950 resultados para HVDC transmission cables


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The two independent components of the gyration tensor of quartz, g11 and g33, have been spectroscopically measured using a transmission two-modulator generalized ellipsometer. The method is used to determine the optical activity in crystals in directions other than the optic axis, where the linear birefringence is much larger than the optical activity.

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In this master's thesis a mechanical model that is driven with variable speed synchronous machine was developed. The developed mechanical model simulates the mechanics of power transmission and its torsional vibrations. The mechanical model was developed for the need of the branched mechanics of a rolling mill and the propulsion system of a tanker. First, the scope of the thesis was to clarify the concepts connected to the mechanical model. The clarified concepts are the variable speed drive, the mechanics of power transmission and the vibrationsin the power transmission. Next, the mechanical model with straight shaft line and twelve moments of inertia that existed in the beginning was developed to be branched considering the case of parallel machines and the case of parallel rolls. Additionally, the model was expanded for the need of moreaccurate simulation to up to thirty moments of inertia. The model was also enhanced to enable three phase short circuit situation of the simulated machine. After that the mechanical model was validated by comparing the results of the developed simulation tool to results of other simulation tools. The compared results are the natural frequencies and mode shapes of torsional vibration, the response of the load torque step and the stress in the mechanical system occurred by the permutation of the magnetic field that is arisen from the three phase short circuit situation. The comparisons were accomplished well and the mechanical model was validated for the compared cases. Further development to be made is to develop the load torque to be time-dependent and to install two frequency converters and two FEM modeled machines to be simulated parallel.

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Tässä työssä on tutkittu tasasähkönsiirron tuomia mahdollisuuksia sähkönjakelussa, kun pienjännitedirektiivin pienjännitemäärittelyn soveltamista laajennetaan koskemaan vaihtojännitteen lisäksi myös tasajännitettä. Aiemmin tasasähköjärjestelmiä on käytetty ainoastaan sähköistymisen alkuaikoina 1900-luvun alussa. Viime vuosikymmeninä on sähkönjakelussa käytetty pelkästään vaihtosähköverkkoja, koska tehoelektronisten laitteiden korkea hintataso ja tekniset ominaisuudet ovat mahdollistaneet tasasähkön käytön vain suurjännitteellä. Suomalaisten sähkönkäyttö on lisääntynyt muutamalla prosenttiyksiköllä vuosittain ja kasvun taantumista ei ole odotettavissa lähiaikoina. Samaan aikaan yhteiskunta muuttuu jatkuvasti yhä riippuvaisemmaksi sähköstä ja odotukset toteutuvasta sähkönlaadusta ovat jatkuvasti korkeammat. Sähkönlaadun näkökulmasta ilmasto on tuonut aiempia suurempia haasteita sähkön toimitusvarmuudelle, kun myrskyjen aiheuttamat tuhot ovat olleet yhä entisiä suurempia. Toimitusvarmuuden parantamiseksi ovat muutamat vuosikymmenen alun rajut myrskyt johtaneet pohdintaan tulevien haasteiden hoitamiseksi ja edelleen uuden 3-portaiseen 20/1/0,4 kV vaihtosähköjärjestelmän kehittämiseen. Tasasähkönsiirron avulla halutaan tuoda käyttöön niitä hyötyjä, joita järjestelmän vaihdolla on saavutettavissa. Täysimääräisellä tasajännitteen hyödyntämisellä voidaan saavuttaa mm. aiempaa edullisempia investointivaihtoehtoja,parempi sähkönlaatu, parempi hajautetun tuotannon liitettävyys verkkoon ja erilaisten asiakaskohtaisten laitteiden helppo integroitavuus osaksi jakelujärjestelmää. Tämän työn puitteissa on pohdittu sekä teknisiä ratkaisuja että järjestelmän teknistaloudellista käyttöaluetta. Lisäksi on pyritty hahmottamaan eri tekijöiden vaikutuksia sähkönjakeluun.

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The regulation of electricity transmission and distribution business is an essential issue for any electricity market; it is widely introduced in developed electricity markets of Great Britain, Scandinavian countries and United States of America and other. Those markets which were liberalized recently also need well planned regulation model to be chosen and implemented. In open electricity markets the sectors of electricity distribution and transmission remain monopolies, so called "natural monopolies", as introducing the competition into these sectors in most cases appears to be inefficient. Thatis why regulation becomes very important as its main tasks are: to set reasonable tariffs for customers, to ensure non-discriminating process of electricity transmission and distribution, at the same time to provide distribution companies with incentives to operate efficiently and the owners of the companies with reasonable profits as well; the problem of power quality should be solved at the same time. It should be mentioned also, that there is no incentive scheme which will be suitable for any conditions, that is why it is essential to study differentregulation models in order to form the best one for concrete situation. The aim of this Master's Thesis is to give an overview over theregulation of electricity transmission and distribution in Russia. First, the general information about theory of regulation of natural monopolies will be described; the situation in Russian network business and the importance of regulation process for it will be discussed next. Then there is a detailed description ofexisting regulatory system and the process of tariff calculation with an example. And finally, in the work there is a brief analysis of problems of present scheme of regulation, an attempt to predict the following development of regulationin Russia and the perspectives and risks connected to regulation which could face the companies that try to enter Russian electricity market (such as FORTUM OY).

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In the electrical industry the 50 Hz electric and magnetic fields are often higher than in the average working environment. The electric and magnetic fields can be studied by measuring or by calculatingthe fields in the environment. For example, the electric field under a 400 kV power line is 1 to 10 kV/m, and the magnetic flux density is 1 to 15 µT. Electricand magnetic fields of a power line induce a weak electric field and electric currents in the exposed body. The average current density in a human being standing under a 400 kV line is 1 to 2 mA/m2. The aim of this study is to find out thepossible effects of short term exposure to electric and magnetic fields of electricity power transmission on workers' health, in particular the cardiovascular effects. The study consists of two parts; Experiment I: influence on extrasystoles, and Experiment II: influence on heart rate. In Experiment I two groups, 26 voluntary men (Group 1) and 27 transmission-line workers (Group 2), were measured. Their electrocardiogram (ECG) was recorded with an ambulatory recorder both in and outside the field. In Group 1 the fields were 1.7 to 4.9 kV/m and 1.1 to 7.1 pT; in Group 2 they were 0.1 to 10.2 kV/m and 1.0 to 15.4 pT. In the ECG analysis the only significant observation was a decrease in the heart rate after field exposure (Group 1). The drop cannot be explained with the first measuring method. Therefore Experiment II was carried out. In Experiment II two groups were used; Group 1 (26 male volunteers) were measured in real field exposure, Group 2 (15 male volunteers) in "sham" fields. The subjects of Group 1 spent 1 h outside the field, then 1 h in the field under a 400 kV transmission line, and then again 1 h outside the field. Under the 400 kV linethe field strength varied from 3.5 to 4.3 kV/m, and from 1.4 to 6.6 pT. Group 2spent the entire test period (3 h) in a 33 kV outdoor testing station in a "sham" field. ECG, blood pressure, and electroencephalogram (EEG) were measured by ambulatory methods. Before and after the field exposure, the subjects performed some cardiovascular autonomic function tests. The analysis of the results (Experiments I and II) showed that extrasystoles or arrythmias were as frequent in the field (below 4 kV/m and 4 pT) as outside it. In Experiment II there was no decrease detected in the heart rate, and the systolic and diastolic blood pressure stayed nearly the same. No health effects were found in this study.