Pennsylvania State University-Penn State Wilkes-Barre · Courses
GEOSC
66 courses with the subject GEOSC, each shown exactly as we captured it from the college's catalog, with every element we hold. Where the wording looks broken, that is our reading of the catalog, not the college's text.
GEOSC 107NRocks, Minerals, and the History of Art3
This online course investigates select rocks and minerals used in the production of art between the Prehistoric Era and the Early Modern period. Topics covered include chemical and physical properties, occurrence in nature, the processes by which natural materials are acquired and worked, their symbolic and monetary value, and specific works of art in which they are found. Each material (ochre, garnet, lapis lazuli, rock crystal [quartz], igneous rocks [basalt, diorite and porphyry], alabaster and marble) is addressed in a 2-week unit. The seven units are split equally between scientific analysis of the materials and art historical case studies. A final project integrates Geosciences and Art History topics to investigate the use of a chosen natural material in a specific work of art. Each material addressed in the course plays a crucial role in the history of art, and each one was particularly prized for its physical and material properties (color, hardness, etc.). Ochre was the first known pigment, and was in use by early humans for bodily adornment and for drawing and painting in caves and shelters as early as 100,000 years ago for bodily adornment and 40,0000 years ago in cave art. Its availability worldwide and in multiple strong colors made it a desirable choice. Lapis lazuli, by contrast, was difficult to obtain, and difficult to refine as a pigment. It was first used to make small sculptures and cylinder seals in the Ancient world, and was prized for its brilliant blue color. The difficulty in grinding and purifying blue pigment from lapis lazuli made it one of the most expensive pigments in the Medieval and Renaissance world--it was worth its weight in silver! Pure blue lapis pigment, when found in a painting, is always a sign of great expense and importance. Rock crystal was valued for its clarity and purity, and its extreme brittleness meant that works made from it were valued for their intricacy and fragility. Nero reportedly destroyed two elaborate crystal goblets in a rage, and in so doing, deprived future generations of masterpieces of the sculptor's art. In the Ancient Near East and Ancient Egypt, rock crystal was frequently used for amulets and other magical objects, while in the Medieval world, its purity was seen as a metaphor for the Virgin Mary. Garnet had a similar symbolic value in the Middle Ages: its red color was related to the blood of Christ, and it was thus used frequently in liturgical vessels. In the Ancient world, the rich red tone of garnets was prized in jewelry and in small-scale relief carvings. Igneous stones like porphyry, basalt and diorite were particularly prized for their extreme hardness and permanence, and thus the Law Code of Hammurabi was iinscribed on basalt to ensure its permanence. Other Ancient Near Eastern rulers had images of themselves made from basalt and diorite in order to ensure that those works would survive for centuries. Imperial porphyry, an igneous stone with a rich red-purple color, came from a single remote quarry in the Egyptian mountains. Its use was reserved just for the Imperial family in Rome, and it was used for carved sarcophagi, for columns, for colored veneers on floors and walls, etc., as a sign of Imperial authority. Marble is of course one of the most familiar of all art materials, used frequently for sculpture from the very beginnings of art production. The Greeks and Romans in particular took great pains to obtain different types of marbles with specific colors, veining patterns, etc., for use in both sculpture and architecture. Finally, alabaster is one of the easiest of all stones to work: it is so soft that one can make a mark simply with a fingernail! Its intricate banding and translucency made it a favorite material for thin-walled bowls and vases in the Ancient Near East, Ancient Egypt, and in the Classical world. Later, in Early Christian and Medieval Italy, it was used for windows instead of glass--sun shining through alabaster casts a golden glow into a church interior. By the Late Gothic period, alabaster was being exploited as an easily sculpted material throughout Europe, with major quarries and workshops in England (Nottingham), France, and Northern Spain.
