Осуществить переход C3H8-->C6HI4-->C6H12-->C6H13OH

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Ответ:
POGBOOM
04.01.2022 12:42

  10,8 г                                                                        Х л

   2Al          +            6HCl        =      2ALCl3       +      3H2

n = 2 моль                                                                 n = 3 моль

Mr = 27 г/моль                                                         Vm=22,4 л/моль

m = 54 г                                                                    V = 67,2 л

10,8 г Al      -     Х л Н2

54 г Al        -     67,2 л Н2

V(H2) = 10,8 * 67,2 / 54 = 13,44 л

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Ответ:
HOHOL666
26.12.2022 18:42

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