This list contains entries that may be out of scope and need to be evaluated for removal.(July 2023) |
Engineering is the discipline and profession that applies scientific theories, mathematical methods, and empirical evidence to design, create, and analyze technological solutions, balancing technical requirements with concerns or constraints on safety, human factors, physical limits, regulations, practicality, and cost, and often at an industrial scale. In the contemporary era, engineering is generally considered to consist of the major primary branches of biomedical engineering, chemical engineering, civil engineering, electrical engineering, materials engineering and mechanical engineering. [1] There are numerous other engineering sub-disciplines and interdisciplinary subjects that may or may not be grouped with these major engineering branches.
Biomedical engineering is the application of engineering principles and design concepts to medicine and biology for healthcare applications (e.g., diagnostic or therapeutic purposes).
Subdiscipline | Engineering scope | Major specialties |
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Bioinformatics | Data science within the scope of digital tools to collect and analyze biomedical data, such as DNA | |
Bioinstrumentation | Electronics & Measurement within the scope of devices and tools that are used in the diagnosis and treatment of disease, often overlapping with biotechnology | |
Biomaterials | Materials science related to interfacing materials with or within the body | |
Biomechanics | Mechanical systems involving kinematics, material deformation, artificial organs, transport of chemical substances across biological membranes, and flow related to biological substances inside and outside the body | |
Biomolecular engineering | Biological systems | |
Clinical engineering | Healthcare systems within the scope of hospital-related functions, including data management, instruments, and monitoring systems | |
Medical imaging | Visualization systems for biological systems, such as MRI, EEG, PET, and CT | |
Neural engineering | Brain–computer interface related to recording and processing signals from brain activity for diagnostic and therapeutic purposes, often with the goal of replacing/restoring lost sensorimotor abilities | |
Pharmaceutical engineering | Process architecture within the scope of pharmaceuticals and drug delivery | |
Regenerative medicine | Tissue systems | |
Chemical engineering is the application of chemical, physical, and biological sciences to developing technological solutions from raw materials or chemicals.
Subdiscipline | Engineering scope | Major specialties |
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Electrochemical engineering | Large-scale electrosynthesis of chemicals, electrowinning and chemical energy storage | |
Explosives engineering | ||
Molecular engineering | Chemical behavior and interactions at a molecular level |
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Process engineering | Chemical processes at an industrial level |
Civil engineering comprises the design, construction, and maintenance of the physical and natural built environments.
Subdiscipline | Engineering scope | Major specialties |
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Civionics | The integration of sensors into structures to monitor structural health | |
Environmental engineering | Applications of environmental science |
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Geotechnical engineering | The behavior of earth materials and soil and rock mechanics, often in preparation of a project site |
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Municipal or urban engineering | The coordination and management of municipal infrastructure networks | |
Structural engineering | Structures that support or resist structural loads. |
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Transport engineering | Facilities and infrastructure for any form of transportation of people and cargo |
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Water resources engineering | Technical application of hydrology |
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Electrical engineering comprises the study and application of electricity, electronics and electromagnetism.
Subdiscipline | Engineering scope | Major specialties |
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Broadcast engineering | Radio and television broadcasting |
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Computer engineering | Electronic computing devices |
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Electronic engineering | Low-power electrical circuits using of active components such as semiconductor devices |
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Microwave engineering | Devices operating at microwave frequencies | |
Optical engineering | Technologies that utilize light | |
Power engineering | Generation and distribution of electric power |
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Materials engineering is the application of material science and engineering principles to understand the properties of materials. Material science emerged in the mid-20th century, grouping together fields which had previously been considered unrelated. Materials engineering is thus much more interdisciplinary than the other major engineering branches.
