Analyzing the Impact of Geopolitical Conflicts on Consumer Behavior in the Canton of Zurich, Switzerland

Write a thesis on focusing on Switzerland and more specifically Zurich. hypothesis is the following: H (Null Hypothesis): “The impact of geopolitical conflicts on oil and gas supply does not alter consumer behaviour in the Canton of Zurich.”H (Alternative Hypothesis): “The impact of geopolitical conflicts on oil and gas supply does alter consumer behaviour in the Canton of Zurich.”Keep in mind that my paper should acknowledge the correlation between geopolitical conflicts’ impact on oil and gas supply.

 

 

 

Abstract: Docker – Revolutionizing the World of Containerization

 

Design the topic and write a 500-word abstract on Docker.
Why is Docker considered a “disruptive technology”? How is it used in industry?
What is an API and why are they important with Enterprise Computing?
What is the role of mainframe, IE: Z Systems, in a Docker implementation?
In your opinion, what is the most important key attribute of Docker?
Site at least 5 references to show your research and use proper grammar and writing discipline.

Advanced Chemical Engineering

Reforming of liquid fuels to hydrogen is being considered to enable hydrogen-powered fuel cells
to be used to generate remote power. For example, the military is interested in using hydrogen
fuel cells to replace conventional batteries, which have a low power density and a short lifetime.
Reforming, then, could be used to transform military fuels to hydrogen to power fuel cells.
Autothermal reforming is one means for converting liquid fuels to hydrogen. In this process, the
liquid fuel is reacted with oxygen and water to produce hydrogen. The overall reaction involves
multiple reactions. Assuming that isooctane (2,2,4 trimethyl pentane) is the fuel, the overall
reaction scheme can be written:
C8H18 + 12.5 O2  8 CO2 + 9 H2O
C8H18 + 8 H2O  8 CO + 17 H2
C8H18 + 8 CO2  16 CO + 9 H2
C8H18 + 16 H2O  8 CO2 + 25 H2
CO + H2O  CO2 + H2
Your assignment is to model the reforming of isooctane in a packed-bed reactor.
Reaction Kinetics
Pacheco, et. al. (Pacheco, 2003) fit experimental data for a proprietary Pt/CeO2 catalyst to obtain
reaction kinetics for each of these reactions. The reaction rate laws they used are shown in
Table 1, where the reaction order corresponds to that shown above, and the rate law constants
are given in Table 2.
2
Table 1. Reaction rate laws for all reactions involved in isooctane reforming
r1 = k1Pic8PO2
( )








++++

2
22 88 222
2
3
28 2
5.2
2
2
2
1 /
/
COCO HH i Ci C HOHOH
i C HOH CO
H PPKPKPKPK
KPPPP
P
k
r








= −
283
2
2
2
2833 1
iC CO
CO H
iC CO PPK
PP
PPkr
( )








++++

2
22 88 222
42
4
2
2
28
5.3
2
4
1 /
4 /
COCO HH i Ci C HOHOH
i C HOH CO
H PPKPKPKPK
KPPPP
P
k
r
( )








++++

2
22 88 222
2 522
2
5
5
1 /
/
COCO HH i Ci C HOHOH
CO HOH CO
H PPKPKPKPK
KPPPP
P
k
r
Table 2. Kinetic parameters for all reactions involved in isooctane reforming
Parameter Pre-exponential factor
or KTR
Activation energy and heat of
adsorption (kJ/mol)
k1 (mol/gcat/s/bar2
) 2.58E+08 166
k2 (mol bar0.5/gcat/s) 2.61E+09 240.1
k3 (mol/gcat/s/bar2
) 2.78E-05 23.7
k4 (mol bar0.5/gcat/s) 1.52E+07 243.9
k5 (mol/gcat/s/bar) 1.55E+01 67.1
KH2O (dimensionless) 1.57E+04 HH2O= 88.7
KH2 (dimensionless) 0.0296 (TR=648 K) HH2= -82.9
KCO (dimensionless) 40.91 (TR=648 K) HCO= -70.65
KiC8 (dimensionless) 0.1791 (TR=823 K) HiC8= -38.28
Note: For H2, CO, and iC8, K is found from:














