Let z1= 10 + 6i and z2 = 4 + 6i. If z is any complex number such that the argument of (z - z1) / (z - z2) is π/4 then prove that |z - 7 - 9i | = 3√ 2

Question

Let z1= 10 + 6i and z2 = 4 + 6i. If z is any complex number such that the argument of (z - z1) / (z - z2) is π/4 then prove that |z - 7 - 9i | = 3√ 2 (A)  (B)  (C)  (D)

Tardigrade Admin · Accepted Answer

Since, z1 = 10 + 6t, z2 = 4 + 6i and arg ((z-z1/z-z2)) =(π/4) represents locus of z is a circle shown as from the figure whose centre is (7, y) and angle AOB =90° , clearly OC = 9 . ⇒ OD=6+3=9 ∴ Centre = (7,9) and radius =(6/√ 2)=3√ 2 <img class="img-fluid question-image" alt="image" src="https://cdn.tardigrade.in/img/question/chemistry/a652086adf9cdf7074a580ad2e578294-.png" /> ⇒ Equation of circle is |z-(7+9i)|=3√ 2

Q. Let z1​=10+6i and z2​=4+6i. If z is any complex number such that the argument of (z−z1​)/(z−z2​) is π/4 then prove that ∣z−7−9i∣=32​

Since, z1​=10+6t,z2​=4+6i and arg(z−z2​z−z1​​)=4π​ represents locus of z is a circle shown as from the figure whose centre is (7,y) and ∠AOB=90∘, clearly OC=9 . ⇒OD=6+3=9 ∴ Centre =(7,9) and radius =2​6​=32​ ⇒ Equation of circle is ∣z−(7+9i)∣=32​

Q. Let $z_{1} = 10 + 6 i$ and $z_{2} = 4 + 6 i$ . If $z$ is any complex number such that the argument of $(z - z_{1}) / (z - z_{2})$ is $π /4$ then prove that $∣ z - 7 - 9 i ∣ = 32$