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Overview

Have 3 years private teaching experience primarily in Mathematics for JEE and Class IX-X levels. Can also take up major portions of Physics/Chemistry for Classes IX-XI.

Languages Spoken

English

Hindi

Education

IIT 2002

Bachelor of Technology (B.Tech.)

Address

Marathahalli Ramesh Nagar, Bangalore, India - 560017

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Teaches

Quantitative Aptitude Coaching

Class Location

Online (video chat via skype, google hangout etc)

Student's Home

Tutor's Home

Teaching Experience in detail in Quantitative Aptitude Coaching

Will be able to tech only if material is provided. Can take up topics randomly if required.

Class 9 Tuition

Class Location

Online (video chat via skype, google hangout etc)

Student's Home

Tutor's Home

Years of Experience in Class 9 Tuition

2

Board

ICSE

ICSE Subjects taught

Mathematics, Chemistry

Experience in School or College

Private Coaching Institute

Taught in School or College

Yes

Class 10 Tuition

Class Location

Online (video chat via skype, google hangout etc)

Student's Home

Tutor's Home

Years of Experience in Class 10 Tuition

2

Board

ICSE

ICSE Subjects taught

Mathematics, Chemistry

Taught in School or College

No

Engineering Entrance Coaching classes

Class Location

Online (video chat via skype, google hangout etc)

Student's Home

Tutor's Home

Years of Experience in Engineering Entrance Coaching classes

3

Engineering Entrance Exams

IIT JEE Coaching Classes

IITJEE Coaching

IIT JEE Foundation Course, IIT JEE Crash Course

Type of class

Crash Course, Regular Classes

IIT-JEE Subjects

Physics , Maths

Teaching Experience in detail in Engineering Entrance Coaching classes

Good subject matter expertise in all relevant topics of the syllabus.

Class 11 Tuition

Class Location

Online (video chat via skype, google hangout etc)

Student's Home

Tutor's Home

Years of Experience in Class 11 Tuition

2

Board

ISC/ICSE

ISC/ICSE Subjects taught

Physics, Mathematics

Taught in School or College

No

Teaching Experience in detail in Class 11 Tuition

Good Subject matter knowledge when handling problems in the past.

Class 12 Tuition

Class Location

Online (video chat via skype, google hangout etc)

Student's Home

Tutor's Home

Years of Experience in Class 12 Tuition

2

Board

ISC/ICSE

ISC/ICSE Subjects taught

Physics, Mathematics

Taught in School or College

No

Teaching Experience in detail in Class 12 Tuition

Good Subject matter knowledge when handling problems in the past.

Reviews

No Reviews yet!

FAQs

1. Which classes do you teach?

I teach Class 10 Tuition, Class 11 Tuition, Class 12 Tuition, Class 9 Tuition, Engineering Entrance Coaching, Mathematics Tuition and Quantitative Aptitude Classes.

2. Do you provide a demo class?

Yes, I provide a free demo class.

3. How many years of experience do you have?

I have been teaching for less than a year.

Answers by Gaurav (17)

Answered on 22/09/2018 Learn CBSE/Class 11/Science/Physics/Unit 6-Gravitation/Chapter 8-Gravitation

The initial energy consisting of kinetic and potential would be -GMm/R + 0.5 mv², where R is radius of Mars, M is mass of Mars, and 'm' is mass of the body Considering that energy loss is there to the tune of 20%, the energy remaining that would be conserved is 0.8*(-GMm/R + 0.5 mv²). At the... ...more

The initial energy consisting of kinetic and potential would be -GMm/R + 0.5 mv², where R is radius of Mars, M is mass of Mars, and 'm' is mass of the body

Considering that energy loss is there to the tune of 20%, the energy remaining that would be conserved is 0.8*(-GMm/R + 0.5 mv²).

At the furthest point, where the rocket turns back, kinetic energy is 0 and potential energy would be -GMm/(R+h) where h is the height in question.

 

 

 

Answers 3 Comments
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Answered on 22/09/2018 Learn CBSE/Class 11/Science/Physics/Unit 6-Gravitation/Chapter 8-Gravitation

The initial energy consisting of kinetic and potential would be -GMm/R + 0.5 mv², where R is radius of Mars, M is mass of Mars, and 'm' is mass of the body Considering that energy loss is there to the tune of 20%, the energy remaining that would be conserved is 0.8*(-GMm/R + 0.5 mv²). At the... ...more

The initial energy consisting of kinetic and potential would be -GMm/R + 0.5 mv², where R is radius of Mars, M is mass of Mars, and 'm' is mass of the body

Considering that energy loss is there to the tune of 20%, the energy remaining that would be conserved is 0.8*(-GMm/R + 0.5 mv²).

