Engineering is about the way things work. Physics is about why things work the way they do. By combining the two, engineering physicists gain a deeper understanding of the physical environment and apply that knowledge to solve problems in our ever changing high-tech world.

\n

Engineering physics majors study the fundamentals and intricacies of both engineering and physics. They take courses in computational physics, calculus, algebra, statistics, chemistry, strength of materials, electricity, magnetism, superconductivity, statics, thermodynamics, and fluid dynamics. In short, they learn how to apply the insights of physics and other disciplines to the many fields of engineering.

", "display_order": 1, "created_at": "2019-08-29T17:56:36.583257-07:00", "updated_at": "2021-11-18T13:55:38.926100-08:00"}, {"degree_id": 319, "page": 1, "title": "Program Options", "summary_markdown": "**Bachelor\u2019s Degree in Engineering Physics \u2013 Four to Five Year Duration** \r\nAt the bachelor\u2019s level, engineering physics programs are comprised of coursework in basic science, engineering science, and specialized engineering and science. Core requirements also commonly include non-technical courses aimed at broadening students\u2019 awareness of social, economic, and managerial factors affecting engineering and scientific work. The typical curriculum combines lectures with projects and laboratory sessions. \r\n\r\nHere is a snapshot of an engineering physics bachelor\u2019s program: \r\n\r\n- General Chemistry and Laboratory \r\n- Calculus \r\n- Applied Linear Algebra \r\n- Introduction to Computing Science and Programming for Engineers \r\n- Principles of Microeconomics \r\n- Engineering, Science, and Society \r\n- Fundamentals of Informative and Persuasive Communication for Engineers \r\n- Introduction to Electronics Laboratory Instruments Operation and Measurement Techniques \r\n- Introduction to Engineering Analysis \r\n- The Use of Graphics to Communicate Engineering Information \r\n- Electric Circuits \r\n- Microelectronics \u2013 Analog / Digital Electronics and Basic Device Physics \r\n- Software Design and Analysis for Engineers", "content_markdown": "- Fundamentals of Digital Logic and Design \r\n- Introduction to Computer Organization \r\n- Methods to Collect and Analyze Engineering Data \r\n- Electronic Devices \u2013 The Essential Physics of Silicon Semiconductor Devices \r\n- Embedded and Real Time (RT) System Software \r\n- Linear Systems \u2013 The Modeling and Analysis of Continuous and Discrete Signals Using Linear Techniques \r\n- Introduction to the Analysis, Design, and Applications of Continuous Time Linear Control Systems \r\n- Group Project: Project Design, Management, and Documentation \r\n- Engineering Ethics, Law, and Professional Practice \r\n- The Business of Engineering \r\n- Group Project: Engineering Design Project \r\n- Optical and Laser Engineering Applications \r\n- Introduction to Microelectronic / Integrated Circuit Fabrication \r\n- Vector and Complex Analysis for Applied Sciences \r\n- Introduction to Ordinary Differential Equations \r\n- Mechanical and Modern Physics \u2013 A General Calculus-Based Introduction to Mechanics \r\n- Optics, Electricity, and Magnetism \u2013 A General Calculus-Based Introduction to Electricity, Magnetism, and Optics \r\n- Intermediate Mechanics \r\n- Physics Laboratory \r\n- Intermediate Electricity and Magnetism \r\n- Thermal Physics \r\n- Methods of Theoretical Physics \r\n- The Structure of Quantum Mechanics \r\n- Electromagnetic Waves \u2013 The Properties of Electromagnetic Waves and Their Interaction with Matter \r\n\r\n**Master\u2019s Degree in Engineering Physics \u2013 Two Year Duration** \r\nMaster\u2019s programs in engineering physics are hands-on and laboratory-based. They equip students with the troubleshooting and problem solving skills necessary for leadership roles in industry and government research labs, or for further study at the doctoral level. Master\u2019s candidates typically choose a specialization. A thesis or design project is the final requirement for graduation. \r\n\r\nHere is a summary of some common specializations in the field: \r\n\r\n- Smart Systems and Laboratory Automation \u2013 designed for the student who is interested in working in a technical environment with a focus on automation, instrumentation, and electronics to analyze and control a process \r\n- Instrumentation and Automation \u2013 designed for the student who is interested in developing skills in electronics, instrumentation and automation as well as acquiring business and workplace skills \r\n- Nanoscience for Advanced Materials \u2013 designed for the student who is interested in developing skills in electronics, microscopy, nanotechnology, and materials as well as acquiring business and workplace skills \r\n- Biomedical Engineering \u2013 designed foe the student who is interested in the application of light (photonics) and nano- and micro-devices in health and medicine \r\n- Nuclear Engineering and Energy Systems \u2013 designed for the student who is interested in exploring how inexhaustible energy can be created by harvesting sunlight or nuclear processes \r\n- Photonics Engineering \u2013 designed for the student who is interested in the branch of science and engineering that involves the generation, control, and detection of light to provide useful applications for society \r\n\r\nWhile coursework varies depending on the selected concentration, most graduate programs require that students complete some core courses in areas such as: \r\n\r\n- Applied Quantum Mechanics \r\n- Statistical Mechanics \r\n- Applied Mathematics \r\n- Applied Physics \r\n- Computer Science \r\n- Engineering \r\n- Biotechnology", "content_html": "\n