−

R
R
T
TTR
H
KK
R
11
exp
For H2O, K is found from:
TRHKK )//exp(
o −= R
Note that the equilibrium constants are calculated assuming reaction stoichiometry for methane,
not iso-octane. For example, K2 is the equilibrium constant for the following reaction:
C8H18 + H2O  CO + 3 H2
3
Reactor Model and Simulation – Base Case
The base case reactor design is to be based on the following reaction conditions:
Reactor temperature – 700oC
Reactor pressure – 5 psig
Catalyst size – 0.51 mm
H2O/C (mol/mol in the feed) – 1.43
O2/C (mol/mol in the feed) – 0.42
O2 is supplied as air
No pressure drop
Isooctane molar flow rate = 0.00269 kmol/hr
Assume that there are no internal pore diffusion limitations and no external heat or mass transfer
limitations.
The desired production rate of hydrogen is 0.033 kmol/hour. Report the mass of catalyst needed
to achieve this production rate and the concentration profile in the reactor. Discuss the trends
seen in the profiles.
Reactor Model – Adiabatic
Next you should consider the same reactor, but operating adiabatically rather than isothermally.
Assume the inlet temperature is 700oC. Other than the change in heat transfer mode, you may
make the same assumptions as you did for the base case. Report the mass of catalyst needed to
achieve the desired production rate and the concentration and temperature profiles in the reactor.

Advanced Chemical Engineering

Reforming of liquid fuels to hydrogen is being considered to enable hydrogen-powered fuel cells
to be used to generate remote power. For example, the military is interested in using hydrogen
fuel cells to replace conventional batteries, which have a low power density and a short lifetime.
Reforming, then, could be used to transform military fuels to hydrogen to power fuel cells.
Autothermal reforming is one means for converting liquid fuels to hydrogen. In this process, the
liquid fuel is reacted with oxygen and water to produce hydrogen. The overall reaction involves
multiple reactions. Assuming that isooctane (2,2,4 trimethyl pentane) is the fuel, the overall
reaction scheme can be written:
C8H18 + 12.5 O2  8 CO2 + 9 H2O
C8H18 + 8 H2O  8 CO + 17 H2
C8H18 + 8 CO2  16 CO + 9 H2
C8H18 + 16 H2O  8 CO2 + 25 H2
CO + H2O  CO2 + H2
Your assignment is to model the reforming of isooctane in a packed-bed reactor.
Reaction Kinetics
Pacheco, et. al. (Pacheco, 2003) fit experimental data for a proprietary Pt/CeO2 catalyst to obtain
reaction kinetics for each of these reactions. The reaction rate laws they used are shown in
Table 1, where the reaction order corresponds to that shown above, and the rate law constants
are given in Table 2.
2
Table 1. Reaction rate laws for all reactions involved in isooctane reforming
r1 = k1Pic8PO2
( )








++++

2
22 88 222
2
3
28 2
5.2
2
2
2
1 /
/
COCO HH i Ci C HOHOH
i C HOH CO
H PPKPKPKPK
KPPPP
P
k
r








= −
283
2
2
2
2833 1
iC CO
CO H
iC CO PPK
PP
PPkr
( )








++++

2
22 88 222
42
4
2
2
28
5.3
2
4
1 /
4 /
COCO HH i Ci C HOHOH
i C HOH CO
H PPKPKPKPK
KPPPP
P
k
r
( )








++++

2
22 88 222
2 522
2
5
5
1 /
/
COCO HH i Ci C HOHOH
CO HOH CO
H PPKPKPKPK
KPPPP
P
k
r
Table 2. Kinetic parameters for all reactions involved in isooctane reforming
Parameter Pre-exponential factor
or KTR
Activation energy and heat of
adsorption (kJ/mol)
k1 (mol/gcat/s/bar2
) 2.58E+08 166
k2 (mol bar0.5/gcat/s) 2.61E+09 240.1
k3 (mol/gcat/s/bar2
) 2.78E-05 23.7
k4 (mol bar0.5/gcat/s) 1.52E+07 243.9
k5 (mol/gcat/s/bar) 1.55E+01 67.1
KH2O (dimensionless) 1.57E+04 HH2O= 88.7
KH2 (dimensionless) 0.0296 (TR=648 K) HH2= -82.9
KCO (dimensionless) 40.91 (TR=648 K) HCO= -70.65
KiC8 (dimensionless) 0.1791 (TR=823 K) HiC8= -38.28
Note: For H2, CO, and iC8, K is found from:














−

R
R
T
TTR
H
KK
R
11
exp
For H2O, K is found from:
TRHKK )//exp(
o −= R
Note that the equilibrium constants are calculated assuming reaction stoichiometry for methane,
not iso-octane. For example, K2 is the equilibrium constant for the following reaction:
C8H18 + H2O  CO + 3 H2
3
Reactor Model and Simulation – Base Case
The base case reactor design is to be based on the following reaction conditions:
Reactor temperature – 700oC
Reactor pressure – 5 psig
Catalyst size – 0.51 mm
H2O/C (mol/mol in the feed) – 1.43
O2/C (mol/mol in the feed) – 0.42
O2 is supplied as air
No pressure drop
Isooctane molar flow rate = 0.00269 kmol/hr
Assume that there are no internal pore diffusion limitations and no external heat or mass transfer
limitations.
The desired production rate of hydrogen is 0.033 kmol/hour. Report the mass of catalyst needed
to achieve this production rate and the concentration profile in the reactor. Discuss the trends
seen in the profiles.
Reactor Model – Adiabatic
Next you should consider the same reactor, but operating adiabatically rather than isothermally.
Assume the inlet temperature is 700oC. Other than the change in heat transfer mode, you may
make the same assumptions as you did for the base case. Report the mass of catalyst needed to
achieve the desired production rate and the concentration and temperature profiles in the reactor.

Genetic engineering

Genetic engineering has become a burgeoning area of research in both the biological and environmental sciences. Advances have been made that may boast positive outcomes for individual health and the environment. However, there are a bevy of ethical dilemmas and risks.

In a 3-page paper (double spaced), discuss the ethical issues and dilemmas of this technology. Your paper should also define what an ethical dilemma is. Provide specific examples and research. Lastly, your paper should conclude with your opinion on whether or not this type of research should be conducted.

American Airlines’ situation in 2013.

Discuss the following issues related to American Airlines’ situation in 2013.

  1. Performance: How has the company performed over the last several years in terms of revenues, profitability, and market share?
  2. Strategic Posture
    a. Mission: What is the company’s vision/mission statement?
    b. Objectives: What are the corporate, business, and functional objectives? Are they consistent with each other and with the mission?
    c. Strategies: What strategies has the company employed in order to be able to meet these objectives? Are these strategies consistent with each other and with the overall mission?
  3. Corporate Governance
    a. Directors: Who are the directors? Are they internal or external? What do they contribute to the corporation in terms of knowledge, skills, and background?
    b. Top Management: What persons or groups constitute top management? How suited is the management team to the achievement of corporate objectives?
  4. Porter Analysis: Perform an in-depth analysis of the firm’s task environment using Porter’s Approach to Industry Analysis. Analyze the importance and impact of the following five (5) forces.
    a. Threat of New Entrants
    b. Bargaining Power of Buyers
    c. Bargaining Power of Suppliers
    d. Rivalry Among Competing Firms
    e. Threat of Substitute Products or Services
  5. Other Characteristics: Describe at least three (3) other industry characteristics that you think are important and that affect the performance of firms in this industry.
  6. Opportunities: Discuss at least five (5) opportunities available to the firm based on the industry analysis.
  7. Threats: Discuss at least five (5) threats facing the firm based on the industry analysis.
  8. External Factors Analysis Summary: Develop an External Factors Analysis Summary (EFAS Table) for American Airlines listing the five (5) opportunities and five (5) threats described above. Discuss why you consider these external factors to be important.

Part C Internal Analysis

  1. Core Competencies
    a. Description: Describe at least two (2) core competencies that the firm possesses or can develop.
    b. Distinctiveness: Are these distinctive competencies? Explain.
  2. Competitive Position
    a. Current Position: What is the firm’s current competitive position? Discuss.
    b. Competitive Advantage: Does the firm possess a significant competitive advantage over other firms in the industry? Explain.
    c. Sustainability: Can the firm sustain its competitive advantage over the long term? Explain.
  3. Strengths: Discuss at least five (5) strengths of the firm based on the competitive analysis.
  4. Weaknesses: Describe at least five (5) weaknesses of the firm based on the competitive analysis.
  5. Internal Factors Analysis Summary: Develop an Internal Factors Analysis Summary (IFAS Table) for American Airlines listing the five (5) strengths and five (5) weaknesses described above. Discuss why you consider these internal factors to be important.

Part D Analysis of Strategic Factors (SWOT)

  1. Situational Analysis: What are the most important internal and external strategic factors (Strengths, Weaknesses, Opportunities, and Threats) that strongly affect the company’s present and future performance? List 12 strategic factors (3 each of the opportunities, threats, strengths, and