Innovative Sustainable Energy Engineering (Nordic Master), Master of Science (Technology)

Tutkinto:
Hakuaika:
Opetuskieli:
Kesto:
Hakukelpoisuus:
Koulutusala:
Laajuus:
Korkeakoulu:
Koulutuksen kuvaus
Kestävä energiatekniikka (sustainable energy engineering) käsittää laajan valikoiman käytäntöjä, politiikkoja ja teknologioita (perinteinen, uusiutuva ja vaihtoehtoinen), joiden tavoitteena on tuottaa energiaa mahdollisimman pienin taloudellisin, ympäristöllisin ja sosiaalisin kustannuksin. Energiatekniikan tehtävissä on huomioitava tekniset, ympäristöön liittyvät ja sosioekonomiset kysymykset.
Tärkeä osa kestävää energiatekniikkaa on myös energiayhteiskunnan innovatiivisuus ja yrittäjähenkisyys, erityisesti se, miten olemassa olevia ja uusia tehokkuutta parantavia innovaatioita voidaan tuoda markkinoille eri maissa. Maisteriohjelman innovatiivisuus liittyy sekä Pohjoismaiden kehittyneeseen uusiutuvan energian osaamiseen että energia-alan uusiin yrityksiin.
Opiskelijat saavat asiantuntemusta projektien suunnittelusta, toteutuksesta, toiminnasta ja ylläpidosta sekä poliittisten linjausten luomisen keskeisistä vaiheista. Opintoihin kuuluu myös tutkimusorientoitunutta, syventävää koulutusta energia-alalta.
Opetuskieli
Opetus annetaan englannin kielellä.
Lukuvuosimaksut ja apurahat
Ohjelmassa noudatetaan kunkin yliopiston omia lukuvuosimaksukäytäntöjä. Pääsääntöisesti opiskelijat, jotka eivät ole EU:n tai ETA:n jäsenmaiden kansalaisia, ovat lukuvuosimaksuvelvollisia, mutta he voivat myös hakea yliopistojen tarjoamia apurahoja. Lue lisää lukuvuosimaksuista:
- Lukukausimaksut Aalto-yliopistossa
- Lukukausimaksut Chalmersissa
- Lukukausimaksut DTU:ssa
- Lukukausimaksut KTH:ssa
Ohjelmassa noudatetaan kunkin yliopiston omia apurahakäytäntöjä. Pääsääntöisesti opiskelijat, jotka eivät ole EU:n tai ETA:n jäsenmaiden kansalaisia, ovat lukuvuosimaksuvelvollisia, mutta he voivat myös hakea yliopistojen tarjoamia apurahoja. Lue lisää apurahoista:
Opintojen rakenne
Tässä kaksoistutkinto-ohjelmassa opiskelijat opiskelevat yhden vuoden kahdessa eri pohjoismaisessa yliopistossa. Osallistuvat yliopistot määräytyvät valitun opintosuuntauksen mukaan. Yhden lukuvuoden laajuus kussakin yliopistossa on 60 opintopistettä ja opintojen kokonaislaajuus on 120 opintopistettä.
Suuntautumisvaihtoehdot
Nordic Master ISEE on ainutlaatuinen koulutusohjelma, sillä se antaa mahdollisuuden opiskella ja valmistua kahdesta huippuyliopistosta. Ohjelmassa on neljä suuntautumisvaihtoehtoa:
- Bioenergy (KTH – Aalto)
- Energy Systems (Aalto – KTH)
- Heat and Power Engineering (Aalto – Chalmers)
- System Integration of Wind Power (KTH – DTU)
Objectives of study tracks
The programme has four specialized study tracks, which are presented in more detail below. At the end of each description you will find a link to the curriculum and course descriptions.
Year 1 at KTH Royal Institute of Technology: Department of Energy Technology.
Year 2 at Aalto University: Department of Mechanical Engineering.
