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Polski Sektor Kosmiczny EN.Indd
Cassini-Huygens Mars Express POLAND IN ESA BRITE-PL „Lem” Meteor 2 Kopernik 500 Integral Rosetta Mikołaj Kopernik REACHING STARS Jan Heweliusz Mirosław — Hermaszewski POLISH SPACE SECTOR 4 years in ESA PW-SAT BRITE-PL „Heweliusz” Herschel Vertical-1 ExoMars TABLE OF CONTENTS Poland 3 History of space activities 4 Space policy 6 In space and on Earth 8 Companies 12 Selected scientific and research institutions 19 Competence map 22 2 WTO UN 01 OECD POLAnd Population: 38.4 million NATO Area: 312 000 km2 Economy: 23rd place in the world* Capital city: Warsaw Government system: parliamentary republic Currency: złoty (PLN) EU ESA * World Bank, 2015, GDP based on PPP EDA EUMETSAT ESO POLAND POLAND CENTRAL AND EasterN EUROPE EU28 GDP (PPP) per capita of Poland compared Economic growth in Poland and EU28 to other countries of Central and Eastern Europe Source: own compilation based on data from Eurostat Source: The Global Competitiveness Report, World Economic Forum 3 02 HISTORY OF SPACE ACTIVITIES The beginning of Polish engagement in space flights presence of Polish instruments on the majority of the stemmed from participation in the international pro- Agency’s research missions. Meanwhile, the first private gramme Interkosmos, based on collaboration with the Polish companies offering satelite-based applications Soviet Union. The first Polish research device was sent and services were created. into orbit on board the satellite Kopernik-500 (Interkos- In 2007, the signing of the Plan for European Coope- mos-9) in 1973. Three years later the Space Research rating States (PECS) enabled significant extension of Centre of the Polish Academy of Sciences was estab- Poland’s cooperation with ESA. -
Year in Review 2013
SM_Dec_2013 cover Worldwide Satellite Magazine December 2013 SatMagazine 2013 YEAR IN REVIEW SatMagazine December 2013—Year In Review Publishing Operations Senior Contributors This Issue’s Authors Silvano Payne, Publisher + Writer Mike Antonovich, ATEME Mike Antonovich Robert Kubbernus Hartley G. Lesser, Editorial Director Tony Bardo, Hughes Eran Avni Dr. Ajey Lele Richard Dutchik Dave Bettinger Tom Leech Pattie Waldt, Executive Editor Chris Forrester, Broadgate Publications Don Buchman Hartley Lesser Jill Durfee, Sales Director, Editorial Assistant Karl Fuchs, iDirect Government Services Eyal Copitt Timothy Logue Simon Payne, Development Director Bob Gough, 21 Carrick Communications Rich Currier Jay Monroe Jos Heyman, TIROS Space Information Tommy Konkol Dybvad Tore Morten Olsen Donald McGee, Production Manager David Leichner, Gilat Satellite Networks Chris Forrester Kurt Peterhans Dan Makinster, Technical Advisor Giles Peeters, Track24 Defence Sima Fishman Jorge Potti Bert Sadtler, Boxwood Executive Search Simen K. Frostad Sally-Anne Ray David Gelerman Susan Sadaat Samer Halawi Bert Sadtler Jos Heyman Patrick Shay Jack Jacobs Mike Towner Casper Jensen Serge Van Herck Alexandre Joint Pattie Waldt Pradman Kaul Ali Zarkesh Published 11 times a year by SatNews Publishers 800 Siesta Way Sonoma, CA 95476 USA Phone: (707) 939-9306 Fax: (707) 838-9235 © 2013 SatNews Publishers We reserve the right to edit all submitted materials to meet our content guidelines, as well as for grammar or to move articles to an alternative issue to accommodate publication space requirements, or removed due to space restrictions. Submission of content does not constitute acceptance of said material by SatNews Publishers. Edited materials may, or may not, be returned to author and/or company for review prior to publication. -
Internet Access and Backbone Technology