At the furthest point, where the rocket turns back, kinetic energy is 0 and potential energy would be -GMm/(R+h) where h is the height in question.

 

 

 

Answers 3 Comments
Dislike Bookmark

Answered on 20/09/2018 Learn CBSE/Class 11/Science/Physics/Unit 6-Gravitation/Chapter 8-Gravitation

Total energy of a moving body (of mass m)from earth's surface is given by the sum of potential and kinetic energy viz -(GMm/r)+0.5mv² To have enough vel so as to reach space, where the potential energy becomes negligible and velocity of body reaches 0, implies that if we use the above equation... ...more

Total energy of a moving body (of mass m)from earth's surface is given by the sum of potential and kinetic energy viz   -(GMm/r)+0.5mv²

To have enough vel so as to reach space, where the potential energy becomes negligible and velocity of body reaches 0, implies that if we use the above equation and equate it to 0, we will get the escape vel.

Thus we see that escape vel should not be dependent on the mass of the body, but depends on vertical vel i.e direction of projextion, height from earth as well as location of earth(since earth is not completely spherical).

 

Answers 1 Comments
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Answered on 15/09/2018 Learn CBSE/Class 11/Science/Physics/Unit 2-Kinematics/Chapter 4-Motion in a Plane

Taking wind velocity direction (45 degrees) into account, the velocity component along east and north direction would be 72 cos 45 or 36√2. If the boat goes at 51 towards north, the relative wind velocity would be 51-36√2 towards south and 36√2 towards east. Taking the above into account,... ...more

Taking wind velocity direction (45 degrees) into account, the velocity component along east and north direction would be 72 cos 45 or 36√2.

If the boat goes at 51 towards north, the relative wind velocity would be 51-36√2 towards south and 36√2 towards east. 

Taking the above into account, the flag would be showing a eastern direction as the north-south relative component (51-36√2) comes close to 0.

 

Answers 1 Comments
Dislike Bookmark

Teaches

Quantitative Aptitude Coaching

Class Location

Online (video chat via skype, google hangout etc)

Student's Home

Tutor's Home

Teaching Experience in detail in Quantitative Aptitude Coaching

Will be able to tech only if material is provided. Can take up topics randomly if required.

Class 9 Tuition

Class Location

Online (video chat via skype, google hangout etc)

Student's Home

Tutor's Home

Years of Experience in Class 9 Tuition

2

Board

ICSE

ICSE Subjects taught

Mathematics, Chemistry

Experience in School or College

Private Coaching Institute

Taught in School or College

Yes

Class 10 Tuition

Class Location

Online (video chat via skype, google hangout etc)

Student's Home

Tutor's Home

Years of Experience in Class 10 Tuition

2

Board

ICSE

ICSE Subjects taught

Mathematics, Chemistry

Taught in School or College

No

Engineering Entrance Coaching classes

Class Location

Online (video chat via skype, google hangout etc)

Student's Home

Tutor's Home

Years of Experience in Engineering Entrance Coaching classes

3

Engineering Entrance Exams

IIT JEE Coaching Classes

IITJEE Coaching

IIT JEE Foundation Course, IIT JEE Crash Course

Type of class

Crash Course, Regular Classes

IIT-JEE Subjects

Physics , Maths

Teaching Experience in detail in Engineering Entrance Coaching classes

Good subject matter expertise in all relevant topics of the syllabus.

Class 11 Tuition

Class Location

Online (video chat via skype, google hangout etc)

Student's Home

Tutor's Home

Years of Experience in Class 11 Tuition

2

Board

ISC/ICSE

ISC/ICSE Subjects taught

Physics, Mathematics

Taught in School or College

No

Teaching Experience in detail in Class 11 Tuition

Good Subject matter knowledge when handling problems in the past.

Class 12 Tuition

Class Location

Online (video chat via skype, google hangout etc)

Student's Home

Tutor's Home

Years of Experience in Class 12 Tuition

2

Board

ISC/ICSE

ISC/ICSE Subjects taught

Physics, Mathematics

Taught in School or College

No

Teaching Experience in detail in Class 12 Tuition

Good Subject matter knowledge when handling problems in the past.

