Speaking Task 1. Choose the question from the card on the topic Entertainment and fedia^ prime prime and be ready to answer it after the teacher starts the conversation. Produce a speech by giving extended answers to the questions. Share your ideas with the class. Teacher organizes a Socratic seminar, which helps him/her to assess learners while they are speaking on the toplic Entertainment and Media and he/she prepares and cuts down questions and expressions beforehand. Learners sit in a circle and answer the question using in their speech some formal and Informal expressions to present logically connected information to their classmates. Expressions: Stating an opinion The way I see it... Sorry to interrupt, but... Is it okay if I jump in for a second? Can I add something here? Can I throw my two cents in? Not necessarily Interrupting If I might add something..... I beg to differ No, I'm not so sure about that That's for sure Expressing disagreement I'd say the exact opposite I have to side with somebody (name)on this one I was just going to say that In my opinion Expressing agreement If you ask me.. That's exactly how I feel As far as I'm concerned. If you want my honest opinion..... You have a point there That's not always the case
1) Один очень лёгкий: координаты точки пересечения медиан равны среднему арифметическому координат вершин.
А(-2;3;-6), B(-3;5;2), C(5;1;6),
x(O) = (-2-3+5)/3 = 0.
y(O) = (3+5+1)/3 = 3,
z(O) = (-6+2+6)/3 = 2/3.
Второй основан на свойстве точки пересечения медиан - она делит медиану в отношении 2:1 от вершины.
Находим координаты точки А1 как середины ВС:(B(-3;5;2)+ C(5;1;6))/2.
Точка А1 (середина ВС)
a1x a1y a1z
1 3 4.
Поделим отрезок АА1 в отношении 2:1. А(-2;3;-6), А1(1; 3; 4).
АА1 = (3; 0; 10)
|AA1| = 10,44030651, квадрат 109.
x(О) = xА + (2/3)(АА1) = -2+((2/3)*3) = 0,
y(О) = yА + (2/3)(АА1) = 3+((2/3)*0) = 3,
z(О) = zА + (2/3)(АА1) = -6+((2/3)*10) = (-18+20)/3 = 2/3.
2) Дано: A(3;4;0), B(-4;2;0), C(6;5;0).
Находим центр как точку пересечения медиан.
x(O) = (3-4+6)/3 = 5/3,
y(O) = (4+2+5)/3 = 11/3,
z(O) = 0.
О((5/3; (11/3); 0), D(2;3;8).
Вектор ОД = ((1/3); (-2/3); 8).
Н = √((1/3)² + (-2/3)² + 8²) = √(1/9) + (4/9) + 64) = √581/3 ≈ 8,034647.