3/30/15 AIS 2015 1 Internet access and backbone technology Henning Schulzrinne Columbia University COMS 6181 – Spring 2015 03/30/2015 3/30/15 AIS 2015 2 Key objectives • How do DSL and cable modems work? • How do fiber networks differ? • How do satellites work? • What is spectrum and its characteristics? • What is the difference between Wi-Fi and cellular? 3/30/15 AIS 2015 3 Broadband Access Technologies FBWA or 4G FTTHome BPL FTTCurb DSL 4G Fiber PON HFC Digital Fiber -- Passive Fixed Broadband 4G/LTE Subscriber Line Optical Network Wireless Access • Cellular operators • Telco or ILEC • Telco or ILEC • Wireless ISP • 5-10 Mbps (100 kph) • 10s of Mbps • ~75 Mb/s • WiMAX or LTE: • Entertainment, data, voice • Futureproof? -10s of Mbps • Satellite: few Mbps Hybrid Fiber Coax Broadband Power Line • CableCo (MSO) • PowerCo • Entertainment, data, voice • Data, voice • 10s of Mbps • ~few Mbps Paul Henry (AT&T), FCC 2009 3/30/15 AIS 2015 4 FTTx options Alcatel-Lucent 3/30/15 AIS 2015 5 Available access speeds 100 Mb/s marginal 20 Mb/s VOIP 10 Mb/s 5 Mb/s 1 Mb/s avg. sustained throughput 20% 80% 90% 97%100% of households (availability) 3/30/15 AIS 2015 6 Maximum Theoretical Broadband Download Speeds Multiple Sources: Webopedia, bandwidthplace.com, PC Magazine, service providers, ISPs, Paul Garnett, CTIA, June 2007 Phonescoop.com, etc. 3/30/15 AIS 2015 7 Access costs • Fiber à GPON 200 Mb/s both directions • $200-400 for gear • Verizon FiOS < $700/home passed -- dropping • $20K/mile to run fiber • Wireless LTE/WiMAX • 4-10 Mb/s typical • 95% of U.S. -
Astronautilus-18.Pdf
Kosmos to dla nas najbardziej zaawansowana nauka, która często redefiniuje poglądy filozofów, najbardziej zaawansowana technika, która stała się częścią nasze- go życia codziennego i czyni je lepszym, najbardziej Dwumiesięcznik popularnonaukowy poświęcony tematyce wizjonerski biznes, który każdego roku przynosi setki astronautycznej. ISSN 1733-3350. Nr 18 (1/2012). miliardów dolarów zysku, największe wyzwanie ludz- Redaktor naczelny: dr Andrzej Kotarba kości, która by przetrwać, musi nauczyć się żyć po- Zastępca redaktora: Waldemar Zwierzchlejski Korekta: Renata Nowak-Kotarba za Ziemią. Misją magazynu AstroNautilus jest re- lacjonowanie osiągnięć współczesnego świata w każdej Kontakt: [email protected] z tych dziedzin, przy jednoczesnym budzeniu astronau- Zachęcamy do współpracy i nadsyłania tekstów, zastrze- tycznych pasji wśród pokoleń, które jutro za stan tego gając sobie prawo do skracania i redagowania nadesłanych świata będą odpowiadać. materiałów. Przedruk materiałów tylko za zgodą Redakcji. Spis treści PW-Sat: Made in Poland! ▸ 2 Polska ma długie tradycje badań kosmicznych – polskie instrumenty w ramach najbardziej prestiżowych misji badają otoczenie Ziemi i odległych planet. Ale nigdy dotąd nie trafił na orbitę satelita w całości zbudowany w polskich labo- ratoriach. Może się nim stać PW-Sat, stworzony przez studentów Politechniki Warszawskiej. Choć przedsięwzięcie ma głównie wymiar dydaktyczny, realizuje również ciekawy eksperyment: przyspieszoną deorbitację. CubeSat, czyli mały może więcej ▸ 15 Objętość decymetra sześciennego oraz masa nie większa niż jeden kilogram. Ta- kie ograniczenia konstrukcyjne narzuca satelitom standard CubeSat. Oryginalnie opracowany z myślą o misjach studenckich (bazuje na nim polski PW-Sat), Cu- beSat zyskuje coraz większe rzesze zwolenników w sektorze komercyjnym, woj- skowym i naukowym. Sprawdźmy, czym są i co potrafią satelity niewiele większe od kostki Rubika. -
PRFP-11) & Interconnectivity Workshop 26-30 November 2019, Apia, SAMOA
11th APT Policy and Regulation Forum for Pacific (PRFP-11) & Interconnectivity Workshop 26-30 November 2019, Apia, SAMOA Workshop Topic ENABLERS FOR A BETTER CONNECTED PACIFIC - New Satellite Technologies and Services (MSS, ESIM and LEOs) Dr Bob Horton Consultant Satellite Industry ENABLERS FOR A BETTER CONNECTED PACIFIC - New Satellite Technologies and Services (MSS and LEOs) CONTENTS • Examples of progress : MSS, ESIM – Inmarsat LEOs – OneWeb • Pacific Needs - understanding and participating in the regional/global environment - the Pacific : a “Collection of Islands” or an “Island Collective”? - opportunities overdue in APAC Inmarsat use of spectrum L band Ka band User links: 1626.5-1660.5 MHz ↑, 1525-1559 Feeder link ↑ : 27.5 – 30.0 GHz MHz↓ Feeder link↓ : 17.7 – 20.2 GHz Extended L-band: User link ↑ : 29.0 – 30.0 GHz User link↓ : 19.2 – 20.2 GHz User links: 1668-1675 MHz ↑, 1518 MHz-1525 MHz ↓ Used by Inmarsat Global Express satellites S band Used by Inmarsat-4 satellites and Alphasat Feeder link ↑ : 27.5 – 29.5 GHz Feeder link↓ : 17.7 – 19.7 GHz User link ↑ 1980-2010MHz Q/V band User link↓ : 2170-2200MHz C band 37.5-42.5 GHz ↓ Used by Europasat Feeder links for L-band satellites operate in 47.2-50.2 GHz + 50.4-51.4 GHz ↑ the bands 3550 – 3700 MHz and 6425 – - Planned for future satellites to free 6575 MHz through more than 20 Land Earth Stations up Ka-band for user terminals TT&C operated in standard C-band on most - Developmental payload on Alphasat Inmarsat satellites Inmarsat and Extended L-band Extended L-band will be available -