Introduction to earthquakes and seismology, and their relationship to society, including monitoring for nuclear weapons and seismic hazards. GEOSC 109H
From Biblical times to the present, gems and precious metals have served as the standard by which empires have measured their worth. Through the ingenious marketing of an international cartel, diamonds have become identified with the oldest and most sacred of human contracts. To what can we attribute the unique allure of beautiful minerals? In this course, students will learn the underlying science of what distinguishes a gemstone from dross. A broad historical introduction will trace the social role that gemstones have played in human history over tens of thousands of years. After a review of the properties of atoms, they will learn the connections between atomic bonds and the physical hardness that has preserved diamonds and other gems against billions of years of abrasive forces. Students also will engage in directed discussions of ethical issues raised by gem materials: Why are gems so costly? Is it moral to purchase an expensive gemstone? What ethical hazards do synthetic gems pose? In addition, the course will explain the surprisingly simple physical processes that account for the magnificent optical properties of gemstones. Students will understand in a quantitative way how the bending of light (refraction) within a gem produces its sparkle: how variation in refraction generates fire (dispersion); how the interference of light rays from periodic structures in some rare gems like opal can yield colors that change with viewing angle (diffraction); and how vanishingly small traces of impurity atoms can generate the deep coloration of rubies, sapphires, and emeralds. In addition, students will learn about the atomic symmetries that govern the physical character of gemstones and allow modern mineralogists to distinguish imposters from real gems.
Elements of crystallography and crystal chemistry; origin, occurrence, and identification of sedimentary, igneous, and metamorphic rocks and their minerals. This course has one or more required field trips for which a fee is charged to the student.
An in-depth examination of various physical processes that operate within and at the surface of the earth. GEOSC 203 Physical Processes in Geology applies basic principles from physics and mathematics to explore and understand the Earth and the processes that operate within the Earth and at the Earth's surface. The course includes the study of Earth's gravity and magnetic fields, focusing on how they reveal the internal structures and dynamics related to plate tectonics. The basic physics and mathematics of plate motions are also explored in some detail. We will also examine the elastic properties and behaviors of rocks, which form the basis for understanding seismic waves, rock fracture, and fault slip. The next major topic of the class is the flow of heat through the solid Earth system, involving the study of conduction, convection, and advection. The study of heat will provide the basis for understanding the application of simple differential equations with boundary conditions to geological processes; this will also introduce the mathematics of diffusion, which will permeate much of the course. This study of diffusion will enable us to move from steady state conditions to non-steady state conditions that typify most geological settings. We will examine the fluid dynamics relevant to the flow of the mantle and less viscous fluids at the surface such as lava flows and glaciers. The fluid dynamics will also lead us into an exploration of the basic physics of ocean circulation, stream flow, and erosion on land. Throughout the course, students will learn how to use calculus and very simple computer programming in MATLAB to provide a quantitative framework for understanding the physical processes that shape the Earth. The class involves a weekly lab that involves several field trips to make measurements using a variety of geophysical instruments to solve problems related to gravity, stream flow, and heat flow. Other lab activities involve studies of rock friction and fracture, ocean currents, glacial flow, seismology, and plate motions.
Modern geoscience careers require students to be versatile in managing and analyzing data, solving quantitative problems, comfortable in statistical analysis and projection, and adept in presenting numerical interpretations to stakeholders. The proposed course will provide students with the numerical skills to be successful in their undergraduate careers and in the workplace and will serve as entry for more advanced quantitative courses in Geosciences and the College of Earth and Mineral Sciences. The course has five major objectives: (1) To give students an overview of the different types of geoscience data and the skills to organize, manipulate and structure them appropriately for conducting simple analyses including regression, import/export, conditional subsetting, creating and using database structures and design, queries, and metadata; (2) To train students in the fundamentals of a widely used programming language (e.g., Python, Matlab), including variables, functions, loops, boolean logic, and arrays; (3) To teach students how to use programming skills to conduct a range of basic numerical and statistical analyses; (4) To show students how to integrate and analyze several related datasets in solving complex geoscience problems; and (5) To train students how to summarize and present data in an effective manner, including appropriate data visualizations, and to communicate interpretations to stakeholders. Instruction will consist of demonstrations followed by hands-on activities in which students learn skills on laptops. Assessment will include these activities and follow-on homework problems. In addition, students will conduct a capstone project in the last few weeks of the course in which they integrate several data sets to interpret a complex geoscience problem. The course map is designed to reinforce key concepts and skills through scaffolding: Unit 2 applies the principles of geoscience data and data analysis introduced in Unit 1 in a basic programming environment. Unit 3 reinforces the programming concepts from Unit 2 while developing more advanced data analytics skills. Unit 4 applies and synthesizes the concepts and skills covered in the previous three units in the completion of a capstone project.