Master\u2019s Degree in Engineering Physics \u2013 Two Year Duration
\nMaster\u2019s programs in engineering physics are hands-on and laboratory-based. They equip students with the troubleshooting and problem solving skills necessary for leadership roles in industry and government research labs, or for further study at the doctoral level. Master\u2019s candidates typically choose a specialization. A thesis or design project is the final requirement for graduation.

\n

Here is a summary of some common specializations in the field:

\n\n

While coursework varies depending on the selected concentration, most graduate programs require that students complete some core courses in areas such as:

\n", "display_order": 2, "created_at": "2019-08-29T17:56:36.585437-07:00", "updated_at": "2021-12-09T12:58:22.693696-08:00"}, {"degree_id": 319, "page": 1, "title": "Degrees Similar to Engineering Physics", "summary_markdown": "**[Aerospace Engineering](/degrees/aerospace-engineering-degree/)** \r\nAerospace engineering degree programs teach the analytical, computational, and engineering and design skills needed to work in the aerospace industry. Students learn how to apply this knowledge to the manufacturing, testing, and monitoring of civil or commercial aircraft, military aircraft, missiles, rockets, spacecraft, lunar vehicles, and space stations. \r\n\r\n**[Biophysics](/degrees/biophysics-degree/)** \r\nBiophysics applies the theories and methods of physics to understand how biological systems like the brain, the circulatory system, and the immune system function. Coursework includes math, chemistry, physics, engineering, pharmacology, and materials science. \r\n\r\n**[Computer Software Engineering](/degrees/computer-software-engineering-degree/)** \r\nDegree programs in software engineering teach students how to apply engineering principles to software development. Students learn how to design, build, test, implement, and maintain computer operating systems, as well as applications that allow end users to accomplish tasks on their computers, smartphones, and other electronic devices. The typical curriculum includes several programming languages, operating systems analysis, and website design. Most programs begin with core engineering classes like mathematics, chemistry, and physics. \r\n\r\n**[Electrical Engineering](/degrees/electrical-engineering-degree/)** \r\nStudents of electrical engineering learn how to use physics, electronics, and electromagnetism to design devices that are powered by or produce electricity. Most degree programs in the field start with foundational classes in calculus, physics, and chemistry. \r\n\r\n**[Materials Science](/degrees/materials-science-degree/)** \r\nMaterials science involves creating, testing, and improving all kinds of materials that can be used to make different products. Material engineers work with glass, plastic, ceramics, metal and other materials.", "content_markdown": "**[Mechanical Engineering](/degrees/mechanical-engineering-degree/)** \r\nStudents of mechanical engineering learn how to research, design, develop, and test mechanical and thermal devices, including tools, sensors, engines, and machines. These devices serve many industries, including the aerospace, medical, energy, and manufacturing sectors. In addition to coursework in engineering and design, degree programs in the field include classes in mathematics, life sciences, and physical sciences. \r\n\r\n**[Nuclear Engineering](/degrees/nuclear-engineering-degree/)** \r\nStudents of nuclear engineering learn how energy released from nuclear reactions can be used in power plants, medical diagnostic equipment, and other industries. Nuclear engineering courses cover nuclear reactor theory, design, safety, and risks. \r\n\r\n**[Physics](/degrees/physics-degree/)** \r\nPhysics is a field that keeps changing as discoveries are made. This means that the field asks at least as many questions as it answers. Students of physics degree programs study matter and energy. They learn about the relationships between the measurable quantities in the universe, which include velocity, electric field, and kinetic energy. \r\n\r\n**[Robotics Engineering](/degrees/robotics-engineering-degree/)** \r\nRobotics engineering is focused on designing robots and robotic systems than can perform duties that humans are either unable or prefer not to perform.", "content_html": "

Mechanical Engineering
\nStudents of mechanical engineering learn how to research, design, develop, and test mechanical and thermal devices, including tools, sensors, engines, and machines. These devices serve many industries, including the aerospace, medical, energy, and manufacturing sectors. In addition to coursework in engineering and design, degree programs in the field include classes in mathematics, life sciences, and physical sciences.