EXTRAORDINARY AMAZING EVERYWHERE ANNUAL REPORT 2019 2 SES ANNUAL REPORT 2019 COMPANY OUR 1 for Allourstakeholders
EXTRAORDINARY AMAZING EVERYWHERE ANNUAL REPORT 2019 1 2 3 4 5 OUR OPERATIONAL CONSOLIDATED SES S.A. ANNUAL ADDITIONAL COMPANY AND STRATEGIC FINANCIAL ACCOUNTS INFORMATION REPORT STATEMENTS OUR PURPOSE OUR AMBITIONS We believe in content and WE DO THE connectivity everywhere We provide Cloud-enabled, EXTRAORDINARY satellite-based intelligent IN SPACE connectivity We are future-proof, powered by TO DELIVER sustained growth and innovation AMAZING We are passionate about customer experience and focused on customer EXPERIENCES success EVERYWHERE SES is a great place to work We are here to make a ON EARTH difference We are part of something bigger and what we do makes a difference. Our purpose and ambitions reflect what we at SES want to achieve and the value that we seek to create for all our stakeholders. ANNUAL REPORT 2019 REPORT ANNUAL SES 2 1 2 3 4 5 OUR OPERATIONAL CONSOLIDATED SES S.A. ANNUAL ADDITIONAL COMPANY AND STRATEGIC FINANCIAL ACCOUNTS INFORMATION REPORT STATEMENTS 1 OUR COMPANY 4 Leader in global content connectivity solutions 6 Significant demand for global content connectivity solutions 8 Doing the extraordinary in space 10 Delivering amazing experiences everywhere on Earth 12 Making a difference to billions all around the world 14 Our talented people are at the heart of everything we do 16 Generating sustained growth 18 A long history of innovation ANNUAL REPORT 2019 REPORT ANNUAL SES 3 1 2 3 4 5 OUR OPERATIONAL CONSOLIDATED SES S.A. ANNUAL ADDITIONAL COMPANY AND STRATEGIC FINANCIAL ACCOUNTS INFORMATION REPORT STATEMENTS LEADER IN GLOBAL CONTENT CONNECTIVITY SOLUTIONS “ At SES, we believe you should have the freedom to take your story wherever you want it to go—unlimited by geography, technology, or even gravity.” Steve Collar, SES CEO ANNUAL REPORT 2019 REPORT ANNUAL SES 4 1 2 3 4 5 OUR OPERATIONAL CONSOLIDATED SES S.A. -
ESOG 120 Issue 8 – Rev
TYPE APPROVAL AND CHARACTERIZATION PROCEDURES ESOG 120 Issue 8 – Rev. 1, May 2021 Antennas and Transmissions Team Antenna and VSAT Type Approval/Characterization ESOG 120 – Issue 8 - Rev. 1 May 2021 Antennas and VSATs Type Approval / Characterization Table of Contents Forward .................................................................................................................................. v 1 Overview of the ESOG modules ...................................................................................... 6 1.1 Volume I: Eutelsat S.A. system management and policies ........................................................ 6 1.2 Volume II: Eutelsat S.A. system operations and procedures ..................................................... 6 2 Introduction ................................................................................................................... 7 2.1 About this document .................................................................................................................. 7 2.2 Disclaimer ................................................................................................................................... 7 2.3 Eutelsat certification .................................................................................................................. 7 2.3.1 Type Approval ........................................................................................................................ 8 2.3.2 Characterization .................................................................................................................... -
BRITE Photometry of the Massive Post-RLOF System HD149
