2020•Unpublished venueOpen access

Separating Aero And Space: Establishing A Dual Track For Aerospace Engineering Students

Thomas Hannigan, Carrie Olsen, David H. Bridges, Keith Koenig

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Abstract

Abstract NOTE: The first page of text has been automatically extracted and included below in lieu of an abstract Separating Aero and Space: Establishing a Dual Track for Aerospace Engineering Students Introduction The recent renewal of interest in returning to space, with manned missions to the Moon and Mars being actively discussed and planned, has caused a resurgence in student interest in aerospace engineering. The success of the X-Prize competition at spurring private manned space development has also fueled the imaginations and heightened the motivation of students to study space related topics, and to pursue a college degree that will prepare them to work in the space industry. Meanwhile, a very mature space industry already exists to support a myriad of space- related industries. Informal surveys of entering freshmen indicate that nearly half of them would like to work in space-related jobs during their aerospace engineering careers. The depth and breadth of a well established and diverse aerospace engineering program, and the emphasis of this program primarily on aeronautical education, research, and technology development is documented. The contrast of the needs of employers in support of space-related industries, from industry and alumni perspectives is described. The discussions that established a definitive need for a dual track system for aerospace engineering students are detailed. The process that led to the implementation of a revised curriculum is described. To begin the process of changing the aerospace engineering curriculum to better server the needs of undergraduates interested in a greater emphasis on space-related courses, an internet study of the published curricula of various institutions was conducted. Synopses of each program investigated are included, and contrasts and similarities noted along with a discussion of the wide variety of ways that the common requirements are implemented. Changes to courses ranging from introductory, intermediate and upper division and technical electives, and laboratory courses are described. Development of additional technical elective and graduate courses are discussed. Background The official program description that has been listed in Mississippi State University catalogs for many years expressed the intention to graduate students well prepared to enter into the national aerospace engineering workforce: The Department of Aerospace Engineering at Mississippi State University provides an accredited undergraduate curriculum with the mission of preparing students to enter the workplace as qualified entry-level aerospace engineers or to enter any aerospace engineering graduate program adequately prepared for advanced study. This mission is accomplished by a strong foundation in mathematics and physical and engineering sciences upon which student problem solving and application skills are developed. The curriculum stresses analytical and communication skills, with particular emphasis placed on engineering design throughout the curriculum. A capstone design experience in the senior year provides the opportunity to integrate design, analytical, and problem solving skills along with communication skills in a team environment which emulates aerospace engineering practice. The mission1 of this Aerospace Engineering Department is accomplished by the following learning objectives:

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Abstract NOTE: The first page of text has been automatically extracted and included below in lieu of an abstract Separating Aero and Space: Establishing a Dual Track for Aerospace Engineering Students Introduction The recent renewal of interest in returning to space, with manned missions to the Moon and Mars being actively discussed and planned, has caused a resurgence in student interest in aerospace engineering. The success of the X-Prize competition at spurring private manned space development has also fueled the imaginations and heightened the motivation of students to study space related topics, and to pursue a college degree that will prepare them to work in the space industry. Meanwhile, a very mature space industry already exists to support a myriad of space- related industries. Informal surveys of entering freshmen indicate that nearly half of them would like to work in space-related jobs during their aerospace engineering careers. The depth and breadth of a well established and diverse aerospace engineering program, and the emphasis of this program primarily on aeronautical education, research, and technology development is documented. The contrast of the needs of employers in support of space-related industries, from industry and alumni perspectives is described. The discussions that established a definitive need for a dual track system for aerospace engineering students are detailed. The process that led to the implementation of a revised curriculum is described. To begin the process of changing the aerospace engineering curriculum to better server the needs of undergraduates interested in a greater emphasis on space-related courses, an internet study of the published curricula of various institutions was conducted. Synopses of each program investigated are included, and contrasts and similarities noted along with a discussion of the wide variety of ways that the common requirements are implemented. Changes to courses ranging from introductory, intermediate and upper division and technical electives, and laboratory courses are described. Development of additional technical elective and graduate courses are discussed. Background The official program description that has been listed in Mississippi State University catalogs for many years expressed the intention to graduate students well prepared to enter into the national aerospace engineering workforce: The Department of Aerospace Engineering at Mississippi State University provides an accredited undergraduate curriculum with the mission of preparing students to enter the workplace as qualified entry-level aerospace engineers or to enter any aerospace engineering graduate program adequately prepared for advanced study. This mission is accomplished by a strong foundation in mathematics and physical and engineering sciences upon which student problem solving and application skills are developed. The curriculum stresses analytical and communication skills, with particular emphasis placed on engineering design throughout the curriculum. A capstone design experience in the senior year provides the opportunity to integrate design, analytical, and problem solving skills along with communication skills in a team environment which emulates aerospace engineering practice. The mission1 of this Aerospace Engineering Department is accomplished by the following learning objectives:

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Abstract NOTE: The first page of text has been automatically extracted and included below in lieu of an abstract Separating Aero and Space: Establishing a Dual Track for Aerospace Engineering Students Introduction The recent renewal of interest in returning to space, with manned missions to the Moon and Mars being actively discussed and planned, has caused a resurgence in student interest in aerospace engineering. The success of the X-Prize competition at spurring private manned space development has also fueled the imaginations and heightened the motivation of students to study space related topics, and to pursue a college degree that will prepare them to work in the space industry. Meanwhile, a very mature space industry already exists to support a myriad of space- related industries. Informal surveys of entering freshmen indicate that nearly half of them would like to work in space-related jobs during their aerospace engineering careers. The depth and breadth of a well established and diverse aerospace engineering program, and the emphasis of this program primarily on aeronautical education, research, and technology development is documented. The contrast of the needs of employers in support of space-related industries, from industry and alumni perspectives is described. The discussions that established a definitive need for a dual track system for aerospace engineering students are detailed. The process that led to the implementation of a revised curriculum is described. To begin the process of changing the aerospace engineering curriculum to better server the needs of undergraduates interested in a greater emphasis on space-related courses, an internet study of the published curricula of various institutions was conducted. Synopses of each program investigated are included, and contrasts and similarities noted along with a discussion of the wide variety of ways that the common requirements are implemented. Changes to courses ranging from introductory, intermediate and upper division and technical electives, and laboratory courses are described. Development of additional technical elective and graduate courses are discussed. Background The official program description that has been listed in Mississippi State University catalogs for many years expressed the intention to graduate students well prepared to enter into the national aerospace engineering workforce: The Department of Aerospace Engineering at Mississippi State University provides an accredited undergraduate curriculum with the mission of preparing students to enter the workplace as qualified entry-level aerospace engineers or to enter any aerospace engineering graduate program adequately prepared for advanced study. This mission is accomplished by a strong foundation in mathematics and physical and engineering sciences upon which student problem solving and application skills are developed. The curriculum stresses analytical and communication skills, with particular emphasis placed on engineering design throughout the curriculum. A capstone design experience in the senior year provides the opportunity to integrate design, analytical, and problem solving skills along with communication skills in a team environment which emulates aerospace engineering practice. The mission1 of this Aerospace Engineering Department is accomplished by the following learning objectives:

Key concepts: Aerospace, Space (punctuation), Space industry, Curriculum, Dual (grammatical number), Process (computing), Space exploration, Work (physics)

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