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  2. List of conversion factors - Wikipedia

    en.wikipedia.org/wiki/List_of_conversion_factors

    = 1 N = 1 kg⋅m/s 2: ounce-force: ozf ≡ g 0 × 1 oz = 0.278 013 850 953 781 25 N: pound-force: lbf: ≡ g 0 × 1 lb = 4.448 221 615 2605 N: poundal: pdl ≡ 1 lb⋅ft/s 2 = 0.138 254 954 376 N: short ton-force: tnf [citation needed] ≡ g 0 × 1 short ton = 8.896 443 230 521 × 10 3 N: sthene (mts unit) sn ≡ 1 t⋅m/s 2 = 10 3 N

  3. Kilogram-force per square centimetre - Wikipedia

    en.wikipedia.org/wiki/Kilogram-force_per_square...

    In SI units, the unit is converted to the SI derived unit pascal (Pa), which is defined as one newton per square metre (N/m 2). A newton is equal to 1 kg⋅m/s 2 , and a kilogram-force is 9.80665 N, [ 3 ] meaning that 1 kgf/cm 2 equals 98.0665 kilopascals (kPa).

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  5. Module:Convert/documentation/conversion data - Wikipedia

    en.wikipedia.org/wiki/Module:Convert/...

    The values for most of the conversion factors used by Template:Convert come from international and national standards documents: . Organisation Intergouvernementale de la Convention du Mètre (2014) [2006].

  6. Darcy (unit) - Wikipedia

    en.wikipedia.org/wiki/Darcy_(unit)

    Converted to SI units, 1 darcy is equivalent to 9.869 233 × 10 −13 m 2 or 0.9869233 μm 2. [4] This conversion is usually approximated as 1 μm 2 . This is the reciprocal of 1.013250—the conversion factor from atmospheres to bars .

  7. Mass diffusivity - Wikipedia

    en.wikipedia.org/wiki/Mass_diffusivity

    D is the diffusion coefficient (in m 2 /s), D 0 is the maximal diffusion coefficient (at infinite temperature; in m 2 /s), E A is the activation energy for diffusion (in J/mol), T is the absolute temperature (in K), R ≈ 8.31446 J/(mol⋅K) is the universal gas constant.

  8. Vacuum permittivity - Wikipedia

    en.wikipedia.org/wiki/Vacuum_permittivity

    Here, q 1 and q 2 are the charges, r is the distance between their centres, and the value of the constant fraction / is approximately 9 × 10 9 Nm 2 ⋅C −2. Likewise, ε 0 appears in Maxwell's equations , which describe the properties of electric and magnetic fields and electromagnetic radiation , and relate them to their sources.

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