Q2. An aqueous glucose stream is to be catalytically hydrogenated to produce sorbitol in a CSTR. Feed to the reactor consists of an aqueous glucose stream (2.6 kg mol/m³) and a 120% of stoichiometric hydrogen gas stream. The reactor is operated isothermally at 423 K and at a pressure of 10,000 kPa, leading to solubility of hydrogen to be 5 kg mol/m³. The rate of reaction was found to be 8.59 x 10 kg mol/m³/s under such conditions. If the conversion achieved in this CSTR is 66%, estimate the flow rate of glucose stream for a 3 m³ volume of CSTR. Neglect the mass transfer effects.
Q2. An aqueous glucose stream is to be catalytically hydrogenated to produce sorbitol in a CSTR. Feed to the reactor consists of an aqueous glucose stream (2.6 kg mol/m³) and a 120% of stoichiometric hydrogen gas stream. The reactor is operated isothermally at 423 K and at a pressure of 10,000 kPa, leading to solubility of hydrogen to be 5 kg mol/m³. The rate of reaction was found to be 8.59 x 10 kg mol/m³/s under such conditions. If the conversion achieved in this CSTR is 66%, estimate the flow rate of glucose stream for a 3 m³ volume of CSTR. Neglect the mass transfer effects.
Introduction to Chemical Engineering Thermodynamics
8th Edition
ISBN:9781259696527
Author:J.M. Smith Termodinamica en ingenieria quimica, Hendrick C Van Ness, Michael Abbott, Mark Swihart
Publisher:J.M. Smith Termodinamica en ingenieria quimica, Hendrick C Van Ness, Michael Abbott, Mark Swihart
Chapter1: Introduction
Section: Chapter Questions
Problem 1.1P
Related questions
Question
![Q2. An aqueous glucose stream is to be catalytically hydrogenated to produce sorbitol in a CSTR. Feed to the
reactor consists of an aqueous glucose stream (2.6 kg mol/m³) and a 120% of stoichiometric hydrogen gas
stream. The reactor is operated isothermally at 423 K and at a pressure of 10,000 kPa, leading to solubility of
hydrogen to be 5 kg mol/m³. The rate of reaction was found to be 8.59 x 104 kg mol/m³/s under such
conditions. If the conversion achieved in this CSTR is 66%, estimate the flow rate of glucose stream for a 3
m³ volume of CSTR. Neglect the mass transfer effects.
Q3. It is desired to produce ethylene by thermal cracking of ethane at a rate of 875 mol/h. The reaction takes
place at 1500 °F and 50 psia.
C2H6 >
C2H4 + H2
C2H6 >
0.5 C2H4 +CH4
moles of ethylene formed
1-
0.038
The selectivity is given as S =
moles of ethane converted
(1–x)0.24
The cost of ethylene is $6.15/mol and that of ethane is $1.65/mol. Fuel cost is $4/MMBtu. Fuel values of
hydrogen and methane are 1.23 and 0.383 MMBtu/mol, respectively. Draw the input-output structure of the
flowsheet and find the economic potential when the per pass conversion is 0.2.](/v2/_next/image?url=https%3A%2F%2Fcontent.bartleby.com%2Fqna-images%2Fquestion%2Fe6a8396a-4f3b-45b4-a52e-0aef444730fd%2F1fd582ab-49b3-4d97-ba2e-f6843545f463%2F0ihww5_processed.jpeg&w=3840&q=75)
Transcribed Image Text:Q2. An aqueous glucose stream is to be catalytically hydrogenated to produce sorbitol in a CSTR. Feed to the
reactor consists of an aqueous glucose stream (2.6 kg mol/m³) and a 120% of stoichiometric hydrogen gas
stream. The reactor is operated isothermally at 423 K and at a pressure of 10,000 kPa, leading to solubility of
hydrogen to be 5 kg mol/m³. The rate of reaction was found to be 8.59 x 104 kg mol/m³/s under such
conditions. If the conversion achieved in this CSTR is 66%, estimate the flow rate of glucose stream for a 3
m³ volume of CSTR. Neglect the mass transfer effects.
Q3. It is desired to produce ethylene by thermal cracking of ethane at a rate of 875 mol/h. The reaction takes
place at 1500 °F and 50 psia.
C2H6 >
C2H4 + H2
C2H6 >
0.5 C2H4 +CH4
moles of ethylene formed
1-
0.038
The selectivity is given as S =
moles of ethane converted
(1–x)0.24
The cost of ethylene is $6.15/mol and that of ethane is $1.65/mol. Fuel cost is $4/MMBtu. Fuel values of
hydrogen and methane are 1.23 and 0.383 MMBtu/mol, respectively. Draw the input-output structure of the
flowsheet and find the economic potential when the per pass conversion is 0.2.
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