A natural disaster is the result of a natural hazard impinging upon human society. In this course we examine seismicity as a geophysical phenomenon and as a natural hazard that interacts with the built environment and the social structures of human societies. Whenever possible, we approach this subject historically. Among other topics, we examine the history of how earthquakes have been understood as well as the impact of earthquakes and seismicity on the history and development of certain societies. Our specific perspectives include: Earthquakes as understood by modern and contemporary earth science Major conceptions of earthquakes in the past Impacts of seismic hazards on the built environment of past societies Impacts of seismic hazards on politics, economic development and social policies of past societies Seismic hazards, earthquake-related technology, and contemporary societies By examining earthquakes in these ways, the study of earthquakes becomes a vehicle for enhancing skills in analytical reasoning. In particular, this course focusses on applications of modern scientific analysis and the approaches commonly employed in historical investigation. Specific skills addressed in this course include, processing and quantifying information, problem solving using evidence and sound reasoning, and expressing ideas with clarity. Immersion in the study of earthquakes affords an opportunity to think more broadly about how people have dealt with natural disasters in the past and to explore the roles that science, technology, and social policy play in defining and addressing natural hazards in contemporary societies and in the future. Class meetings include lectures, discussions, and in-class activities. We analyze scientific observations that have led to increased understanding of earthquakes, earthquake hazards and risk. We also make extensive use of case studies as concrete examples of different types of earthquakes, the historical evolution of ideas about earthquakes, and the range of social impacts of earthquakes. Reading assignments provide essential background for class sessions.
Plate Tectonics plays a primary role in virtually all geologic/tectonic processes, and is the foundation for most disciplines within geosciences. This course will cover plate tectonic topics in depth and will explore the processes that link plate tectonics to the geologic record. The course has two overarching goals: (1) Develop an improved understanding of the Plate Tectonic framework for use in their other geosciences studies, and (2) exploit its broad application across the geosciences to further develop student skills in scientific reasoning, data analysis, science communication, and integrating knowledge across earth science sub-disciplines. Since the development and acceptance of plate tectonic theory in the earth sciences is relatively recent (since - 1970's), students will also be exposed to how science thinking evolves with the addition of new data and new hypotheses. It will combine lectures, labs, case studies, and discussions to address fundamental questions in plate tectonics.
Biogeochemistry is the exploration of the physical, chemical, and biological processes that govern the exchange of energy and elements between the biosphere and geosphere. This course will examine principal biogeochemical cycles (e.g., C, O, S, N, P,) with a focus on geologic processes and geologic origins. Drawing from the primary literature, we will investigate how biogeochemical cycling has changed over Earth's history and as a result of human activities.
Origin of earth and earth materials; natural resources, geologic barriers and hazards, and relationships to human use of the environment. (This course includes from one to several field trips for which an additional charge will be made to cover transportation.)
The principles of stratigraphy and paleontology and their use, in combination with plate tectonics, in reconstructing the earth's history. This course has one or more required field trips for which a fee is charged to the student.
Physical and chemical processes operating at the earth's surface and their resulting landforms. This course has one or more required field trips for which a fee is charged to the student.
This course will discuss past climate dynamics, as well as touch on what we know about ancient environments, human interactions and responses to changing climates, and methodological developments within the field. We will emphasize topics that span the Earth system (atmosphere-biospheregeosphere-oceans) and use the paleoclimate record to inform future global change. We will also think about what a proxy and archive mean for a signal being recorded and use real data to extract and interpret past climate signals. The first 2/3 of the semester will be a combination of paired lectures and student-led discussion of foundational and recent exciting scientific literature around topics that help us explore what drives climate change over different timescales. The last 1/3 of the semester will allow students to work with real paleoclimate data by exploring existing datasets that inform their own research or interests and applying statistical techniques common in the field. Student participation is important for success in this course, and paleoclimate datasets will serve as the basis for a capstone project.