The Bioenergy study track provides state-of-the-art education in thermal conversion of biomass into power and biofuel production. Thermal conversion of biomass is considered to be one of the main methods to reduce carbon dioxide emissions and in replacing fossil carbon sources. This is due to the fact that biomass is a carbon neutral fuel as the emitted CO2 was previously captured from the atmosphere by the plants being thermally processed. Power generation technology from biomass can be achieved through different processes, for example, combustion, gasification, pyrolysis and combined processes, while biofuel production technology can be achieved through pyrolysis, gasification, fermentation and/or distillation process.
Second year studies at Aalto University include two modules, "Power Generation from Biomass" and "Bioenergy in Transport". Power Generation from Biomass module focuses on sustainable production of power from biomass, which includes all aspects related to bio-boilers principles, planning, structure and operation. Bioenergy in Transport module on the other hand focuses on the use and usability as well as combustion of bio-derived fuels in transport, where on-road, off-road and marine transport is covered. Also the basics of bio-fuel production principles are covered. Learning methods include lectures, literature, simulation exercises, excursions, seminars and group project work.
Learning outcomes:
- Student acquires a state-of-the-art education and training in the fields of sustainable power generation from biomass and biofuel; becomes familiar with the principles, planning, structure and operation of bio-boilers, combustion and gasification techniques in different types of boilers; obtains constructive knowledge in biofuel production, use, combustion and relevant environmental aspects.
- Student becomes skilled in calculation, simulation, design and analysis of thermal processes in bioenergy power plant through training in multidisciplinary problem analysis and solving (with emphasis on critical thinking).
- Combining theoretical and practical experience; close collaboration with industry during Master's thesis work and organizing excursions during the courses to provide versatile and hands-on knowledge about biomass technology.
Year 1 at Aalto University: Department of Mechanical Engineering.
Year 2 at KTH Royal Institute of Technology: Department of Energy Technology.
The Energy Systems study track derives from the understanding that affordable access to essential services underpins development, and energy fuels many such services. The "energy system" harnesses a resource and transforms it into energy carriers that are used in appliances and machinery to provide services. Furthemore, in order to provide services to current and future generations, the energy system itself needs to be sustainable, while taking into account that the system may impact and interact with the economy, the environment (including other physical resources or commodity systems) and society. That is why the effects of this impact and interaction should also be sustainably managed. An energy decision-maker is thus concerned with: (i) enabling appropriate, affordable and adequate service access; (ii) ensuring that the energy system can do so in a sustainable manner; and (iii) ensuring that the broader interactions between systems do not compromise the sustained development of the planet.
Learning outcomes:
- Student becomes exposed to the context, role and process of energy systems analysis for medium to long-term decision-making, technology and economic assessments; acquires skills to apply a range of standard energy analysis techniques to stereotypical problems; learns to design, implement and apply energy systems models to a given assessment.
- Student understands: why energy systems (rather than descrete energy technology) are important and how energy systems affect sustainability outcomes; the process of energy-environment-economic (3E) modeling: knowing why modelling is important, as well as who the stakeholders and decision-makers are; introduction to the formulation of accounting, econometric, input-output and optimization modeling; development of energy service and energy demand projections; characterization of resources, technologies, economic, policy, and other elements to be considered within the modeling process; the role of scenarios and assumptions (forecasting, backcasting and so forth) and the importance of transparency; the relationship between modeling and action (policy, investment formulation, technology development); typical model scopes, types and their application; assessment of limitations and dealing with uncertainty.
- Combining theoretical and practical experience; close collaboration with industry during Master's thesis work and organizing excursions during the courses to provide versatile and hands-on knowledge.
Year 1 at Aalto University: Department of Mechanical Engineering.
Year 2 at Chalmers University of Technology: Department of Space, Earth and Environment.