Subdiscipline | Engineering scope | Major specialties |
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Biomaterial | Materials implanted in the body | |
Ceramic engineering | Inorganic, non-metallic materials | |
Composite material engineering | Composite materials, materials with two or more macroscopic phases | |
Computational materials science | The use of modeling, simulation, theory, and informatics to understand materials |
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Corrosion engineering | Management and measurement of corrosion | |
Electronic materials | Semiconductors and other electronic materials | |
Forensic materials engineering | Analysis of material evidence to identify materials, determine the cause of failure, or reconstruct a crime or accident | |
Material characterisation | Methods of investigating material structure and properties | |
Metallurgical engineering | Metals including alloys, typically excluding polymer or ceramics |
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Nanotechnology | Nanoscale materials, dimensions less than 100 nm |
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Polymer engineering | Polymer materials | |
Surface engineering | Surfaces of solid materials |
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Mechanical engineering comprises the design and analysis of heat and mechanical power for the operation of machines and mechanical systems. [3]
Subdiscipline | Engineering scope | Major specialties |
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Acoustical engineering | Analysis and control of vibration and sound |
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Energy engineering | Energy systems, with an emphasis on efficiency and sustainability | |
Industrial plant engineering | Industrial machines and equipment [4] [ better source needed ] | |
Manufacturing engineering | Technologies, practices and systems for manufacturing | |
Optomechanical engineering | Mechanical aspects of optical systems [5] | |
Power plant engineering | Field of engineering that designs, constructs, and maintains different types of power plants. Serves as the prime mover to produce electricity. |
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Sports engineering | Sports equipment | |
Thermal engineering | Heating or cooling of processes, equipment, and enclosed environments | |
Vehicle engineering | Systems and equipment that propel and control vehicles | |
Discipline | Engineering scope | Major specialties |
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Agricultural engineering | Farm power and machinery, biological material processes, bioenergy, farm structures, and agricultural natural resources. |
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Applied engineering | Systems integration, manufacturing and management. [6] |
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Biological engineering | The application of principles of biology and the tools of engineering to create usable, tangible, economically viable products. |
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Building services engineering | The design, installation, operation, and monitoring of the technical services in buildings in order to ensure a safe, comfortable, and environmentally friendly operation. |
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Electromechanics | Interaction of electrical and mechanical systems, e.g.: alternating-current electrical generators and motors | |
Energy engineering | Energy efficiency, energy services, facility management, plant engineering, environmental compliance, and energy production. Energy efficiency of buildings and manufacturing processes, employing advances in lighting, insulation, and heating/cooling properties. |
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Facilities engineering | Conditions of indoor environments |
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Geological engineering | Technical application of geology, often in support of a civil, mining, or environmental engineering project |
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Geomatics engineering | The design, development, and operation of systems for collecting and analyzing spatial information about the land, the oceans, natural resources, and manmade features. | |
Information engineering | Generation, distribution, analysis, and use of information, data and knowledge in systems. | |
Industrial engineering | Integration, management and optimization of complex systems of people, information, resources and technology |
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Mechatronics engineering | Automation and robotics |
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Military engineering | Fortifications, military transport routes and communication lines | |
Mining engineering | An engineering discipline that involves the science, technology, and practice of extracting and processing minerals from a naturally occurring environment. | |
Quantum engineering | The application of quantum theory to the design of materials and devices. Now gaining recognition as its own branch of engineering, but more traditionally associated with sub-disciplines of electrical and computer engineering, communications engineering, solid-state and semiconductor materials engineering, optical engineering, and engineering physics. |
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Nuclear engineering | Terrestrial and marine nuclear power plants |
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Petroleum engineering | A field of engineering concerned with the activities related to the production of Hydrocarbons, which can be either crude oil or natural gas. Petroleum engineers focus on studying subsurface formation properties and design and selection of equipment to maximize economic recovery of hydrocarbons from subsurface reservoirs. Petroleum geology and geophysics focus on the provision of a static description of the hydrocarbon reservoir rock, while petroleum engineering focuses on estimation of the recoverable volume of this resource using a detailed understanding of the physical behavior of oil, water, and gas within porous rock at very high pressure. |
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Project engineering | Project engineering includes all parts of the design of manufacturing or processing facilities, either new or modifications to and expansions of existing facilities. A "project" consists of a coordinated series of activities or tasks performed by engineers and designers. A small project may be under the direction of a project engineer. Large projects are typically under the direction of a project manager or management team. Project tasks typically consist of such things as performing calculations, writing specifications, preparing bids, reviewing equipment proposals and evaluating or selecting equipment, and developing and maintaining various lists (equipment and materials lists) and drawings (electrical, instrument, and piping schematics, physical layouts and other drawings used in construction). Some facilities have in-house staff to handle small projects, while some major companies have a department that does internal project engineering. Large projects are typically contracted out to project engineering companies. Staffing at engineering companies varies according to the workload and duration of employment may only last until an individual's tasks are completed. | |
Software engineering | Software engineering the application of a systematic, disciplined, quantifiable approach to the development, operation, and maintenance of software and the study of these approaches; that is, the application of engineering and computer science to software. |
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Supply chain engineering | Supply chain engineering concerns the planning, design, and operation of supply chains. [7] [8] | |
Systems engineering | Systems engineering is an interdisciplinary field of engineering that focuses on how to design and manage complex engineering projects over their life cycles. Issues, such as reliability, logistics and coordination of different teams, evaluation measurement, and other disciplines become more difficult when dealing with large or complex projects. |
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Textile engineering | Textile engineering courses deal with the application of scientific and engineering principles to the design and control of all aspects of fiber, textile, and apparel processes, products, and machinery. These include natural and man-made materials, interaction of materials with machines, safety and health, energy conservation, and waste and pollution control. Additionally, students are given experience in plant design and layout, machine and wet process design and improvement, and designing and creating textile products. Throughout the textile engineering curriculum, students take classes from other engineering disciplines including mechanical, chemical, materials, and industrial engineering. | |
Cybersecurity Engineering | Cybersecurity engineers identify threats and vulnerabilities in computer systems and software. These professionals are experts who implement secure network solutions to protect organizations' networks and data systems from hackers, cyberattacks and other forms of computer crime. |
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Biomedical engineering (BME) or medical engineering is the application of engineering principles and design concepts to medicine and biology for healthcare applications. BME is also traditionally logical sciences to advance health care treatment, including diagnosis, monitoring, and therapy. Also included under the scope of a biomedical engineer is the management of current medical equipment in hospitals while adhering to relevant industry standards. This involves procurement, routine testing, preventive maintenance, and making equipment recommendations, a role also known as a Biomedical Equipment Technician (BMET) or as a clinical engineer.