This course explores the intersection of entrepreneurship and geoscience, focusing on emerging fields and the changing dynamics of traditional industries. Targeted at upper-level undergraduate and graduate students of all majors, the course aims to equip participants with entrepreneurial skills and a mindset that goes beyond starting new companies. By incorporating case studies, guest lectures, and practical exercises, and student led-research, students will gain a comprehensive understanding of the entrepreneurial opportunities within geoscience. The course may cover a range of topics, including critical minerals, geothermal energy, carbon sequestration, and geological hydrogen, which are becoming increasingly important to society. Students will explore the geoscience principles, technological innovations, market dynamics, policy considerations, and environmental impacts associated with these fields. Additionally, the course emphasizes the value of entrepreneurial thinking for researchers and employees within legacy companies, such as the hydrocarbon industry, encouraging them to embrace intrapreneurship and drive innovation. Throughout the course, students will develop essential entrepreneurial skills, including opportunity identification, market analysis, business planning, financing strategies, and ethical considerations. They will also learn about collaboration, networking, and leadership within the entrepreneurial ecosystem. By the end of the course, students will be equipped with the knowledge and mindset to navigate emerging fields, adapt to shifting landscapes, and create value in geoscience-related ventures, whether as entrepreneurs or intrapreneurs and researchers.
Case studies of the causes and consequences of natural disasters; analysis of disaster impact in different economic, cultural, and social conditions. GEOSC 402 Natural Disasters (3) (IL)(WAC) Is anywhere safe from natural disasters? Can we hide, or should we learn to live with the hazards around us? This course will explore the causes, effects, and societal response to disasters. By learning from previous disasters, we can develop strategies to avert the disasters or at a minimum mitigate their affects. We will look at a variety of natural hazards and related disasters including flooding, volcanoes, landslides, earthquakes, hurricanes, and tsunami. By the sue of case studies of recent occurences of natural disasters, we will determine how damaging disasters can be, and what we can do to minmimize their impact on society. This course will provide an in-depth, hands-on study of natural hazards, their geography, and their impact on societies worldwide. We will focus on both the physical processes (e.g. underlying geoglogy or geophysics) of selected natural hazards and the humn systems that have developed to minimize the impact of natural disasters.The course will place emphasis on active learning exercises to investigate processes and responses to natural hazards. We will meet for two periods each week which will include both lecture and group research activities (approximately 30% of time is in lectures, 70% time is in group research activities). Grading will be based on reports for each topic, a disaster diary, and a term report. The term report is an independent project which focuses on a selected city facing significant natural hazards. Cities will be selected from both the developed and developing world to allow comparsions of the impacts of natural disasters under different socio-economic and cultural conditions.The course is offered once each year with a target enrollment of 25-30 students.Prerequisites for the course are at least 6 credits in science courses (inluding GN courses).
Soil and water interactions across scales, integrated studies of landscape- soil-water relationships, fundamental processes of water flow and chemical transport. SOILS (GEOSC) 405 Hydropedology (3)Hydropedology is the study of the fluxes, storages, pathways, residence times, and spatio-temporal organization of water in the root and deep vadose zones, and their relations to climate, ecosystem, land use, and contaminant fate. The aim is to characterize integrated physical, chemical, and biological processes of soil-water interactions across scales (including chemicals and energy transported by water flow). This course embraces interdisciplinary and multiscale studies of interactive pedological and hydrological processes in the earth's surface and subsurface environments. The course will address the fundamental issues and practical applications of hydropedology (as a sister discipline of hydrogeology). This course emphasizesin situsoils that have distinct characteristics of pedogenic features, structures, layers, and soil-landscape relationships in the real world. Students will gain an in-depth understanding of soil and water interactions across scales from point observations to watershed phenomena, and will gain skills in predicting flow pathways and water fluxes in the landscape. This course promotes active learning, critical thinking, and hands-on skills. Course format will consist of two lectures and one laboratory/field exercise each week. The course will utilize a network of local watersheds with different land uses for demonstrations and class projects. Grading will be based on weekly lab/field exercise (20%), class research project (40%), homework (10%), one midterm exams (15%), and one final exam (15%). Since hydropedology is linked to a wide array of environmental, ecological, geological, agricultural, and natural resource issues of societal importance, SOILS (GEOSC) 405 will support interdisciplinary training of students in Soil Science as well as in other disciplines of the College of Agricultural Sciences, especially Agricultural and Biological Engineering, Agronomy, and Forest Resources. Students in the College of Earth and Mineral Sciences, College of Engineering, Eberly College of Science, and the Intercollege Graduate Degree Program in Ecology also will find this course useful when undertaking research on the vadose zone, the hydrologic cycle, and the earth system.