The Heat and Power Engineering study track meets the challenges set by global warming and depletion of fossil fuel resources by providing high quality education in advanced technologies and systems for an efficient, clean and competitive conversion, distribution and use of electricity, heating and cooling. Training is offered in the use of optimization and modelling tools for design and planning on the technical plant level (including state-of-the-art technologies) at the same as necessary knowledge on energy systems is given to gain perspective. The enormous transformations needed in the energy system in the future makes the competence and know-how provided by the training indespensible and highly valuable.
Learning outcomes:
- Students become skilled in analysis, optimization and design of combined heat and power plants as well as industrial heat processes, acquiring also knowledge on technologies for fuel conversion with reduced or zero CO2 emissions (biomass and waste conversion, carbon capture and storage technologies).
- Students acquire complementary knowledge on an energy systems level, which trains them to approach problem-solving in an interdisciplinary way.
- Students prepare for a professional career within the energy industry and power generation companies.
- Combining theoretical and practical experience; close collaboration with industry during Master's thesis work and organizing excursions during the courses to provide versatile and hands-on knowledge.
Year 1 at KTH Royal Institute of Technology: Department of Energy Technology.
Year 2 at DTU Technical University of Denmark: Department of Management Engineering.
The System Integration of Wind Power study track trains students to achieve a general and wide-ranging understanding of wind energy as part of the total energy system. Students gain specific knowledge on wind turbines, but also on the various technologies related to wind energy in a system context. Training combines socio-economic aspects of sustainable energy with relevant technical disciplines, such as measurement techniques, design of wind turbines, planning and development of wind farms, grid integration of wind energy systems and relation to smart grid development.
Learning outcomes:
- Students are equipped with skills needed to be able to analyse, design, develop and operate wind energy systems.
- Students prepare for a professional career within the rapidly expanding wind energy sector, including engineering companies and public bodies carrying out planning and development wind power and energy systems.
- Combining theoretical and practical experience; close collaboration with industry during Master's thesis work and organizing excursions during the training to provide versatile and hands-on knowledge.
Kansainvälistyminen
Ohjelma toteutetaan vahvassa kansainvälisessä yhteistyössä Nordic5Techin kumppaniyliopistojen kanssa ja kansainvälinen liikkuvuus on olennainen osa opintoja.
Jatko-opintomahdollisuudet
Maisteriohjelma antaa valmiudet jatkaa tohtoriopintoihin.
Uramahdollisuudet
Valmistumisensa jälkeen opiskelijalla on kaksi maisterin tutkintoa eri pohjoismaisista yliopistoista, mikä avaa ovet työmarkkinoille maailmanlaajuisesti. Innovatiivisena kestävän energian insinöörinä on laajat mahdollisuudet työllistyä sekä kansainvälisiin että kotimaisiin energia-alan asiantuntijatehtäviin. Energiatekniikan yrityksillä on kasvava tarve tulevaisuuden tekijöille ja jatkuvasti kasvava urapotentiaali tarjota asiantuntijoille, ei vain perinteisten energiateknologioiden, vaan myös kasvavan uusiutuvan energian alalla.
Tutkimuksen painopisteet
Aalto-yliopiston energiatekniikan tutkimuksen pääpainot:
- Energiatehokkuus on keskeisessä asemassa yhteiskuntien kestävän tulevaisuuden kehittämishaasteiden ratkaisemisessa, sillä kaikenkokoisia energiajärjestelmiä on optimoitava.
- Energian muuntaminen. Polttotekniikan kehittäminen on keskeinen keino vähentää energiatuotannon päästöjä, etenkin kun ihmiskunta siirtyy uusiin bioperäisiin polttoaineisiin. Tutkimuksessa hyödynnetään sekä empiiristä että laskennallista termodynamiikkaa.
Yhteistyö muiden toimijoiden kanssa
Ohjelmaan osallistuvat Nordic Five Tech yliopistot ovat teknisten yliopistojen kansainvälistä huippua ja ylläpitävät erittäin korkeita akateemisia standareja, tarjoten opiskelijoille erinomaiset mahdollisuudet opiskella itseään kiinnostavia aiheita. Kukin yliopisto työskentelee läheisesti paikallisen energiasektorin ja energia-alan yritysten kanssa.
