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  • etymologie

zwanzig$1$ - vertaling naar Engels

METHOD IN COMPUTATIONAL CHEMISTRY
Free-energy perturbation; Zwanzig equation

zwanzig      
twenty, amounting to 20 in number
number one         
  • The 24-hour tower clock in [[Venice]], using ''J'' as a symbol for 1
  • [[Hoefler Text]], a typeface designed in 1991, represents the numeral 1 as similar to a small-caps I.
  • alt=Horizontal guidelines with a one fitting within lines, a four extending below guideline, and an eight poking above guideline
  • 1 as a resin identification code, used in recycling
  • This Woodstock typewriter from the 1940s lacks a separate key for the numeral 1.
NATURAL NUMBER
1 (the number); ¹; One (number); 1 E0; One; Unity (number); ₁; ١; ۱; Number one; ១; 1.0; No 1; 1; NO.1; ➊; ➀; ❶; Unity (mathematics); The number one; 𐡘; ꩑; ༡; 1 (numeral); One (1); Number-one; Numberone; ௧; १; ১; ੧; No.1; ૧; ୧; ౧; ೧; ൧; ߁; ໑; ၁; ႑; ꧑; ᥇; 𐒡; ꣑; 1 (glyph); Firstly; Nº 1; Unit number; 1e0; 1E0; 1 (number); 1️⃣; 10^0; Unit (number); ASCII 49; \x31; 2^0; U+0031; User talk:Theonlysameer/sandbox; 1024^0; 1×2^0; 1B0; 1×10^0; 1000^0; 100^0; 1^1; 1^0; 1⁰; 1¹; 1**0; 1**1; 2⁰; 2**0; 1²; 1³; 1⁴; 1⁵; 1⁶; 1⁷; 1⁸; 1⁹; 1¹⁰; 1^2; 1^3; 1^4; 1^5; 1^6; 1^7; 1^8; 1^9; 1^10; 1**2; 1**3; 1**4; 1**5; 1**6; 1**7; 1**8; 1**9; 1**10; 10⁰; 10**0; 1000⁰; 1000**0; 1 B0; 1024⁰; 1024**0
Nummer Eins (der Beste, keiner ist so wie er, der Auserwählte von den Auserwählten)
buzz bomb         
  • War Memorial in Greencastle, Indiana
  • V-1 on display at the [[Air Zoo]]
  • Model of an [[Arado Ar 234]] carrying a V-1 at the [[Technikmuseum Speyer]]
  • A German crew rolls out a V-1.
  • Max Wachtel
  • A V-1 and launching ramp section on display at the [[Imperial War Museum Duxford]] (2009)
  • Fieseler F103R Reichenberg piloted V-1
  • Luftwaffe}} Heinkel He 111 H-22. This version could carry FZG 76 (V1) flying bombs, but only a few aircraft were produced in 1944. Some were used by bomb wing ''KG'' 3.
  • Aftermath of a V-1 bombing, London, 1944
  • Imperial War Museum London]]
  • A reconstructed starting ramp for V-1 flying bombs, [[Historical Technical Museum, Peenemünde]] (2009)
  • Grove Road]], [[Mile End]], which now carries this [[English Heritage]] [[blue plaque]]. Eight civilians were killed in the blast.
  • A Spitfire using its wingtip to "topple" a V-1 flying bomb
  • A battery of static QF 3.7-inch guns on railway-sleeper platforms at [[Hastings]] on the south coast of England, July 1944
  • 6}} in 1951
  • V-1 (Fieseler Fi 103) in flight
  • V-1 cutaway
  • Musée de l'Armée]], Paris
  • Rear view of V-1 in [[IWM Duxford]], showing launch ramp section
  • V-1 flying bomb on display at the Stampe & Vertongen Museum
  • Éperlecques]]
  • V-1 launch ramp recreated at the Imperial War Museum, Duxford
  • V-1 launch piston for Walter catapult
1944 CRUISE MISSILE BY FIESELER
V-1 Flying Bomb; V1 missile; V1 Flying Bomb; Fieseler Fi 103; V-1 rocket; V1 flying bomb; Vergeltungswaffe 1; Buzz bomb; V-1 cruise missile; Buzzbomb; V-1 Missile; Fieseler Fi-103; Argus As 14; Flying Bombs; V-1 Cruise missile; Fi-103; V-1 drone; Fi 103; V1 rocket; V-1 flying bombs; Fieseler Fi 103R Selbstopfer; V-1 (flying bomb); Doodlebug (flying bomb); Fieseler Fi103; V1 rockets; V-1 (missile); Fieseler Fi 103 V-1 flying bomb; Robot Blitz; V-1 missile; FZG-76
Summerbombe (Bombentype die die Deutschen im Zweiten Weltkrieg auf England warfen)

Definitie

one
the upper limit of intoxication or exhaustion
after the second pint of gin, i was hard one-ing

Wikipedia

Free energy perturbation

Free energy perturbation (FEP) is a method based on statistical mechanics that is used in computational chemistry for computing free energy differences from molecular dynamics or Metropolis Monte Carlo simulations.

The FEP method was introduced by Robert W. Zwanzig in 1954. According to the free-energy perturbation method, the free energy difference for going from state A to state B is obtained from the following equation, known as the Zwanzig equation:

Δ F ( A B ) = F B F A = k B T ln exp ( E B E A k B T ) A {\displaystyle \Delta F(\mathbf {A} \rightarrow \mathbf {B} )=F_{\mathbf {B} }-F_{\mathbf {A} }=-k_{\mathrm {B} }T\ln \left\langle \exp \left(-{\frac {E_{\mathbf {B} }-E_{\mathbf {A} }}{k_{\mathrm {B} }T}}\right)\right\rangle _{\mathbf {A} }}

where T is the temperature, kB is Boltzmann's constant, and the angular brackets denote an average over a simulation run for state A. In practice, one runs a normal simulation for state A, but each time a new configuration is accepted, the energy for state B is also computed. The difference between states A and B may be in the atom types involved, in which case the ΔF obtained is for "mutating" one molecule onto another, or it may be a difference of geometry, in which case one obtains a free energy map along one or more reaction coordinates. This free energy map is also known as a potential of mean force or PMF.

Free energy perturbation calculations only converge properly when the difference between the two states is small enough; therefore it is usually necessary to divide a perturbation into a series of smaller "windows", which are computed independently. Since there is no need for constant communication between the simulation for one window and the next, the process can be trivially parallelized by running each window on a different CPU, in what is known as an "embarrassingly parallel" setup.