Hvdc There Have Been A Number Of Research Paper

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HVDC There have been a number of recent and important developments in the High Voltage Direct Current (HVDC) method of electrical power transmission. Many of these developments are directly related to the inverter and converter aspects of transmission. These developments become clear as to their importance with the usage trend towards HVDC and away from Alternate Current (AC) transmissions. Since most experts agree that HVDC is a much more efficient method of transmission than AC, it is likely that the global trend of using and implementing HVDC over AC will continue; therefore any improvements in the manner in which it HVDC is converted (especially if such conversions improve the transmission method) become important as well.

One of the primary advances that have come about concerning power transmission is the manner in which engineers can now interact with simulations of various changes, and the effects those changes will have on the overall HVDC process. Simulations such as these were not as readily available in previous years as they are today. A number of design tools and design software ensures that engineers can now "rapidly and easily build models that simulate power systems" (Alasooly, Redha, 2010, p. 120). It is certain that technology has had a strong influence on the manner in which improvements are now made to transmission systems; these technologies have opened doors through which engineers can simulate different methods and styles of inverters and converters to determine almost immediately how those changes will affect the overall transmission process. As Alasooly and Redha explain "requirements for drastically increased efficiency have forced power system designers to use power electronic devices and sophisticated control system concepts that tax traditional analysis tools and techniques" (p. 120).

The Alasooly and Redha study determined that Metlab SimPowerSystems provided the capabilities to test various inverters and converters in an efficient and effective manner. Having the technology available to test various...

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One type of inverter improvement that is now being studied is called the three-level space phasor generation method. This is accomplished through the use of hybrid pulse width modulation (PWM) for dual two-level inverters. A recent study found that "it is determined through stimulation studies that three-level space phasor generation is possible using the proposed hybrid PWM switching strategy for the dual two-level inverter feeding induction motor with open-end windings" (Srinivas, Ramachandrasekhar, 2010, p. 146). The style of induction motor Srinivas and Ramachandrasekhar refer to is a three-phase open end winding inductions motor drive. Transmission can be obtained and regulated through this type of motor drive "by opening the neutral point of the star connected stator windings of the conventional three-phase induction motor and feeding the motor from both ends with two three-phase two-level inverters" (p. 141). This study would not have likely taken place without the assistance of the simulation tool(s) that are now available for engineer's use.
Additionally, technology has also allowed studies in the efficiency of conductors and how effective they are in transmissions. Technology can also determine the effects of changes in conductor methodology takes place (negatively or positively). One study determined that something as simple as an air-gap slit "eliminates flux contribution from two adjacent line sectors and allows only one dominant flux to exist -- that which is generated by a line conductor in its line sector" (Meah, Ula, 2008, p. 214).

A line conductor that allows this type of generation is a good thing because there are limitations to how line-commutated converters can be used in HVDC transmissions. A line commutated converter is what is commonly used in today HVDC transmission process but that is changing. One of the earlier changes made is the implementation of a capacitor-commutated converter (CCC). The CCC is…

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References

Alasooly, H. & Redha, M.; (2010) Simulation of some of the power electronics case studies in Matlab Simpowsystem Toolbox, AIP Conference Proceedings, Vol. 1239, Issue 1, pp. 120 -- 133

Arrillaga, J.; Liu, Y.H.; Watson, N.R.; Murray, N.J.; (2009) Self-commutating converters for high power applications; New York: John Wiley and Sons

Chaves, M.; Margato, E.; Silva, J.F.; Pinto, S.F.; Santana, J.; (2011) HVDC transmission systems: Bipolar back-to-back diode clamped multilevel converter with fast optimum-predictive control and capacitor balancing strategy, Electric Power Systems Research, Vol. 81, Issue 7, pp. 1436-1445

Meah, K. & Ula, A.H.M.; (2008) Simple fuzzy self-tuning PI controller for multi-terminal HVDC transmission systems, Electric Power Components and Systems, Vol. 36, Issue 3, pp. 224-238


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