26.12cm³ of a solution containing 1.04g HCL per 500cm³ of solution is completely neutralized by 25cm³ of sodium carbonate solution, The sodium carbonate solution was prepared previously by diluting 50cm³ of a saturated solution of sodium trioxocarbonate at room temperature to 1000cm³.
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Chemistry, 22.06.2019 07:00, vivianni0727p1y30v
How heavy is thanos? a) 3000 lbs b) all of it c) the price of tea in china d) heavy enough
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Chemistry, 22.06.2019 08:30, vanessadaniellet21
Since the gas in your graduated cylinder is a mixture of butane and water vapor, you must determine the partial pressure of the butane, pbutane, alone. to do this, consult a reference and record the partial pressure of the water vapor, pwater, at the temperature you recorded. use the following formula to compute the partial pressure of the butane. pbutane = atmosphere - pwater use the following combined gas law formula and compute the volume that the butane sample will occupy at stp. (hint: convert both temperatures to kelvin.) pbutane x voriginal = pstandard x vfinal troom tstandard use the following ratio and proportion formula to determine the mass of butane needed to occupy a volume of 22.4 l at stp. grams of butane you used “x” grams of butane ml of butane corrected to stp = 22,400 ml compute the theoretical molar mass of butane based on its formula and the atomic masses on the periodic table. compare your experimental results from #3 to the theoretical value of #4, computing a percent error of your findings using this formula: % error = measured value - accepted value x 100 accepted value use the following ratio and proportion formula to determine the mass of butane needed to occupy a volume of 22.4 l at stp. need asap
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Chemistry, 22.06.2019 17:30, mwest200316
To find the enthalpy of a reaction in the lab, you measured the of the reactants and the change during the reaction.
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26.12cm³ of a solution containing 1.04g HCL per 500cm³ of solution is completely neutralized by 25cm...
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