Monsterboy said:
I read about specific impulse and what it means for a rocket ,i read a number of published papers but all of them were concerned about design,construction and testing of the engine. I could not find any information about how exactly specific impulse is varied and reason behind the inability of other ion thrusters to do this.
Most ion thrusters are on/off sorts of beasts. There's only one flow rate, only one exhaust velocity. This simplifies the design considerably, and also keeps the electrical power consumption down to a manageable rate. However, this means the thrust is inevitably very low. They have a very high specific impulse but that low thrust means they can't be used for anything big, or for anything that needs to get from point A to point B quickly. These thrusters are for tiny vehicles that can get by with going from point A to point B at a snail's pace.
VASIMR is an attempt to address the shortcomings of ion thrusters while maintaining that key advantage of high specific impulse. The specific impulse drops markedly when VASIMR is used to provide high thrust.
The concept of specific impulse itself is a bit confusing for me,it is one of the ways of measuring rocket efficiency, right? it can be measured either in terms of exhaust velocity(m/s) or in terms of time (sec) i.e the amount of time the propellant will last.
Think of it as exhaust velocity. That, along with the exhaust mass flow rate tells you both thrust and energy consumption.
It's also best not to think of Isp as indicative of "efficiency", whatever that means. (There are a number of definitions of rocket efficiency; none are particularly useful.)
If the exhaust velocity is constant, there's an optimal exhaust velocity to obtain a given delta v. Too low an exhaust velocity means low thrust. The rocket doesn't go anywhere unless it carries a huge amount of fuel. Too high an exhaust velocity means too much energy is pumped out as exhaust. The rocket once again doesn't go anywhere unless it carries a huge amount of fuel. There's a happy optimum, exhaust velocity equal to about 5/8 the desired delta v, that minimizes the energy needed to achieve that delta v.
As a good example, the first stage of the Saturn V rocket used kerosene rather than hydrogen as the fuel. Why? The answer is that hydrogen with it's higher specific impulse was too high. Even kerosene was a bit high for the job of the Saturn V first stage. Hydrogen would have been overkill.