\n

Nuclear Engineering
\nStudents of nuclear engineering learn how energy released from nuclear reactions can be used in power plants, medical diagnostic equipment, and other industries. Nuclear engineering courses cover nuclear reactor theory, design, safety, and risks.

\n

Physics
\nPhysics is a field that keeps changing as discoveries are made. This means that the field asks at least as many questions as it answers. Students of physics degree programs study matter and energy. They learn about the relationships between the measurable quantities in the universe, which include velocity, electric field, and kinetic energy.

\n

Robotics Engineering
\nRobotics engineering is focused on designing robots and robotic systems than can perform duties that humans are either unable or prefer not to perform.

", "display_order": 3, "created_at": "2019-08-29T17:56:36.587699-07:00", "updated_at": "2021-12-09T13:00:00.110056-08:00"}, {"degree_id": 319, "page": 1, "title": "Skills You’ll Learn", "summary_markdown": "Students of engineering physics develop important skills to turn innovative ideas into real-life solutions and products: \r\n\r\n- Application of theoretical and practical knowledge of mathematics, electronics, software, and physics to develop new materials, devices, and systems \r\n- Research and experiment design \r\n- Ability to move from big-picture thinking to examination of small details \r\n- Ability to work in a fast-paced environment \r\n- Design of prototypes with consideration to functionality, safety, manufacturability, and cost \r\n- Capacity to learn quickly and digest and use large amounts of technical data \r\n- Verbal and written communication \r\n- Ability to interpret and summarize information clearly and concisely \r\n- Ability to use programming languages and software", "content_markdown": "", "content_html": "", "display_order": 4, "created_at": "2019-08-29T17:56:36.590926-07:00", "updated_at": "2021-12-09T12:55:37.737656-08:00"}, {"degree_id": 319, "page": 1, "title": "What Can You Do with an Engineering Physics Degree?", "summary_markdown": "Developing modern sensors for satellites that measure the earth and the atmosphere. Designing and testing advanced medical imaging and radiation detection equipment. Working on the next generation of communications by designing wireless devices and fiber optics. Conducting research in cutting edge areas of physics. This \u2013 and more \u2013 is the work of the engineering physicist. \r\n\r\nSo many occupation areas build on engineering physics, including nuclear and particle physics, micro and nanotechnology, semiconductors and electronics, computer technologies, healthcare, fiber optics and laser design, clean energy, and applied research and development.", "content_markdown": "Below is a sampling of career possibilities for graduates of engineering physics. Some roles may require further education and/or on-the-job training. \r\n\r\n- Aerodynamics Engineer \r\n- Analog Design Engineer \r\n- Application Programmer \r\n- [Astrophysicist](//www.chevelle-parts.com/careers/astronomer/) \r\n- Automotive Engineer \r\n- [Biomedical Engineer](//www.chevelle-parts.com/careers/biomedical-engineer/) \r\n- Circuit Design Engineer \r\n- Computer Systems Engineer \r\n- Control Systems Engineer \r\n- [Data Scientist](//www.chevelle-parts.com/careers/data-scientist/) \r\n- Electrical and Electronics Research Engineer \r\n- Electro-Optics Engineer \r\n- Embedded Software Engineer \r\n- Engineering Physicist \r\n- Engineering Scientist \r\n- Full Stack Developer \r\n- Fibre-Optic [Network Designer](//www.chevelle-parts.com/careers/computer-network-architect/) \r\n- Fluid Mechanics Engineer \r\n- Machine Learning Researcher \r\n- Manufacturing Systems Engineer \r\n- [Mechanical Engineer](//www.chevelle-parts.com/careers/mechanical-engineer/) \r\n- Medical Products Designer \r\n- Microelectronics Engineer \r\n- Microprocessor Designer and Application Engineer \r\n- Microwave Systems Engineer \r\n- Nanoelectronics Research Engineer \r\n- Nuclear Design Engineer \r\n- Nuclear Physicist \r\n- Optical Development Engineer \r\n- Optical Systems Expert \r\n- Particle Accelerator Analyst \r\n- Patent Agent \r\n- Photonics Research Associate \r\n- Physics Researcher \r\n- Power Generation Engineer \r\n- Process Development Engineer \r\n- Professor / Lecturer \r\n- Quantum Computing Engineer \r\n- Research and Development Engineer \r\n- Research Scientist \r\n- [Software Engineer](//www.chevelle-parts.com/careers/software-engineer/) \r\n- Systems Engineer \r\n- Technical [Project Manager](//www.chevelle-parts.com/careers/project-manager/)", "content_html": "

Below is a sampling of career possibilities for graduates of engineering physics. Some roles may require further education and/or on-the-job training.

