Q1 · theory
Ideal gas law:
Q2 · theory
Absolute zero is:
Q3 · theory
Kelvin from Celsius:
Q4 · theory
Average KE translational ideal gas ∝:
Q5 · theory
rms speed v_rms =:
Q6 · theory
First law thermodynamics:
Q7 · theory
Isothermal process ΔU for ideal gas:
Q8 · theory
Adiabatic means:
Q9 · theory
Isochoric means:
Q10 · theory
Isobaric means:
Q11 · theory
C_p − C_v for ideal gas =:
Q12 · theory
γ = C_p/C_v is:
Q13 · theory
Carnot efficiency:
Q14 · theory
Entropy statement:
Q15 · theory
Second law implies:
Q16 · theory
Heat engine converts:
Q17 · theory
Refrigerator COP related to:
Q18 · theory
Conduction heat transfer requires:
Q19 · theory
Radiation heat can travel:
Q20 · theory
Convection involves:
Q21 · theory
Specific heat is:
Q22 · theory
Latent heat is heat for:
Q23 · theory
Triple point of water used for:
Q24 · theory
Zeroth law defines:
Q25 · theory
PV diagram area represents:
Q26 · theory
Adiabatic curve is steeper than isothermal on PV for ideal gas:
Q27 · theory
Internal energy ideal gas depends on:
Q28 · theory
Reversible process is:
Q29 · theory
Irreversible processes increase:
Q30 · theory
Heat capacity of system:
Q31 · theory
Molar heat capacity uses:
Q32 · theory
Boltzmann constant k relates:
Q33 · theory
Avogadro number NA ~:
Q34 · theory
R = NA k is:
Q35 · theory
Van der Waals equation corrects:
Q36 · theory
Critical point is where:
Q37 · theory
Thermal expansion ΔL ≈:
Q38 · theory
Calorimetry uses:
Q39 · theory
Stefan-Boltzmann law:
Q40 · theory
Wien's law λ_max T =:
Q41 · theory
Heat pump heats:
Q42 · theory
Otto cycle approximates:
Q43 · theory
Diesel cycle has:
Q44 · theory
Entropy of universe for reversible cycle:
Q45 · theory
Work in isochoric process:
Q46 · theory
Heat in isothermal ideal gas expansion:
Q47 · theory
Degrees of freedom monatomic:
Q48 · theory
Equipartition: energy per quadratic term:
Q49 · theory
Sound speed in ideal gas ∝:
Q50 · theory
Thermal conductivity k in:
Q51 · numerical
P=1e5 Pa, V=0.01 m³, T=300 K. n ≈:
Q52 · numerical
P=1e5 Pa, V=0.01 m³, T=310 K. n ≈:
Q53 · numerical
P=1e5 Pa, V=0.01 m³, T=320 K. n ≈:
Q54 · numerical
P=1e5 Pa, V=0.01 m³, T=330 K. n ≈:
Q55 · numerical
P=1e5 Pa, V=0.01 m³, T=340 K. n ≈:
Q56 · numerical
P=1e5 Pa, V=0.01 m³, T=350 K. n ≈:
Q57 · numerical
P=1e5 Pa, V=0.01 m³, T=360 K. n ≈:
Q58 · numerical
P=1e5 Pa, V=0.01 m³, T=370 K. n ≈:
Q59 · numerical
P=1e5 Pa, V=0.01 m³, T=380 K. n ≈:
Q60 · numerical
P=1e5 Pa, V=0.01 m³, T=390 K. n ≈:
Q61 · numerical
P=1e5 Pa, V=0.01 m³, T=400 K. n ≈:
Q62 · numerical
P=1e5 Pa, V=0.01 m³, T=410 K. n ≈:
Q63 · numerical
P=1e5 Pa, V=0.01 m³, T=420 K. n ≈:
Q64 · numerical
P=1e5 Pa, V=0.01 m³, T=430 K. n ≈:
Q65 · numerical
P=1e5 Pa, V=0.01 m³, T=440 K. n ≈:
Q66 · numerical
Carnot engine T_H=600 K, T_C=300 K. Efficiency:
Q67 · numerical
Carnot engine T_H=600 K, T_C=300 K. Efficiency:
Q68 · numerical
Carnot engine T_H=600 K, T_C=300 K. Efficiency:
Q69 · numerical
Carnot engine T_H=600 K, T_C=300 K. Efficiency:
Q70 · numerical
Carnot engine T_H=600 K, T_C=300 K. Efficiency:
Q71 · numerical
Carnot engine T_H=600 K, T_C=300 K. Efficiency:
Q72 · numerical
Carnot engine T_H=600 K, T_C=300 K. Efficiency:
Q73 · numerical
Carnot engine T_H=600 K, T_C=300 K. Efficiency:
Q74 · numerical
Carnot engine T_H=600 K, T_C=300 K. Efficiency:
Q75 · numerical
Carnot engine T_H=600 K, T_C=300 K. Efficiency:
Q76 · numerical
Carnot engine T_H=600 K, T_C=300 K. Efficiency:
Q77 · numerical
Carnot engine T_H=600 K, T_C=300 K. Efficiency:
Q78 · numerical
Carnot engine T_H=600 K, T_C=300 K. Efficiency:
Q79 · numerical
Carnot engine T_H=600 K, T_C=300 K. Efficiency:
Q80 · numerical
Carnot engine T_H=600 K, T_C=300 K. Efficiency:
Q81 · numerical
Heat to raise 0.5 kg water (c=4200) by 20 K:
Q82 · numerical
Heat to raise 0.5 kg water (c=4200) by 21 K:
Q83 · numerical
Heat to raise 0.5 kg water (c=4200) by 22 K:
Q84 · numerical
Heat to raise 0.5 kg water (c=4200) by 23 K:
Q85 · numerical
Heat to raise 0.5 kg water (c=4200) by 24 K:
Q86 · numerical
Heat to raise 0.5 kg water (c=4200) by 25 K:
Q87 · numerical
Heat to raise 0.5 kg water (c=4200) by 26 K:
Q88 · numerical
Heat to raise 0.5 kg water (c=4200) by 27 K:
Q89 · numerical
Heat to raise 0.5 kg water (c=4200) by 28 K:
Q90 · numerical
Heat to raise 0.5 kg water (c=4200) by 29 K:
Q91 · numerical
Ideal gas rms speed ratio T2/T1=4 (same gas):
Q92 · numerical
Ideal gas rms speed ratio T2/T1=4 (same gas):
Q93 · numerical
Ideal gas rms speed ratio T2/T1=4 (same gas):
Q94 · numerical
Ideal gas rms speed ratio T2/T1=4 (same gas):
Q95 · numerical
Ideal gas rms speed ratio T2/T1=4 (same gas):
Q96 · numerical
Ideal gas rms speed ratio T2/T1=4 (same gas):
Q97 · numerical
Ideal gas rms speed ratio T2/T1=4 (same gas):
Q98 · numerical
Ideal gas rms speed ratio T2/T1=4 (same gas):
Q99 · numerical
Ideal gas rms speed ratio T2/T1=4 (same gas):
Q100 · numerical
Ideal gas rms speed ratio T2/T1=4 (same gas):