No Reviews yet!

Answers by Gaurav (17)

Answered on 22/09/2018 Learn CBSE/Class 11/Science/Physics/Unit 6-Gravitation/Chapter 8-Gravitation

The initial energy consisting of kinetic and potential would be -GMm/R + 0.5 mv², where R is radius of Mars, M is mass of Mars, and 'm' is mass of the body Considering that energy loss is there to the tune of 20%, the energy remaining that would be conserved is 0.8*(-GMm/R + 0.5 mv²). At the... ...more

The initial energy consisting of kinetic and potential would be -GMm/R + 0.5 mv², where R is radius of Mars, M is mass of Mars, and 'm' is mass of the body

Considering that energy loss is there to the tune of 20%, the energy remaining that would be conserved is 0.8*(-GMm/R + 0.5 mv²).

At the furthest point, where the rocket turns back, kinetic energy is 0 and potential energy would be -GMm/(R+h) where h is the height in question.

 

 

 

Answers 3 Comments
Dislike Bookmark

Answered on 22/09/2018 Learn CBSE/Class 11/Science/Physics/Unit 6-Gravitation/Chapter 8-Gravitation

The initial energy consisting of kinetic and potential would be -GMm/R + 0.5 mv², where R is radius of Mars, M is mass of Mars, and 'm' is mass of the body Considering that energy loss is there to the tune of 20%, the energy remaining that would be conserved is 0.8*(-GMm/R + 0.5 mv²). At the... ...more

The initial energy consisting of kinetic and potential would be -GMm/R + 0.5 mv², where R is radius of Mars, M is mass of Mars, and 'm' is mass of the body

Considering that energy loss is there to the tune of 20%, the energy remaining that would be conserved is 0.8*(-GMm/R + 0.5 mv²).

At the furthest point, where the rocket turns back, kinetic energy is 0 and potential energy would be -GMm/(R+h) where h is the height in question.

 

 

 

Answers 3 Comments
Dislike Bookmark

Answered on 20/09/2018 Learn CBSE/Class 11/Science/Physics/Unit 6-Gravitation/Chapter 8-Gravitation

Total energy of a moving body (of mass m)from earth's surface is given by the sum of potential and kinetic energy viz -(GMm/r)+0.5mv² To have enough vel so as to reach space, where the potential energy becomes negligible and velocity of body reaches 0, implies that if we use the above equation... ...more

Total energy of a moving body (of mass m)from earth's surface is given by the sum of potential and kinetic energy viz   -(GMm/r)+0.5mv²

To have enough vel so as to reach space, where the potential energy becomes negligible and velocity of body reaches 0, implies that if we use the above equation and equate it to 0, we will get the escape vel.

Thus we see that escape vel should not be dependent on the mass of the body, but depends on vertical vel i.e direction of projextion, height from earth as well as location of earth(since earth is not completely spherical).

 

Answers 1 Comments
Dislike Bookmark

Answered on 15/09/2018 Learn CBSE/Class 11/Science/Physics/Unit 2-Kinematics/Chapter 4-Motion in a Plane

Taking wind velocity direction (45 degrees) into account, the velocity component along east and north direction would be 72 cos 45 or 36√2. If the boat goes at 51 towards north, the relative wind velocity would be 51-36√2 towards south and 36√2 towards east. Taking the above into account,... ...more

Taking wind velocity direction (45 degrees) into account, the velocity component along east and north direction would be 72 cos 45 or 36√2.

If the boat goes at 51 towards north, the relative wind velocity would be 51-36√2 towards south and 36√2 towards east. 

Taking the above into account, the flag would be showing a eastern direction as the north-south relative component (51-36√2) comes close to 0.

 

Answers 1 Comments
Dislike Bookmark

Contact

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Gaurav describes himself as Subject Matter Knowledge in Different Topics Indicated. He conducts classes in Class 10 Tuition, Class 11 Tuition and Class 12 Tuition. Gaurav is located in Marathahalli Ramesh Nagar, Bangalore. Gaurav takes at students Home. He has 3 years of teaching experience . Gaurav has completed Bachelor of Technology (B.Tech.) from IIT in 2002. HeĀ is well versed in English and Hindi.

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