\n", "display_order": 5, "created_at": "2019-08-29T17:56:36.593504-07:00", "updated_at": "2021-12-09T13:03:12.707446-08:00"}], "degree_specializations": []}">

什么是工程物理学位?

工程是关于事物工作的方式。物理学是关于事物为什么以这样的方式运行的。通过将两者结合起来,工程物理学家对物理环境有了更深的理解,并将这些知识应用于解决我们不断变化的高科技世界中的问题。

工程物理专业学习工程和物理的基础和复杂性。他们学习的课程包括计算物理、微积分、代数、统计学、化学、材料强度、电学、磁学、超导、静力学、热力学和流体动力学。简而言之,他们学习如何将物理学和其他学科的见解应用到工程的许多领域。

程序选项

工程物理学士学位-四到五年的持续时间
在本科阶段,工程物理专业包括基础科学、工程科学和专业工程与科学课程。核心要求通常还包括非技术课程,旨在扩大学生对影响工程和科学工作的社会、经济和管理因素的认识。典型的课程结合了讲座、项目和实验环节。

下面是一个工程物理学士课程的截图:

  • 普通化学及实验室
  • 微积分
  • 应用线性代数
  • 工程师计算机科学与程序设计导论“,
  • 微观经济学原理
  • 工程、科学与社会
  • 《工程师信息和说服性沟通基础》
  • 电子实验仪器导论、操作与测量技术“,
  • 工程分析概论
  • 用图形来交流工程信息
  • 电路
  • 微电子学-模拟/数字电子和基础设备物理
  • 工程师软件设计与分析“,
  • 数字逻辑与设计基础“,
  • 计算机组织概论
  • 收集和分析工程数据的方法
  • 电子器件-硅半导体器件的基本物理学
  • 嵌入式和实时(RT)系统软件
  • 线性系统-使用线性技术的连续和离散信号的建模和分析
  • 连续时间线性控制系统的分析、设计和应用导论
  • 小组项目:项目设计、管理和文档
  • 工程伦理、法律与专业实践
  • 工程的业务
  • 小组项目:工程设计项目
  • 光学与激光工程应用“,
  • 微电子/集成电路制造导论
  • 应用科学的向量和复分析
  • 常微分方程导论“,
  • 机械与现代物理——基于微积分的力学概论
  • 光学,电和磁-基于微积分的电,磁和光学介绍
  • 中间力学
  • 物理实验室
  • 中间电与磁
  • 热物理
  • 理论物理方法
  • 量子力学的结构
  • 电磁波-电磁波的性质及其与物质的相互作用

工程物理硕士学位-两年学制
工程物理硕士课程是动手和实验室为基础的。他们使学生具备在工业和政府研究实验室担任领导角色所必需的故障排除和解决问题的技能,或在博士水平上进一步学习。硕士候选人通常选择一个专业。毕业论文或设计项目是毕业的最后要求。

以下是该领域一些常见专业的总结:

  • 智能系统和实验室自动化-专为有兴趣在技术环境中工作的学生设计,重点关注自动化、仪器仪表和电子分析和控制过程
  • 仪器仪表和自动化-为有兴趣发展电子、仪器仪表和自动化技能以及获得商业和工作技能的学生设计
  • 先进材料的纳米科学-专为那些对发展电子、显微镜、纳米技术和材料方面的技能以及获得商业和工作技能感兴趣的学生而设计
  • 生物医学工程-专为对光(光子学)、纳米和微器件在健康和医学中的应用感兴趣的学生而设计
  • 核工程和能源系统-专为那些对探索如何通过收集阳光或核过程来创造取之不尽的能源感兴趣的学生设计
  • 光子学工程-为对科学和工程分支感兴趣的学生设计,该分支涉及光的产生,控制和检测,为社会提供有用的应用

虽然课程根据所选专业的不同而有所不同,但大多数研究生项目要求学生完成一些核心课程,如:

  • 应用量子力学
  • 统计力学
  • 应用数学
  • 应用物理
  • 计算机科学
  • 工程
  • 生物技术

与工程物理学类似的学位

航空航天工程
航空航天工程学位课程教授在航空航天行业工作所需的分析、计算、工程和设计技能。学生学习如何将这些知识应用到民用或商用飞机、军用飞机、导弹、火箭、航天器、月球飞行器和空间站的制造、测试和监控中。

生物物理学
生物物理学应用物理学的理论和方法来理解像大脑、循环系统和免疫系统这样的生物系统是如何运作的。课程包括数学、化学、物理、工程、药理学和材料科学。

计算机软件工程
软件工程学位课程教授学生如何将工程原理应用到软件开发中。学生学习如何设计、构建、测试、实现和维护计算机操作系统,以及允许终端用户在他们的计算机、智能手机和其他电子设备上完成任务的应用程序。典型的课程包括几种编程语言、操作系统分析和网站设计。大多数项目开始于核心工程课程,如数学、化学和物理。

电气工程
电气工程专业的学生学习如何使用物理学、电子学和电磁学来设计由电力驱动或产生电力的设备。该领域的大多数学位课程都是从微积分、物理和化学等基础课程开始的。

材料科学
材料科学包括创造、测试和改进各种材料,这些材料可以用来制造不同的产品。材料工程师的工作涉及玻璃、塑料、陶瓷、金属和其他材料。

机械工程
机械工程专业的学生学习如何研究、设计、开发和测试机械和热器件,包括工具、传感器、发动机和机器。这些设备服务于许多行业,包括航空航天、医疗、能源和制造部门。除了工程和设计课程外,该领域的学位课程还包括数学、生命科学和物理科学。

核工程
核工程专业的学生学习如何将核反应释放的能量用于发电厂、医疗诊断设备和其他行业。核工程课程包括核反应堆理论、设计、安全和风险。

物理
物理学是一个随着新发现不断变化的领域。这意味着这个领域提出的问题至少和它回答的问题一样多。物理学学位课程的学生研究物质和能量。他们了解宇宙中可测量量之间的关系,包括速度、电场和动能。

机器人技术工程学
机器人工程的重点是设计机器人和机器人系统,而不是能够执行人类不能或不愿意执行的任务。

你将学到的技能

工程物理专业的学生培养将创新想法转化为现实解决方案和产品的重要技能:

  • 应用数学、电子、软件和物理的理论和实践知识来开发新材料、设备和系统
  • 研究与实验设计
  • 能够从宏观的思维转变到小细节的检查
  • 能够在快节奏的环境中工作
  • 考虑到功能性、安全性、可制造性和成本的原型设计
  • 能够快速学习,消化和使用大量的技术数据
  • 口头和书面交流
  • 能够清晰、简洁地解释和总结信息
  • 能够使用编程语言和软件

工程物理学位能做什么?

为测量地球和大气的卫星开发现代传感器。设计和测试先进的医疗成像和辐射探测设备。通过设计无线设备和光纤,致力于下一代通信。从事物理学前沿领域的研究。这——以及更多——是工程物理学家的成果。

如此多的职业领域建立在工程物理的基础上,包括核和粒子物理、微观和纳米技术、半导体和电子、计算机技术、医疗保健、光纤和激光设计、清洁能源以及应用研究和开发。

以下是工程物理专业毕业生的职业选择。有些职位可能需要进一步的教育和/或在职培训。

  • 空气动力学工程师
  • 模拟设计工程师
  • 应用程序编程人员
  • 天体物理学家
  • 汽车工程师
  • 生物医学工程师
  • 电路设计工程师
  • 计算机系统工程师
  • 控制系统工程师
  • 数据科学家
  • 电气和电子研究工程师
  • 光电工程师
  • 嵌入式软件工程师
  • 工程物理学家
  • 工程的科学家
  • 全栈开发人员
  • 光纤网络设计师
  • 流体力学工程师
  • 机器学习研究员
  • 制造系统工程师
  • 机械工程师
  • 医疗产品设计师
  • 微电子学工程师
  • 微处理器设计和应用工程师
  • 微波系统工程师
  • 纳米电子学研究工程师
  • 核设计工程师
  • 核物理学家
  • 光学开发工程师
  • 光学系统专家
  • 粒子加速器分析师
  • 专利代理人
  • 光子学助理研究员
  • 物理研究
  • 发电工程师
  • 工艺开发工程师
  • 教授/讲师
  • 量子计算工程师
  • 研发工程师
  • 研究科学家
  • 软件工程师
  • 系统工程师
  • 技术项目经理

学费

看看哪些学校最贵,哪些学校最便宜。

阅读关于学费的内容