You are welcome!

Thank you for your lovely comment.

+Rahul Jha Thanks. Glad to know my work is appreciated.

I am also from the same country from which you are.

+Shoaib Rashid If you assumed the net force is constant, then the acceleration is constant, then you can use a Uniformly Accelerated Motion equation in your derivation. I prefer this derivation; it's more fun.

+Flipping Physics While deriving Bernoullis Equation, don't we take work to be equal to change in kinetic energy as well?

+Shoaib Rashid I think it is derived using conservation of energy.

Thank you!

wow, it worked!!.. using dp/dt for F in the W =Fx :D . thanks for the Inspiration!!

That is cool!

I love the word _whilst_

why is it not favored by mathematicians?

Hes a wizard

I hope it went well.

+kevin how I am not currently planning to do this. I already have all of my in-class lecture videos on my website. This includes ~40 hours of calculus based physics videos. flippingphysics.com/calculus.html I know they are not as clear as my Flipping Physics videos, however, the lecture notes are there as well, which helps.

Is there a more rigorous way to change the integral so that it's a dv integration?

Yes. You are correct. We used the form of Newton's Second Law which is only applicable for constant mass objects. So this would not be applicable for variable mass systems such as rockets. Thanks!

Flipping Physics Glad to know that! Btw the vid is simply superb!!

Thanks. Glad to be able to help you learn!

Each position will correspond to a particular velocity though. Once the integral has been expressed in terms of velocity, we only need the starting and ending velocities to evaluate it.

If v were completely independent of x, then dv/dx would equal zero, and you would get nowhere by doing that. But because v, x, and t are all interdependent on each other as kinematics quantities, you will get a derivative dv/dx and dx/dt.

You are welcome!

Glad it helped!

MAGIC!!

Ansariz Bros The sorcery of video editing.

Glad to able to help you out.

+Keshav Karat Watch carefully. For some reason I accidentally to wrote dx with the x as a subscript, which doesn't make any sense. So I moved the x up to be in line with the d, however, when my head gets in the way, it doesn't work.

dv (dx/dt) equals (dv/dt) dx, however, (dv/dt) dx does not progress forward in solving the problem.

Seems kinda weird, because if this would be derived for the first time, someone would have intuitively, cancelled out the dx's in the bracket and gotten (dv/dt) dx, however it would lead to deadline (since you just said it would not progress forward in solving the integral). Or mabye this needs some deeper math understanding that I dont have. But thanks :D

lol lolzi there is a formal way of deriving this wich doesnt involve tricks like this. It only requires a definition of the rieman integral and and the mean value theorem

PD. en.wikipedia.org/wiki/Line_integral i recommend you seeing the actual definition of line integral

You are welcome!

The acceleration of an object experiencing constant force will be constant. The acceleration comes directly from Newton's Laws (a=F/m); for most mechanics problems, you consider conservation of momentum above that of energy. That isn't to say that energy isn't conserved, just that there are more ways that it can be dissipated, so is generally more difficult to work with. Now in your example: if thrust is constant then the energy being produced by [chemical reactions in] the engines is constant. As you appear to have noticed however, the rate of change in kinetic energy (or "power," dE/dt) of the rocket starts low, and increases over time. To ensure conservation of energy, we have to assume that there is somewhere else that the kinetic energy is going, and that this energy loss changes in the opposite direction, i.e. the loss decreases over time. The answer is to consider the fuel being flung out of the exhaust. As the rocket starts off, it's change in speed is small, but the exhaust gasses are accelerated in the opposite direction to massive speed, so gain a large amount of kinetic energy. Later on however, because the exhaust gasses are flung in the opposite direction to the motion of the rocket, they are having to "slow themselves down, and then accelerate again," so gain less energy. Example: The rocket engines are designed so they have a certain "exhaust velocity", say, 1000m/s. When the rocket is stationary, the Kinetic energy gained by a particle emitted is 1/2*m*1000^2. Later on the rocket is in motion, say at a speed of 200m/s. For a stationary observer, a particle will be travelling at 200-1000=-800 m/s (-800 m/s, means 800 m/s in the opposite direction). The *change in* KE of the particle will be KEfinal-KEinitial=1/2*m*(-800)^2 - 1/2*m*(200)^2 = 1/2*m*632^2. (Much lower).

A rocket is a system of varying mass. You need to integrate the total impulse of the thrust force from the fuel, and then apply it as the change in momentum of the remaining payload. The total mass will decrease over time, so its acceleration will consistently increase if its propellant is burned at a constant rate.

I don't have one, sorry.

ok... i guess i need to take the course again. lol

This is the chain rule for finding derivatives.

You are welcome.

+Zuzu Superfly Thanks, that is a valid point. I do describe the calculus equations as "instantaneous velocity" and "instantaneous acceleration", however, it would have been more clear to also refer to the algebra equations as "average velocity"' and "average acceleration". It's not worth redoing the videos over, however, I will keep it in mind for the future and I have updated the lecture notes on my webpage to make it more clear. Thanks. FYI: If you are interested in seeing my video on Newton's First Law, you can see it here: www.flippingphysics.com/first-law.html

Yes

❤️

Any question where you use the concept of kinetic energy as a shortcut to solve, is where you would use this information. You don't need to derive it from first principles every time, but this is to give you an idea of what is behind the equation of KE=1/2*m*v^2.

+Abdulkadir Akti 1) If the force is not the net force then you are not able to substitute in "mass times acceleration" for "net force" and the derivation does not work. So yes, it has to be the net force. 2) If you are referring to gravitational potential energy then the net work will include the work done by the force of gravity. If you are referring to elastic potential energy then the net work will include the work done by the force of the spring.

Flipping Physics is this valid for kinematic as well, I was wondering if acceleration is not constant , what whole equations looks like?

I would like to translate all your videos to Turkish

+Abdulkadir Akti Net Work equals Change in Kinetic Energy is valid if acceleration is not constant as well. I'm not sure what you are asking with "what whole equations looks like?"

+Abdulkadir Akti Translations to Turkish would be awesome. Instructions are posted at flippingphysics.com/translate.html Thanks!

Actually, this particular derivation is for AP Physics C which is a calculus based physics course and most high school students do not take this class.

That's great. Glad to help.

Please watch this: www.flippingphysics.com/energy-transfer-system.html

It's a dot product of velocity and change in velocity. That's how it becomes a scalar quantity.

+decorative ideas Good luck!

Thanks!

Sentiment enjoyed. Though I am certainly not perfect...

and also with you.

Ooooh, I love naps!

Thanks!

Thank you!

+Swati Jain Nope. Not really a gamer. In my youth I played some computer games, now I find other ways to fill my time. I make these videos, for example.

Most welcome 😊

welcome...

The constant is added when doing _indefinite_ integrals. This problem uses a _definite_ integral.

good.

If you post it on my Facebook page, I'll take a look at it. facebook.com/FlippingPhysics

Think about what dx means. It means infinitesimal change in the value of x. If we are talking about a change between the same two instants in time, you can cancel the dx, because it is the same change of position during this time.

Journalism is a noble career.

@@FlippingPhysics not easy also

agreed

absohlutelyyyyyyyy