Admission timeline
The admission process is coordinated by Aalto University. Link to the application form (Studyinfo.fi) appears on these pages when the application opens.
For studies beginning in the autumn of 2023, the admission timeline is as follows:
December 1, 2022 at 9 AM (UTC +2) | Application period starts and online application form in Studyinfo opens |
January 15, 2023 at 3 PM (UTC +2) | Application period ends and online application form in Studyinfo closes |
January 23, 2023 at 3 PM (UTC +2) | Deadline for application documents to be uploaded to application form |
January – March 2023 | Eligible applications undergo academic evaluation |
Beginning of April 2023 | Admissions results published |
May 26, 2023 at 3 PM (UTC +3) | Deadline for submitting certified (attested) hard copy documents |
July 31, 2023 | For applicants who applied with an incomplete degree: Deadline for graduation |
August 17, 2023 at 3 PM (UTC +3) | For applicants who applied with an incomplete degree: Deadline for submitting certified copy of degree certificate |
End of August 2023 | Studies begin with orientation week at first-year university |
General academic requirements
The following apply to all applicants regardless of study track. Please note that each study track still has its own requirements and they are presented further down on this page.
- A BSc degree or equivalent corresponding to a minimum of 180 ECTS credits. Students in their final year of their Bachelor's studies are eligible to apply, provided they complete their Bachelor's degree by 31 July and submit the degree certificate (and official translation if needed) by the given deadline.
- The institution that has awarded the degree must be a recognized part of the official national education system of the country, i.e. to be listed as a degree-granting higher education institution by the country where it is located or by a relevant international organisation (such as UNESCO).
- The applicant's qualifications should include the following minimum requirements:
- A minimum of 20 ECTS credits of mathematics including linear algebra, calculus and differential equations.
- A minimum of 5 ECTS credits of statistics.
- Numerical methods and elementary programming using e.g. MATLAB or a similar programming language.
Study track spesific requirements
A BSc degree corresponding to a minimum 180 ECTS credits in one of the following fields: Energy Engineering, Mechanical Engineering or Chemical Engineering.
Applicants must also document that they have fulfilled the following minimum requirements:
- Mathematics: 20 ECTS including linear algebra, calculus and differential equations
- Thermodynamics and heat transfer: 5 ECTS
- Energy & Environment: 5 ECTS
- Statistics and dynamics: 5 ECTS
- Fluid mechanics: 5 ECTS
- Materials science: 5 ECTS
Moreover, the applicant must have sufficient qualifications within numerical methods and elementary programming using e.g. MATLAB or a similar programming language.
A BSc degree corresponding to a minimum 180 ECTS credits in an engineering field with a background of energy, economics and mathematics or equivalent.
Applicants must also document that they have fulfilled the following minimum requirements:
- Mathematics and/or statistics: 20 ECTS
- Energy and/or Environment-related courses: 10 ECTS
Applicants with knowledge of numerical methods and basic programming using e.g. MATLAB or a similar programming language will be given precedence for admission.
A BSc degree corresponding to a minimum 180 ECTS credits in one of the following fields: Mechanical Engineering, Chemical Engineering or Chemistry and Physics.
Applicants must also document that they have fulfilled the following minimum requirements:
- Mathematics: 21.5 ECTS including linear algebra, calculus and differential equations
- Thermodynamics: 6 ECTS
- Heat transfer: 6 ECTS
- Fluid mechanics: min. 5 ECTS
The applicant’s qualifications must include a strong working knowledge of mathematics and energy/thermal engineering.
Applicants with knowledge of numerical methods and basic programming using e.g. MATLAB or a similar programming language will be given precedence for admission.