A&A 621, A15 (2019) Astronomy https://doi.org/10.1051/0004-6361/201833594 & c ESO 2018 Astrophysics BRITE photometry of the massive post-RLOF system HD 149 404? G. Rauw1, A. Pigulski2, Y. Nazé1,??, A. David-Uraz3, G. Handler4, F. Raucq1, E. Gosset1,???, A. F. J. Moffat5, C. Neiner6, H. Pablo7, A. Popowicz8, S. M. Rucinski10, G. A. Wade9, W. Weiss11, and K. Zwintz12 1 Space Sciences, Technologies and Astrophysics Research (STAR) Institute, Université de Liège, Allée du 6 Août, 19c, Bât B5c, 4000 Liège, Belgium e-mail: [email protected] 2 Instytut Astronomiczny, Uniwersytet Wrocławski, Kopernika 11, 51-622 Wrocław, Poland 3 Department of Physics and Astronomy, University of Delaware, Newark, DE 19716, USA 4 Nicolaus Copernicus Astronomical Center, Bartycka 18, 00-716 Warszawa, Poland 5 Département de Physique, Université de Montréal, CP 6128, Succ. Centre-Ville, Montréal PQ H3C 3J7, Canada 6 LESIA, Observatoire de Paris, Place Jules Janssen, 5, 92195 Meudon, France 7 AAVSO Headquarters, 49 Bay State Rd., Cambridge, MA 02138, USA 8 Instytut Automatyki, WydziałAutomatyki Elektroniki i Informatyki, Politechnika Sl˛aska,Akademicka´ 16, 44-100 Gliwice, Poland 9 Department of Physics and Space Science, Royal Military College of Canada, PO Box 17000, Stn Forces, Kingston, Ontario K7K 7B4, Canada 10 Department of Astronomy and Astrophysics, University of Toronto, 50 St. George St., Toronto, Ontario M5S 3H4, Canada 11 Institute for Astrophysics, University of Vienna, Türkenschanzstraße 17, 1180 Vienna, Austria 12 Institute for Astro- and Particle Physics, University of Innsbruck, Technikerstrasse 25/8, 6020 Innsbruck, Austria Received 8 June 2018 / Accepted 23 October 2018 ABSTRACT Context. -
DRAGON - 8U Nanosatellite Orbital Deployer
DRAGON - 8U Nanosatellite Orbital Deployer Marcin Dobrowolski*, Jerzy Grygorczuk*Â ÃB_*, Marta Tokarz* and Maciej Borys* Abstract The Space Research Centre of the Polish Academy of Sciences (SRC PAS) together with Astronika company have developed an Orbital Deployer called DRAGON for ejection of the Polish scientific nanosatellite BRITE-PL Heweliusz (Fig. 1). The device has three unique mechanisms including an adopted and scaled lock and release mechanism from the ESA Rosetta mission MUPUS instrument. This paper discusses major design restrictions of the deployer, unique design features, and lessons learned from development through testing. Introduction BRITE Constellation is a group of scientific nanosatellites whose purpose is to study oscillations in the light intensity of the most luminous stars (brighter than magnitude +3.5) in our galaxy. The observations will have a precision at least 10 times better than achievable using ground-based observations. The BRITE (BRight Target Explorer) mission formed by Austria, Canada and Poland will send to space a constellation of six nanosatelites, two from each country. BRITE-PL satellite is based on the Generic Nanosatellite Bus (GNB) from the Canadian SFL/UTIAS (Space Flight Laboratory / University of Toronto, Institute for Aerospace Studies). The spacecraft are to use the SFL XPOD (Experimental Push Out Deployer) as a separation system. Figure 1. DRAGON Orbital Deployer and BRITE-PL Heweliusz Spacecraft (in a safety box) * Space Research Centre of the Polish Academy of Sciences, Warsaw, Poland ! " # 487 The first scientific satellite, BRITE-PL Lem, is a modified version of the original SFL design. The second one, BRITE-PL Heweliusz, has the significant changes – it carries additional technological experiments implemented by SRC PAS. -
CSF Research and Education Fall 2014
Subscribe Share Past Issues Translate Commercial Spaceflight Federation Newsletter View this email in your browser CSF REM Affiliates, I wanted to start by saying that I look forward to working closely with all of you in my new role as CSF President! I would like to schedule a REM Affiliates call next month which will be a great opportunity for me to get to know everyone further. Please fill out this doodle poll to let us know when you are available for the call: http://doodle.com/m92k5u7ipvz4k8ay. We held our semi-annual CSF Board and Members Meetings September 9-10 in Jacksonville, FL. A lot of great developments came out of the meetings that I believe will continue to move our organization in the right direction. The Board of Directors elected Frank DiBello, President and CEO of Space Florida, as the new CSF Chairman succeeding Stu Witt, the