GEOSC 413WTechniques in Environmental Geochemistry3
This course teaches techniques needed for the collection, chemical analysis, and data analysis of environmental geochemical measurements. This course has one or more required field trips for which a fee is charged to the student.
Carbonate minerals that form in lakes, soils, and oceans help us understand the chemistry and biology of their environment. In this course, we build a foundation of carbonate equilibrium chemistry as a framework for discussions of carbonate-forming environments, the impacts of chemical, thermal, and biological processes on the carbonate rock record, and carbonate-based proxies for ancient Earth conditions.
Introduction to chemical constituents and processes occurring in soils. Topics include mineral weathering, soil solution chemistry and adsorption of solutes. GEOSC 418GEOSC 418 (SOILS 419) Soil Environmental Chemistry (3) Upon completion of the course, the students will be able to identify the soil components and properties responsible for the chemical reactivity of soils and will know the fundamental chemical processes that occur in soils. The students will also be able to link theoretical concepts to real life environmental problems. The students will be evaluated on examinations, homework, and class participation. GEOSC 418 (SOILS 419) is offered every Spring semester. Class limit: 25 students.
GEOSC 419The Organic Geochemistry of Natural Waters and Sediments3
Composition, sources, and fates of particulate and dissolved organic matter in natural environments; biogeochemical processes; organic geochemistry of anthropogenic contaminants.
Classification, morphology, phylogeny, and stratigraphic occurrence of fossil plants; practicum includes field trips and study of paleobotanical techniques and specimens. GEOSC 420 BIOL (GEOSC) 420 Paleobotany (3) Land plants provide the oxygen, food, and forest structure that make our lives on land possible. They are sensitive indicators of global change in the past as well as today. This course will examine the history of green plants on the dynamic Earth from their beginnings in the Proterozoic oceans to today, with emphasis on central topics such as the colonization of land, the histories and relationships of major plant groups, the evolution of seeds and flowers, the evolution of plant-animal interactions, extinction and diversification, paleoclimates, and the origins of modern biomes such as rainforests and grasslands.This course is strongly recommended to graduate students and advanced undergraduates with interests in paleobiology and/or plant biology. Specimen observation and field trips will be important course components. Exams, assignments, and class participation will be the primary bases of evaluation.
Concepts and procedures using fossils to solve problems in systematics, evolution, biostratigraphy, correlation, sedimentation, paleoecology, and global change.
The goal of this class is to learn how to function as a geoscientist engaged in the relentless pursuit of knowledge. This course aims to benefit students in professional development, preparation for advanced courses, and senior thesis research and writing. The most important topic is peer-reviewed scientific literature, the currency of science. Recognizing, accessing, databasing, annotating, writing about, summarizing, critically discussing, and correctly citing peer-reviewed papers are the principal activities. There will be regular assigned activities involving much reading, writing, presenting, and discussion. Other topics will include professionalism, gathering data, how to handle specimens and data, publishing, talking to the media, what graduate programs are looking for and how to approach them, and participation in scientific meetings. There will be a major final paper due during exam week (and no exams). This will be a review article written in the style of a top review journal series such as Annual Reviews. For grading, simply, the strongest possible participation, enthusiasm, completeness, and quality of work is expected at all times, and the professor's perception of this is what the grade will be based on, with a heavy weighting from the term paper. Students will receive comments and other feedback all the way through that will make it clear how they are progressing, and the term paper will receive a formal grade.
An introduction to the description and genesis of sedimentary rock bodies, the determination of their stratal geometries, and their correlation. (This course includes from one to several field trips for which an additional charge will be made to cover transportation.)
An introduction to Matlab: m-file development, descriptive statistics, bootstrapping, Fourier transforms, regression, interpolation, least-squares, differentiation, integration, differential equations, signal analysis, graphics. GEOSC 444 Matlab Application for Geoscience (2)The goal of this class is that students become familiar with Matlab so that they can conduct scientific research without needing to manipulate spreadsheets or other non-mathematically based software. The course is geared towards, beginning graduate and advanced undergraduate students with little or no previous Matlab experience, and examples are focused on applications in the science and engineering with a focus on the geosciences, including problems from groundwater hydrology, tectonics, geochemistry, rock physics, and climate change. Some basic concepts about vectors and matrices will be helpful, but are not required.