Engineering is the practice of using natural science, mathematics, and the engineering design process to solve technical problems, increase efficiency and productivity, and improve systems. Modern engineering comprises many subfields which include designing and improving infrastructure, machinery, vehicles, electronics, materials, and energy systems.
The following outline is provided as an overview of and topical guide to engineering:
Mechanical engineering is the study of physical machines that may involve force and movement. It is an engineering branch that combines engineering physics and mathematics principles with materials science, to design, analyze, manufacture, and maintain mechanical systems. It is one of the oldest and broadest of the engineering branches.
Physical science is a branch of natural science that studies non-living systems, in contrast to life science. It in turn has many branches, each referred to as a "physical science", together is called the "physical sciences".
A Bachelor of Engineering or Bachelor of Science in Engineering (BSE) is an undergraduate academic degree awarded to a college graduate majoring in an engineering discipline at a higher education institution.
Łódź University of Technology was created in 1945 and has developed into one of the biggest technical universities in Poland. Originally located in an old factory building, today it covers nearly 200,000 sq. meters in over 70 separate buildings, the majority of which are situated in the main University area. As of 2018, around 15,000 students studied at the university. The educational and scientific tasks of the university are carried out by about 3,000 staff members.
The following outline is provided as an overview of and topical guide to electrical engineering.
The School of Engineering and Applied Science (SEAS) at the George Washington University in Washington, D.C. is a technical school which specializes in engineering, technology, communications, and transportation. The school is located on the main campus of the George Washington University and offers both undergraduate and graduate programs.
Biological engineering or bioengineering is the application of principles of biology and the tools of engineering to create usable, tangible, economically viable products. Biological engineering employs knowledge and expertise from a number of pure and applied sciences, such as mass and heat transfer, kinetics, biocatalysts, biomechanics, bioinformatics, separation and purification processes, bioreactor design, surface science, fluid mechanics, thermodynamics, and polymer science. It is used in the design of medical devices, diagnostic equipment, biocompatible materials, renewable energy, ecological engineering, agricultural engineering, process engineering and catalysis, and other areas that improve the living standards of societies.
The Association of Technology, Management and Applied Engineering (ATMAE) is an association in the United States. ATMAE sets standards for academic program accreditation, personal certification and professional development for educators and industry professionals involved in integrating technology, leadership and design.
The following outline is provided as an overview of and topical guide to technology:
Industrial technology is the use of engineering and manufacturing technology to make production faster, simpler, and more efficient. The industrial technology field employs creative and technically proficient individuals who can help a company achieve efficient and profitable productivity.
The following outline is provided as an overview of and topical guide to automation:
The Technische Universität Ilmenau is a German public research university located in Ilmenau, Thuringia, central Germany. Founded in 1894, it has five academic departments (faculties) with about 4,900 students. Teaching and research are focused on the fields of technology, mathematics and natural sciences, business and media.
Industrial engineering is an engineering profession that is concerned with the optimization of complex processes, systems, or organizations by developing, improving and implementing integrated systems of people, money, knowledge, information and equipment. Industrial engineering is central to manufacturing operations.
The following outline is provided as an overview of and topical guide to natural science:
The following outline is provided as an overview of and topical guide to applied science:
Instrumentation and control engineering (ICE) is a branch of engineering that studies the measurement and control of process variables, and the design and implementation of systems that incorporate them. Process variables include pressure, temperature, humidity, flow, pH, force and speed.
Industrial and production engineering (IPE) is an interdisciplinary engineering discipline that includes manufacturing technology, engineering sciences, management science, and optimization of complex processes, systems, or organizations. It is concerned with the understanding and application of engineering procedures in manufacturing processes and production methods. Industrial engineering dates back all the way to the industrial revolution, initiated in 1700s by Sir Adam Smith, Henry Ford, Eli Whitney, Frank Gilbreth and Lilian Gilbreth, Henry Gantt, F.W. Taylor, etc. After the 1970s, industrial and production engineering developed worldwide and started to widely use automation and robotics. Industrial and production engineering includes three areas: Mechanical engineering, industrial engineering, and management science.