CEO of Mojave Air and Space Port. The Board also elected Mike Gold of Bigelow Aerospace and Sean Mahoney of Masten Space Systems to the Executive Committee. Additionally, October marked the beginning of a few staffing changes here at CSF. Tommy Sanford assumed the role of Director on October 1st. Additionally, Mike L-A has left CSF as of September 30th; we can't thank him enough for his service not just to the Federation, but to the industry as a whole. Please feel free to reach out to me by email at eric.stallmer@commercialspaceflight.org or by phone at 202-715-2925. I look forward to talking with you all soon! Sincerely, Eric EDUCATION NEWS AND CONTESTS NASA Space Technology Research Fellowships (NSTRF) – Fall 2015 Due: November 13, 2014 This call for graduate student fellowship applications solicits applications from individuals pursuing or planning to pursue master’s (e.g., M.S.) or doctoral (e.g., Ph.D.) degrees in relevant space technology disciplines at accredited U.S. -
SPACE-EU Conference the Role of Satellite Telecommunications
SPACE-EU Conference The role of Satellite Telecommunications February 2012 – Christine Leurquin SES – Who we are A world-leading telecommunications satellite operator Premier provider of transmission capacity, related platforms and services worldwide for • media • enterprise and telcos • government and institutions Headquartered in Luxembourg, with 1,200 staff worldwide Listed on Euronext Paris and the Luxembourg Stock Exchange One platform, global reach ▲ Global fleet of 50 satellites provides comprehensive coverage ▲ Coverage for 99% of the world’s population ▲ A well-connected teleport infrastructure ▲ Leading direct-to-home(DTH) satellite operator in Europe ▲ Major supplier to cable headends in the Americas ▲ Hosts some of the fastest-growing DTH platforms in emerging markets Improving our service by expanding our regional teams 3 Satellite Telecommunications: a key pillar of European Space Policy “With the gradual maturation of space technologies and systems, satellite applications have become the main source of revenue for the European space industry, and the main driver for business growth for the European industry, particularly within commercial markets for telecommunications systems.” (Eurospace Facts and Figures 2011, p.10) Satellite telecommunications accounts for 63% of the manufacturing of satellites for operational applications and for 37% of industry sales as a whole (extracted from Eurospace figures 2011) . 4 Global fleet launches till 2014 A track record of 6 successful launches since 2011; 7 more satellites to be -
Introduction of NEC Space Business (Launch of Satellite Integration Center)
Introduction of NEC Space Business (Launch of Satellite Integration Center) July 2, 2014 Masaki Adachi, General Manager Space Systems Division, NEC Corporation NEC Space Business ▌A proven track record in space-related assets Satellites · Communication/broadcasting · Earth observation · Scientific Ground systems · Satellite tracking and control systems · Data processing and analysis systems · Launch site control systems Satellite components · Large observation sensors · Bus components · Transponders · Solar array paddles · Antennas Rocket subsystems Systems & Services International Space Station Page 1 © NEC Corporation 2014 Offerings from Satellite System Development to Data Analysis ▌In-house manufacturing of various satellites and ground systems for tracking, control and data processing Japan's first Scientific satellite Communication/ Earth observation artificial satellite broadcasting satellite satellite OHSUMI 1970 (24 kg) HISAKI 2013 (350 kg) KIZUNA 2008 (2.7 tons) SHIZUKU 2012 (1.9 tons) ©JAXA ©JAXA ©JAXA ©JAXA Large onboard-observation sensors Ground systems Onboard components Optical, SAR*, hyper-spectral sensors, etc. Tracking and mission control, data Transponders, solar array paddles, etc. processing, etc. Thermal and near infrared sensor for carbon observation ©JAXA (TANSO) CO2 distribution GPS* receivers Low-noise Multi-transponders Tracking facility Tracking station amplifiers Dual- frequency precipitation radar (DPR) Observation Recording/ High-accuracy Ion engines Solar array 3D distribution of TTC & M* station image