A BSc degree corresponding to a minimum of 180 ECTS credits in one of the following fields: Mechanical Engineering, Electrical Engineering or other relevant BSc.
Applicants must also document that they have fulfilled the following minimum requirements:
- Mathematics: 25 ECTS including linear algebra, calculus and differential equations
- Statistics and probability theory: 5 ECTS
- Electric circuits/Circuit analyses: 5 ECTS
- Basics in control systems
- Basics in electrical machines
- Basics in fluid mechanics
Moreover, the applicant must have sufficient qualifications within numerical methods and elementary programming using e.g. MATLAB or a similar programming language. Students without this qualification must be prepared to complete these during the first year.
English language requirements and exemptions
To be eligible to apply to the programme, applicants must demonstrate their proficiency in English with an accepted proof of language proficiency or by meeting the language test exemption criteria.
Below are presented the acceptable English language tests and their minimum scores:
- IELTS Academic: overall score 6.5, and writing score 5.5
- For 2023 admissions, test results are valid if the test was taken on or after 1 December 2020. Aalto University accepts also IELTS Indicator (Academic) test.
- TOEFL iBT (Internet-based Test): 92, and 22 for Writing or
TOEFL PDT (Paper-delivered Test): Reading 22, Listening 22, and Writing 24- For 2023 admissions, test results are valid if the test was taken on or after 1 December 2020. Aalto University accepts also TOEFL iBT® Home Edition test, but TOEFL Essentials or TOEFL ITP tests are not accepted.
- Pearson Test of English Academic (PTE A): 62, and 54 for Writing
- For 2023 admissions, these test results are valid if the test was taken on or after 1 December 2020.
- C1 Advanced (formerly known as Cambridge Certificate in Advanced English, CAE): A,B or C
C2 Proficiency (formerly known as Cambridge Certificate of Proficiency in English, CPE): A,B,C or Level C1- Only electronically verifiable tests taken after 2005 are accepted.
English language test exemptions apply if the applicant has:
- Completed a higher education degree instructed in Finnish, Norwegian, Swedish, Danish or English at a higher education institution in Finland, Norway, Sweden or Denmark (while residing in that country).
- Completed a higher education degree instructed in English at a higher education institution that is physically located in one of the following countries: EU/EEA country, Australia, Canada, New Zealand, South Africa, Switzerland, the United Kingdom or the United States (while residing in that country).
- Completed both primary and secondary education in English in an EU/EEA country, Australia, Canada, New Zealand, South Africa, Switzerland, the United Kingdom or the United States (while residing in that country).
When applying for an exemption, English as the language of instruction must be stated unambiguously on the certificate (e.g., school leaving certificate / secondary-school final certificate, degree certificate or transcript of records). If there are several instruction languages, the document must clearly indicate the amount of studies taken in English.
Also note that a minimum of one half of the degree must be completed in a country and higher education institution that meets the requirements for exempting the student from taking an English language test.
Application documents
Please prepare to attach the following documents to your application form:
- Bachelor’s degree certificate and transcript of study records (if you apply with incomplete degree, attach only the latest transcript of records)
- Curriculum Vitae – preferably 1 page, content and design free-form
- Motivation letter – preferably 1 page, content and design free-form
- Copy of valid passport or ID card with photo and information on citizenship
- English language test certificate or document(s) that validate meeting exemption criteria
Do not include any additional attachments (e.g., letters of recommendation or extra-curricula training certificates). Additional attachments are not taken into account in the evaluation and they will only slow down the processing of the application.
Yhteystiedot
Joint Masters Team
(Ohjelman sisältöön ja opintoihin sekä hakukohdekohtaisiin [CV, motivaatiokirje, suositukset] dokumentteihin liittyvät kysymykset)
Hakijapalvelut
(Hakuprosessiin, yleiseen hakukelpoisuuteen ja kielitaidon osoittamiseen liittyvät kysymykset)
+358 2944 29290