An introduction to concepts and methods of quantitative risk anlaysis with focus on water, climate, and energy related risks. GEOSC 450 Risk Analysis in the Earth Sciences is an introduction to concepts and methods of quantitative risk analysis in the Earth system. Key concepts include probability, impacts, risk, uncertainty, statistical estimation, and decision-making under uncertainty. Important methods to be covered are sensitivity studies, probabilistic prediction, and uncertainty analysis. Examples of risks to be analyzed include: drought, flooding, nuclear waste storage, and anthropogenic climate change. Students will also use simple risk analysis software (provided by the instructor and accessible without prior programming experience) to actively apply these concepts to example problems. The course is designed for advanced undergraduate students with a prior exposure to basic statistics and calculus.
GEOSC 451Natural Resources: Origins, Economics and Environmental Impact3
Geologic, economic and environmental issues related to exploitation of non-renewable natural resources (metals, minerals, rocks, and fossil fuels). GEOSC 451GEOSC 451 Natural Resources: Origins, Economics and Environmental Impact (3) All the materials needed for health and prosperity in our complex society come from the earth, such as water, iron and other metals to make steel, silica to make glass, limestone to make concrete, potash and phosphate to make fertilizers, and oil, natural gas, coal and uranium to generate heat and electricity. Most of these natural resources are non-renewable, and easily recoverable quantities are limited. The main purpose of this course is to increase understanding and appreciation of geological, economical and environmental aspects of exploitation of mineral and energy resources. Approximately two-thirds of the lectures/discussions will focus on geological, geochemical and biological processes that have governed the concentration and dispersion of economically important elements and natural materials on Earth, including water, heavy metals (aluminum, iron, copper, zinc, lead, etc.), precious metals (gold, silver, platinum, etc.), industrial minerals and rocks (clays, limestone, gypsum, salts, etc.), nuclear-energy sources (uranium and thorium) and fossil fuels (petroleum, natural gas and coal). The remaining one-third of the lectures/discussions will focus on: (i) exploration methods to discover new mineral (and fossil fuel) deposits; (ii) economic aspect of mineral commodities (usages, production statistics, economic of mining and concentration); and (iii) environmental issues related to mining, nuclear waste disposal, and constructions. There will be two half-day field trips to study the nature of sulfide mineralization and acid-water pollution.
Hydrologic cycle: occurrence, movement, quality, and quantity of groundwater; solute transport; quantitative hydrogeologic methods; role of water in geologic processes. This course has one or more required field trips for which a fee may be charged to the student. GEOSC 452GEOSC 452 Hydrogeology (3) GEOSC 452 is the study of the relation between geological and hydrological processes in the earth's surface and subsurface environments. The course will address the fundamental issues and practical applications of natural flow systems, emphasizing the occurrence, movement, quality, and quantity of groundwater and its relations to contaminate fate and transport. The primary objective is to provide students with the fundamental knowledge and tools that are necessary to understand the hydrologic cycle. Students will gain an in-depth understanding of fluid flow across scales from point observations to watershed phenomena, and will gain skills in using mathematics to describe water fluxes. The course format consists of two lectures each week, and includes two field trips. Grading is based on weekly homework assignments, exams, and participation on the field trips. Because hydrogeology is linked to a wide array of environmental, ecological, engineering, and natural resource issues of societal importance, GEOSC 452 will support interdisciplinary training of students in the natural sciences and engineering. Students will find this course useful when undertaking research about fluids in geologic processes.
Properties, origin, migration, and occurrence of oil and gas. This course has one or more required field trips for which a fee is charged to the student.
GEOSC 460Principles of Igneous and Metamorphic Petrology3
Igneous and metamorphic processes drive planetary evolution. This course is designed to provide an understanding of the formative processes of igneous and metamorphic rocks through application of simple physical and chemical processes. Through a combination of petrographical observations and applied thermodynamics, students will learn how to treat rocks as chemical systems and, in doing so, equip themselves with a skillset that is of tremendous utility in industry and academia.
Effects and mechanics of deformation of the earth's crust; practicum includes field trips and studies of maps and structural problems. This course has one or more field trips for which a fee is charged to the student.
Field interpretation of geologic features; principles and techniques of geologic mapping; interpretation of geologic maps and diagrams. This course has one or more required field trips for which a fee is charged to the student.
