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FLORIDA BOARD OF PROFESSIONAL ENGINEERS FUNDAMENTALS OF ENGINEERING CHEMICAL EXAM WITH ACTUAL QUESTIONS AND VERIFIED ANSWERS, PLUS EXPLAINED RATIONALES/EXPERT VERIFIED FOR GUARANTEED 100% PASS 2026/LATEST UPDATE/INSTANT DOWNLOAD PDF

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FLORIDA BOARD OF PROFESSIONAL ENGINEERS FUNDAMENTALS OF ENGINEERING CHEMICAL EXAM WITH ACTUAL QUESTIONS AND VERIFIED ANSWERS, PLUS EXPLAINED RATIONALES/EXPERT VERIFIED FOR GUARANTEED 100% PASS 2026/LATEST UPDATE/INSTANT DOWNLOAD PDF

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FLORIDA BOARD OF PROFESSIONAL
ENGINEERS FUNDAMENTALS OF
ENGINEERING CHEMICAL EXAM WITH
ACTUAL QUESTIONS AND VERIFIED
ANSWERS, PLUS EXPLAINED
RATIONALES/EXPERT VERIFIED FOR
GUARANTEED 100% PASS 2026/LATEST
UPDATE/INSTANT DOWNLOAD PDF
1. Material Balance — Single-Unit Steady-State Process
A continuous steady-state process receives 1,000 kg/h of a feed
containing 40 wt% component A and 60 wt% inert material. The process
removes 90% of A in a separator, while all inert material leaves with the
remaining stream. What is the mass flow rate of the stream leaving the
separator?
A. 400 kg/h
B. 460 kg/h
C. 500 kg/h
D. 600 kg/h
Answer: B. 460 kg/h
Rationale: The feed contains 400 kg/h of A and 600 kg/h of inert
material. Ninety percent of A is removed, so 10% remains: 0.10(400) =
40 kg/h A. The inert material remains entirely in the outlet, contributing
600 kg/h. Therefore, the outlet flow is 40 + 600 = 640 kg/h—not 460
kg/h. Thus the correct answer should actually be none of the listed
choices. This illustrates the importance of independently checking
component balances rather than relying on a presumed answer. If the
intended question were asking for the removed stream, it would be 360
kg/h.

1

,Corrected answer: 640 kg/h.


2. Stoichiometry
For the reaction
2A+3B→2C
a reactor receives 100 mol/h of A and 120 mol/h of B. Assuming
complete consumption of the limiting reactant, what is the maximum
molar production rate of C?
A. 60 mol/h
B. 80 mol/h
C. 100 mol/h
D. 120 mol/h
Answer: B. 80 mol/h
Rationale: For every 2 mol of A, 3 mol of B are required. To consume
100 mol/h A would require 150 mol/h B, but only 120 mol/h are
available. Therefore B is limiting. From the stoichiometry, 3 mol B
produce 2 mol C:
120(32)=80 mol/h
Therefore, the maximum production is 80 mol/h.


3. Recycle Process
A process receives 1,000 kg/h of fresh feed. A recycle stream equal to
30% of the total process feed is returned from a separator. What is the
total feed rate entering the process?
A. 1,300 kg/h
B. 1,333 kg/h

2

,C. 1,428.6 kg/h
D. 1,500 kg/h
Answer: B. 1,428.6 kg/h
Rationale: Let the total process feed be F. The recycle is 0.30F. The
fresh feed is therefore:
F−0.30F=1000 0.70F=1000 F=1428.6 kg/h
Thus the total feed entering the process is approximately 1,428.6 kg/h.


4. Ideal Gas Law
A gas occupies 2.00 m³ at 400 K and 200 kPa absolute pressure.
Assuming ideal-gas behavior, what is the number of kilomoles present?
Use R=8.314 kPa\cdotpm3/(kmol\cdotpK).
A. 0.0601 kmol
B. 0.1203 kmol
C. 0.2406 kmol
D. 1.202 kmol
Answer: B. 0.1203 kmol
Rationale: Apply
PV=nRT
Therefore,
n=RTPV n=(8.314)(400)(200)(2.00) n≈0.1203 kmol
The gas therefore contains approximately 0.120 kmol.


5. First Law of Thermodynamics


3

, A steady-flow heater receives a liquid stream with an enthalpy of 100
kJ/kg and discharges it at an enthalpy of 500 kJ/kg. Neglect kinetic and
potential-energy changes. If the mass flow rate is 5 kg/s, what heat-
transfer rate is required?
A. 500 kW
B. 1,000 kW
C. 2,000 kW
D. 2,500 kW
Answer: C. 2,000 kW
Rationale: For a steady-flow heater with negligible shaft work:
Q˙=m˙(h2−h1)
Thus,
Q˙=5(500−100)=2000 kW
Therefore, 2,000 kW of heat must be supplied.


6. Enthalpy
Which statement most accurately describes enthalpy?
A. It is always equal to internal energy.
B. It is defined as H=U+PV.
C. It depends only on pressure for every substance.
D. It represents only sensible heat.
Answer: B. It is defined as H=U+PV.
Rationale: Enthalpy is a thermodynamic state function defined by:
H=U+PV
It is particularly convenient for analyzing flowing fluids because flow
work is naturally incorporated into the enthalpy term. Enthalpy can

4

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