Autor: PPGLEMESTRADO

  • Publicado o edital da primeira seleção do Programa de Pós-graduação em Letras

    Publicado o edital da primeira seleção do Programa de Pós-graduação em Letras

    Abertas as inscrições ao processo seletivo para o curso de Mestrado Profissional em Letras, da Universidade Estadual da Região Tocantina do Maranhão (UEMASUL), até o dia 23 de agosto de 2019. Primeiro curso da instituição e único da região na área das Letras vai ofertar 20 vagas, com o objetivo de proporcionar ao professor da área de Letras a formação científica e cultural, ampla e aprofundada.

    Aprovado em abril, pela Coordenação de Aperfeiçoamento de Pessoal de Nível Superior (CAPES), o Programa de Pós-graduação em Letras (PPGLe) está em consonância com o Plano Nacional de Educação (PNE) e as diretrizes estratégicas da UEMASUL, previstas no Plano de Desenvolvimento Institucional (PDI).

    O PPFLe é destinado aos profissionais graduados em Letras, e em áreas do conhecimento que tenham afinidade com a temática central da área de concentração, considerando duas linhas de pesquisa: Literatura, Diálogos e Saberes; e Linguagem, Memória e Ensino. “A região não tem mestrado em Letras. Esse mestrado vem para atender uma demanda regional cumprindo a missão da UEMASUL, de produzir e difundir conhecimentos, por meio do ensino”, afirmou a pró-reitora de Pesquisa, Pós-Graduação e Inovação, Alinne da Silva.

    Para o professor Gilberto Freire, coordenador do curso, o Mestrado Profissional em Letras é grande uma oportunidade para a região. “São décadas e décadas, onde grande parte dos nossos alunos dos cursos de graduação não tinham a oportunidade de poder dar uma caminhada maior na sua trajetória de ensino, e o nosso mestrado vem exatamente para contemplar esses alunos”.

    O coordenador falou ainda sobre a conquista do sonho coletivo, que se tornou realidade. “Para a UEMASUL é uma grande conquista, em dois anos conseguirmos o mestrado é uma vitória que teve o empenho de todos. Foi uma grande caminhada, uma luta de muitos professores. É a comprovação que sonhar é fundamental, e realizar o sonho é uma das coisas mais gratificantes, principalmente, para todos nós do curso de Letras. Sabemos o quanto foi longa nossa trajetória, mas, sempre com um olhar nessa possibilidade do mestrado e doutorado”.

  • CAPES aprova o primeiro Programa de Mestrado da UEMASUL

    CAPES aprova o primeiro Programa de Mestrado da UEMASUL

    No último dia 4 de abril, a Coordenação de Aperfeiçoamento de Pessoal de Nível Superior (CAPES) divulgou a aprovação do primeiro programa de pós-graduação Stricto sensu da UEMASUL. O mestrado profissional em Linguística e Literatura será o primeiro da instituição e o único da região na área das Letras. A proposta, coordenada pelo professor Gilberto Freire de Santana, visa garantir ao profissional da área de Letras, formação científica e cultural, ampla e aprofundada.

    O curso de mestrado está em consonância com o Plano Nacional de Educação – PNE e as diretrizes estratégicas da UEMASUL, previstas no Plano de Desenvolvimento Institucional (PDI). Para tanto, serão estruturados laboratórios de ensino e pesquisa, além de estimular a fixação de pesquisadores em nível de doutorado e pós-doutorado, como forma de fortalecer os cursos Stricto sensu.

    Além do mestrado, a UEMASUL ofertará também uma especialização Lato Sensu do curso de Letras, ambos terão início no segundo semestre de 2019. “O mestrado era um sonho, e muito necessário para a instituição. Em um prazo tão curto de criação a gente ter conquistado um mestrado é incrível, e isso vai provocar o surgimento de outros mestrados. Desde o ano passado já sentimos que a graduação se empolgou só com a possibilidade do mestrado, já que vai sair a especialização e o mestrado no segundo semestre de 2019.2, já pensando em daqui uns anos conseguir um doutorado. Esse é o espírito, o motivo da nossa existência e da UEMASUL”, conta o coordenador da proposta professor Gilberto Freire.

