stoichiometric coefficient वाक्य
उदाहरण वाक्य
मोबाइल
- For example n A + m B-> C is generally governed by a reaction rate like r = k [ A ] ^ n [ B ] ^ m, where the exponents are the same as the reduced stoichiometric coefficients.
- For example, in the reaction, the stoichiometric coefficient of CH 4 is " 1, the stoichiometric coefficient of O 2 is " 2, for CO 2 it would be + 1 and for H 2 O it is + 2.
- For example, in the reaction, the stoichiometric coefficient of CH 4 is " 1, the stoichiometric coefficient of O 2 is " 2, for CO 2 it would be + 1 and for H 2 O it is + 2.
- Here, \ Omega is the system size, \ mathbb { E } is an stoichiometric coefficient for species i in reaction j ), and f _ j is the rate of reaction j given a state \ mathbf { x } and system size \ Omega.
- As for many reactions, the experimental rate equation does not simply reflect the stoichiometric coefficients in the overall reaction : It is third order overall : first order in H 2 and second order in NO, even though the stoichiometric coefficients of both reactants are equal to 2.
- As for many reactions, the experimental rate equation does not simply reflect the stoichiometric coefficients in the overall reaction : It is third order overall : first order in H 2 and second order in NO, even though the stoichiometric coefficients of both reactants are equal to 2.
- FBA formalizes the system of equations describing the concentration changes in a metabolic network as the dot product of a matrix of the stoichiometric coefficients ( the stoichiometric matrix "'S "') and the vector "'v "'of the unsolved fluxes.
- Where " K i " is the equilibrium constant of formation of the secondary species " i ", and & nu; i, j represents the stoichiometric coefficient of basis species " j " in secondary species " i " ( the values of & nu; j, i can be positive or negative ).
- R \ in R _ { \ nu } ^ + if and only if \ nu is the vector of the input stoichiometric coefficients \ alpha _ r for the " r " th elementary reaction; r \ in R _ { \ nu } ^-if and only if \ nu is the vector of the output stoichiometric coefficients \ beta _ r for the " r " th elementary reaction.
- R \ in R _ { \ nu } ^ + if and only if \ nu is the vector of the input stoichiometric coefficients \ alpha _ r for the " r " th elementary reaction; r \ in R _ { \ nu } ^-if and only if \ nu is the vector of the output stoichiometric coefficients \ beta _ r for the " r " th elementary reaction.
- In addition to the quip about the iodine-thiosulfate equivalency, it also states that " The number of moles elemental iodine is equivalent to half the moles of of manganese oxide hydroxide [ 2MnO ( OH ) 2 ] in the second and third equations . " ( Uh, not really . . . the stoichiometric coefficients are equal ! ) Then with some further reasoning ( about the moles of oxygen being equivalent to half the moles of the magnesium oxide hydroxide . . . finally something that looks correct ) it concludes that the equivalent weight of oxygen is one-fourth of that of elemental iodine or sodium thiosulfate . . . that number works out if you trash their reasoning and just find the equivalencies ( one-half equivalent iodine per sodium thiosulfate in the last eqn, one-to-one iodine-to-magnesium-oxide-hydroxide in the third eqn, and then the half-oxygen-to-1-magensium-oxide-hydroxide ) by our ways of reasoning.
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