmer D
- Walsh CA
- Walters CF
- Waltz C
- Wan A
- Wang A
- Wang Y
- Wark JS
- Warner BE
- Watson J
- Watt RG
- Watts P
- Weaver J
- Weaver RP
- Weaver S
- Weber CR
- Weber P
- Weber SV
- Wegner P
- Weiss K
- Welday B
- Welser-Sherrill L
- Wheeler GF
- Whistler W
- White RK
- Whitley HD
- Whitman P
- Wickett ME
- Widmann K
- Widmayer C
- Wiedwald J
- Wilcox R
- Wilcox S
- Wild C
- Wilde BH
- Wilde CH
- Wilhelmsen K
- Wilke MD
- Wilkens H
- Wilkins P
- Wilks SC
- Williams EA
- Williams GJ
- Williams W
- Williams WH
- Wilson B
- Wilson DC
- Wilson E
- Wilson R
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- Wisoff J
- Wittman M
- Wolfe J
- Wong A
- Wong KW
- Wong L
- Wong N
- Wood R
- Woodhouse D
- Woodruff J
- Woods DT
- Woods S
- Woodworth BN
- Wooten E
- Wootton A
- Work K
- Workman JB
- Wright J
- Wu M
- Wuest C
- Wysocki FJ
- Xu H
- Yamaguchi M
- Yang B
- Yang ST
- Yatabe J
- Yeamans CB
- Yee BC
- Yi SA
- Yin L
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- Young CS
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- Zaitseva N
- Zaka F
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- Zimmerman GB
- Zobrist T
- Zuegel JD
- Zylstra AB
- Publication venue
- 'American Physical Society (APS)'
- Publication date
- 06/07/2022
- Field of study
For more than half a century, researchers around the world have been engaged in attempts to achieve fusion ignition as a proof of principle of various fusion concepts. Following the Lawson criterion, an ignited plasma is one where the fusion heating power is high enough to overcome all the physical processes that cool the fusion plasma, creating a positive thermodynamic feedback loop with rapidly increasing temperature. In inertially confined fusion, ignition is a state where the fusion plasma can begin "burn propagation" into surrounding cold fuel, enabling the possibility of high energy gain. While "scientific breakeven" (i.e., unity target gain) has not yet been achieved (here target gain is 0.72, 1.37Â MJ of fusion for 1.92Â MJ of laser energy), this Letter reports the first controlled fusion experiment, using laser indirect drive, on the National Ignition Facility to produce capsule gain (here 5.8) and reach ignition by nine different formulations of the Lawson criterion
Observations of Continuum Depression in Warm Dense Matter with X-Ray Thomson Scattering
- Author
- Publication venue
- 'American Physical Society (APS)'
- Publication date
- Field of study
Recommended from our members
The National Ignition Facility Project: An Update
- Publication venue
- Lawrence Livermore National Laboratory
- Publication date
- 07/12/2000
- Field of study
The National Ignition Facility (NIT) consists of 192 forty-centimeter-square laser beams and a 10-m-diameter target chamber. Physical construction began in 1997. The Laser and Target Area Building and the Optics Assembly Building were the first major construction activities, and despite several unforeseen obstacles, the buildings are now 92% complete and have been done on time and within cost. Prototype component development and testing has proceeded in parallel. Optics vendors have installed full-scale production lines and have done prototype production runs. The assembly and integration of the beam path infrastructure has been reconsidered and a new approach has been developed. This paper will discuss the status of the NIF project and the plans for completion. It will also include summary information on Laser MegaJoule (LMJ) provided by M. Andre, LMJ Project Director