    Com linhas de pesquisa em Linguagem, Memória e Ensino, e Literatura, Diálogos e Saberes, contando com nove docentes, sendo dois deles da UEMA de Balsas, o mestrado vem para consolidar a importância da UEMASUL para a Região Tocantina. “A região não tem mestrado em Letras, os mais próximos são em São Luís e em Araguaína, o mestrado vem pra atender uma demanda regional contribuindo para o desenvolvimento, que é a missão da universidade”, afirma a Pró-Reitora de Pesquisa, Pós-Graduação e Inovação, Alinne da Silva.

  • NASA celebrates Hubble Space Telescope’s 28th birthday with this stunning picture

    NASA celebrates Hubble Space Telescope’s 28th birthday with this stunning picture

    In honor of its 28th birthday, NASA’s Hubble Space Telescope has beamed down two different images of the incredible Lagoon Nebula. Even after 163,000 orbits around the planet and over a million photos, the Hubble never fails to impress. The images are a reminder of just how much insight the instrument has given us since it was first launched on April 24, 1990.

    Picture of the Lagoon Nebula provided by NASA
    Picture of the Lagoon Nebula provided by NASA.

    The star of the images is Herschel 36 which beams brightly at the center of the photos. Just 1 million years old—a baby by star standards—it’s 200,000 time brighter and 32 times larger than the Sun. Located 4,000 light years away, the Lagoon Nebula appears as a speck in the sky when looking through binoculars, but thanks to the Hubble we can see it in its full glory.

    “The giant star, called Herschel 36, is bursting out of its natal cocoon of material, unleashing blistering radiation and torrential stellar winds, which are streams of subatomic particles, that push dust away in curtain-like sheets,” NASA writes. “This action resembles the Sun bursting through the clouds at the end of an afternoon thunderstorm.”

    NASA has released two views of the Lagoon Nebula as part of the birthday celebration. A colorful visible-light image that shows the swirling ridges of dust and gas, as well as an infrared image that allows us to see through the gas into the bright stars. NASA points out that scientists use the infrared images to help “penetrate vast clouds of gas and dust to uncover hidden gems.”

    The Hubble Space Telescope will continue to churn out images—and advent calendars—for the foreseeable future. Though its successor, the James Webb Space Telescope, is set to launch in 2020, it’s estimated that the Hubble will continue its mission until it re-enters our atmosphere at some point during the 2030s. For now, it will continue to rack up frequent flyer miles, adding to the 4 billion already traveled.

    Watch as the Hubble zooms in on the Lagoon Nebula.

    Hubble Space Telescope: Website | Facebook | Twitter | YouTube


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  • UA-Led NASA Survey Seen as Steppingstone for Astronomy

    UA-Led NASA Survey Seen as Steppingstone for Astronomy

    By studying dust in the habitable zones of nearby stars, the HOSTS Survey — led by UA astronomers and performed with Arizona telescopes — is helping to determine how big future telescopes should be, which stars are likely candidates for harboring Earth-like planets and what the average star system looks like.

    Imagine trying to see a firefly next to a distant spotlight, where the beams from the spotlight all but drown out the faint glow from the firefly. Add fog, and both lights are dimmed. Is the glow from the firefly still visible at all?

    That is the question the Hunt for Observable Signatures of Terrestrial Systems, or HOSTS, Survey was tasked with answering, albeit on a cosmic scale. Using the Large Binocular Telescope Interferometer, or LBTI, in Arizona, the HOSTS Survey determines the brightness and density of warm dust floating in nearby stars’ habitable zones, where liquid water could exist on the surface of a planet.

    This research will contribute to a once-per-decade report on the field of astrophysics, produced by the National Academies, that NASA uses to help chart a course for future missions, some of which could continue the search for planets around other stars, known as exoplanets. But before telescopes for prospective exoplanet-hunting missions can be designed, astronomers must know if there is a fundamental limit to their ability to see a tiny, dim planet next to a bright star when the system is shrouded in dust.

