mr nkosi is going to save my NSC results😭❤

You are a life saver Mr Nkosi 🥺🙏❤️,I appreciate you😊

Mr nkosi. a question on your free body diagram for block P are we not supposed to have tension??

❤Sir uyafundisa iyhoo😮 ande you are patient and you explain in detail 😭❤️ FRIDAY NGIYA PASSA NOMA KANJANI🔥😌

Yhooo😭🔥the best teacher ever☑️😭🔥🔥

sir is not speaking the foreign language of physics but he is speaking english ...... that one that disliked go and argue with your ancestors

Thank you. Keep them. Coming, I'm writing next month

Mr Nkosi can you pls do a question paper where by we are calculating a frictional force but we are not given coefficient.

This is quite helpful, and thank you. At 01:03:51, when drawing the free body diagram, what should be shown, the force applied or just the vertical and horizontal components, or both?

For the 5Kg, aren’t we supposed to get the friction to the right and tension going to the left? Tension? String?

Sir at 1:11:30 why is our t value 9.8m besides it being given i wouldve assumed t was unknown

I used the 2m.s acceleration .got the same answer as your for F =9.24N . But the issues is now My T=7N not 3 N. Please make me understand Malume. At 51:51

Sir, Is it wrong to have the friction force oppose the Applied force in almost all cases? Instead of drawing the force to the left I draw it opposite the FApplied?

Sir I am confused as to the statement told us that the constant speed is 2m/s-² and on question 2.3 the speed was zero. In my calculations I included the 2m/s-² and got the Force to be 25,40N. Can you please clarify for me on that🙏

Sir can frictional force magnitude be greater than the applied force? And at what instances does that happen?

I didn't do well with my Term 1 but I know I will do better with my Grade 12

Mr Nkosi l would like to inquire..on the past paper Q2 on 2.3...when drawing full body diagram for force F do we leave out the tension?

Sir even if we are given the value of acceleration, but they say forces are moving at constant speed is our fnet still equals to 0? If yes then when are we going to use the acceleration value?

Thank ye for making physics easier

Thank you so much mr Nkosi❤❤😭. Are we allowed to draw the second a free body diagram that includes fx and fy instead of the first one?💙

Sir we don't include -T in diagram for 5kg? For Fnet?

So sir even if the acceleration was given...will it always be equal to 0 if its constant speed?

From the first illustration in the video, if you are only given the weight of the body at rest and coefficient of friction and Force is applied at an unknown angle. What is the the value of F applied in order for the body to move?

So sir, how would you do it if you didn't have the 2kg block and you weren't given friction force?

Sir by the last paper 2.4.1) doesn't the tension increase because you decreasing the mass therefore you increasing the acceleration which mean the fnet increases because its directly proportional to the accerleration

This is really helpful 🤴🔥

I'm learning alot 😊

May God bless you🕯. I owe you one!

Thanks you . Can I ask , for the 5kg block why didn't you count tension when you were writing the equation

Sir on 5kg block you didn't include tension ??

Thank you so much sir, it now clear on side 🤗

Why did you calculate the kinetic friction using Fy instead of Fx

Thank you so much for this!

Goood day I just wanna ask how do you get 9.24 but I get 8.9 can you pls help me understand maybe I'm using my calculator wrong thank you .

Why the acceleration is =0?

Syabonga sir

Asbonge Mlotshwa 🙏🏾

Sir for 2.3 is the acceleration not given as 2

ohh never mind😁

Why did u exclude tension

Thank you so much❤

Sir How do we calculate the magnitude of a net force acting on a object

sir please can you do vectors and working out vectors

👏👏👏👏👏👏

Hi sir the tension is 32.03 N. You made a mistake with the 4kg block as it was minus fg|| minus ff

Good day sir ... There is something that I would like to know.For Question 2 2.3 I did as follows For 20 kg Take right as - Fnet = 0 Fax - T - FF =0 35cos40° - T - 5 = 0 35cos40° - 5 = T......(1) For m T - Fg = 0 T - m(9.8) =0 T=m(9.8) Sub equ 2 in equ 1 35cos40° - 5 = m(9.8) 21,81÷9.8 = m(9.8) ÷ 9.8 m=2.23 kg But then I realised my mistake...but I still have a question,is it possible that the way I substituted can be corrected/marked well of course 😂beside final answer?

Thank U sir

King Nkosi

Oh my GOD. I got lost at 46 mins. I don't understand. 😩😩