GEOSC 472AField Geology I: Geoscience Field Methods2
Investigation of geologic systems requires wrestling with the complexity of real-world landscapes-making decisions about which observations are meaningful, and which are noise, tradeoffs between detail and scope, and synthesizing disparate geospatial data. This course focuses on the development of skills and concepts needed to collect and interpret geologic field data and serves as preparation for the GEOSC 472B - Geosciences Field Investigations. Throughout the course, students will develop the skills to collect, organize, analyze, and communicate geologic observations, and learn to construct a professional-grade geologic map and cross section using geographical information systems (GIS) software.
GEOSC 472BField Geology II: Geoscience Field Investigations4
This course is a capstone course that provides a natural laboratory for a synthesis of the geological sciences, focusing on the application of geologic field methods to the 3-D characterization of Earth structure, the interpretation of geological processes, and the reconstruction of geologic histories. The exercises and field areas are selected to provide a diverse array of rock types and geological processes that characterize the geology and geologic history of western North America. Through selected field exercises, students will gain hands-on experience with modern geoscience field methods and synthesize observations into geologic maps, cross sections, and written report The ultimate objective of this course is to go beyond the technical aspects of mapping and collection of field data to solve geologic problems based on field observations using the knowledge and analytical skills that are fostered in the core courses of the Geosciences major. This course includes travel outside the University for which an additional charge will be made to cover transportation, food, and lodging.
Astrobiology is the study of life in the universe. Astrobiology has become a major focus of scientific research in the United States and a topic often discussed in popular science literature. The recent interest in astrobiology has resulted in the formation of an Astrobiology Institute at Penn State University. This advanced undergraduate course in astrobiology will cover many topics in the field including, biochemical evolution, the origin and evolution of life on Earth, microbial diversity, protein evolution, and the distribution of life in the universe. This course is intended to provide students of the natural sciences with the opportunity to prepare for a research career in the rapidly expanding field of astrobiology. The course will also present astrobiology as a cross-disciplinary framework that ties together the diverse courses the students have already taken. The students will learn new concepts while having, to draw on their previous knowledge of chemistry, biology, and the geosciences. In summary, this course has the following objectives: (1) to develop the student's literacy in astrobiology so that they can critically evaluate claims that they encounter well after the course has ended; (2) to present a scientific question that requires the sum of the student's previous education to solve; (3) to provide a deep background to some of the astrobiological concepts that are often only briefly mentioned in other classes or in the media; (4) to develop research and communication skills required for a young scientist through a class term paper and short oral presentation; and (5) to prepare the students for graduate research in astrobiology by giving them a broad background of the field and by demonstrating many of the outstanding problems yet to be solved.
GEOSC 480 is an advanced geophysics course that introduces students to the mathematics and physics behind the processes governing planet formation and planet evolution. Students will learn about planet and star formation, and differentiation of planetesimals into cores and mantles. Students will learn about heat transfer by conduction and convection, and apply this knowledge to learn about the temperature distribution within planets, and how they evolve over time. The course also covers the interior structure of planets, and uses basic physical laws to determine the pressure, density, and gravity profiles through planetary interiors. Students will also learn about gravitational interactions between planetary bodies, including tidal interactions between the Earth and moon. We will then cover geophysical techniques for constraining the interior structure and properties of planets, including moment of inertia, gravity, and lithospheric flexure. Homework problems will be used to hone student's skills, including simple exercises in plotting and modeling with MATLAB. The course will be capped off by a term project, where each student will conduct research on a topic of their choice relevant to planetary interiors and their evolution.
The proposed course will be specially designed for undergraduate students (junior or senior) who are eager to pursuing a career in petroleum energy industry or pursuing a grad school in exploration seismology as well as new graduate students who did not have a petroleum seismology class in their previous studies. This course provides an overview of the physical principles of petroleum seismology with emphasis on exploring and characterizing petroleum reservoirs using seismic methods. The content will include the physical basis of the seismic methods, including wave properties, wave propagation in the Earth, seismic reflections & refractions, data processing, seismic migration, seismic interpretation and well logs, and borehole seismology. Hands-on experience working with field data examples will be provided through computer lab exercises throughout the semester.
An overview of the observations, methods, and frameworks used in seismogram analysis for earthquake and earth-structure investigations (includes laboratory). GEOSC 488