    “Our result is that there is no fundamental problem,” said Steve Ertel of the University of Arizona’s Steward Observatory, instrument scientist for the Large Binocular Telescope Interferometer and lead author on the paper, “The HOSTS Survey – Exo-Zodiacal Dust Measurements for 30 Stars,” which is published in the in the Astronomical Journal. “Now it is a technical challenge.”

    A potential mission to search for terrestrial planets probably would include a space-based telescope, and the HOSTS Survey will help determine its size.

    “The more dust there is, the bigger the telescope has to be to image a planet,” Ertel said. “It is important to know what telescope size is required, so the costs can be minimized.”

    The dust that orbits in the plane of our solar system is known as “zodiacal dust.” The HOSTS Survey has determined that the typical level of zodiacal dust around other stars — called “exo-zodiacal dust” — is less than 15 times the amount found in our own solar system’s habitable zone. Stars with more than that amount of dust make poor targets for future exoplanet imaging missions, as planets would be difficult to see through the haze. One such star with a prominent dust disk, called Epsilon Eridani, is one of the 10 nearest stars investigated by the HOSTS Survey.

    “It is very nearby,” Ertel said. “It’s a star very similar to our sun. It would be a very nice target to look at, but we figured out that it would not be a good idea. You would not be able to see an Earth-like planet around it.”

    ‘That’s Our Best Guess’

    If dust and debris make finding rocky worlds challenging, then why search for planets in dusty systems? 

    “There is dust in our own solar system,” said Philip Hinz, the lead for the HOSTS Survey team and associate professor of astronomy at the UA. “We want to characterize stars that are similar to our own solar system, because that’s our best guess as to what other planetary systems might have life.”

    The pattern of dust distribution around a host star also can tell astronomers something about the potential planets in a star system. Some stars have wide, continuous disks that fill the whole system. This is considered a standard model, as dust is formed during asteroid collisions far from the star and then spirals inward toward the star so that it is evenly distributed throughout the system.

    “This is something that we expected to see, but we also saw some surprises,” Ertel said.

    Take Vega, one of the brightest stars in the night sky. For more than 30 years, astronomers have known that Vega has a massive belt of cold dust far from the star, analogous to our solar system’s Kuiper Belt. The star also has a disk of hot dust very close to it.

    “We were thinking that Vega must have dust in the habitable zone as well, because it has dust very close and dust farther away,” Ertel said. “But we looked at Vega’s habitable zone and we didn’t find anything.”

    Vega’s habitable zone is devoid of detectable dust, which could indicate that the system has planets that prevent dust from collecting there. Planets have not yet been detected around Vega, but current observations are not even sensitive enough to detect a planet as large as Jupiter near the star, let alone Earth-like planets.

    “This could be an indication of a planet we cannot see,” Ertel said. “It could be a massive planet outside the habitable zone, or it could be several Earth-mass planets.”

    Other stars had different dust distributions: nothing far away or very close, but huge amounts of bright, warm dust in their habitable zones. If a star does not have a Kuiper Belt analogue producing dust, but it still has a ring of warm dust, there must be another mechanism at play in the system.

    “There might be giant planets like Jupiter and Saturn in that system, but that system’s asteroid belt has a lot of mass to it, so you’re getting a lot of collisions that make large amounts of dust,” Hinz said.

    Studying these dust disks provides astronomers with more pieces to the puzzle of planetary architecture. While past studies have looked for planets very close to, and very far away from, stars to determine where planets are typically located in star systems, the HOSTS Survey is determining how dust and asteroid belts appear in the average star system.

    “The survey is ongoing, so we have more questions than answers,” Hinz said. “We are in the early days for trying to figure out how it all fits together.”

    Detection Methods

    Exo-zodiacal dust has been warmed to room temperature by its host star, so it glows when viewed in infrared wavelengths — that is, in infrared light, emitted by heated objects. However, at those wavelengths, stars glow 10,000 times brighter than the dust. To see how much dust was swirling around their chosen 30 stars, the HOSTS Survey detected the dust disks using a technique called “Bracewell nulling interferometry,” after Ronald Bracewell, the astronomer who first suggested the method.

    “Interferometry means ‘measuring the interference between two wave trains,’” Hinz said.

    The Large Binocular Telescope, or LBT, has the unique capability to perform this interferometry, as it is designed so that its twin telescopes can each detect light waves that are perfectly out of phase with each other. When waves are out of phase, they cancel each other out, causing their peaks and troughs to flatten.

    “The result is that you cancel out the light from the star,” Hinz said.

    A similar technique was introduced in 1998, using the Multiple Mirror Telescope on Arizona’s Mount Hopkins.

    “It took almost 20 years to refine the technique so it is precise enough so that we could get rid of the star and sensitive enough so that we could see the remaining light from the dust,” Hinz said.

    Achieving this cancellation requires that the LBT be adaptable. After light bounces off the telescope’s 8-meter primary mirrors, it reflects off the secondary mirrors and into detectors. The secondary mirrors are deformable so that they can correct for the distortions of light caused by ripples in the atmosphere. In order for the interferometry to work, these corrections must be accurate to one one-hundredth of the width of a human hair.

    The LBTI is funded by NASA’s Exoplanet Exploration Program office and managed by the agency’s Jet Propulsion Laboratory in Pasadena, California. JPL is a division of Caltech. The LBTI is 10 times more sensitive than the previous telescope capable of detecting exo-zodiacal dust, the Keck Interferometer Nuller, which completed its observations of exo-zodiacal dust in 2011. To learn more about the Keck Interferometer, visit science.nasa.gov/missions/keck.

    The LBT is an international collaboration among institutions in the U.S., Italy and Germany, and it is managed and headquartered at the UA.


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  • Can Laughter Make Our Lives Better? Researchers Say Yes

    Can Laughter Make Our Lives Better? Researchers Say Yes

    Research from the UA’s Eller College of Management suggests that humor is a good thing in certain situations, but its effectiveness depends on your end goal.

    Why do humorous dating profiles get more right swipes? Can being funny help solve problems? Is laughter really the best medicine?

    Humor and the “good life” seem to go hand-in-hand. Funny people seem to move effortlessly through the world. Business articles and gurus prescribe humor as a key to effective workplace performance. The website for the African country of Eritrea even describes humor as “a tremendous resource for surmounting problems, enhancing your relationships, and supporting both physical and emotional health.”

    “Humor, Comedy and Consumer Behavior,” a paper by Caleb Warren, assistant professor of marketing in the UA Eller College of Management; Adam Barsky of the University of Melbourne; and A. Peter McGraw of the University of Colorado’s Leeds School of Business, looks beyond advertising to highlight how and when humor helps people reach their goals.

    The paper, forthcoming in the Journal of Consumer Research, breaks people’s goals into three broad categories: hedonic goals (maximizing pleasure and minimizing pain), utilitarian goals (optimizing long-term well-being) and social goals (getting along with others). The researchers integrate insights from psychology, management, linguistics, anthropology, medicine and neuroscience to propose a framework that summarizes the current scientific knowledge about humor.

    The authors argue that humor appreciation (laughter and amusement) helps people feel better by making positive experiences, such as watching a movie or dining at a restaurant, more pleasant — and negative experiences, such as going for dental work or waiting in line, less unpleasant. Sharing a laugh also can help people bond and get along better.

    But humor appreciation does not always improve utilitarian outcomes, such as decision-making or health. For example, laughing tends to make people more creative — but also more careless. Similarly, watching a funny movie may help someone recover from emotional ailments, such as depression or an anxiety disorder, but there is little evidence that humor will help with cancer or even a common cold.

    Similarly, comedy production (trying to make others laugh) sometimes helps people reach their goals but other times gets in the way. For example, cracking a joke can help people capture attention, but it also can make a message seem less important.

    One notable conclusion from the paper is that the effects of comedy production depend on the type of joke people tell, as well as whether the joke actually makes an audience laugh. Teasing and telling insulting jokes are less likely to help people cope with loss or navigate an awkward social interaction than joking about the weather or creating an amusing pun. But even jokes about the weather and puns won’t help if no one laughs.


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