Kaj je (sqrt (5+) sqrt (3)) / (sqrt (3+) sqrt (3+) sqrt (5)) - (sqrt (5-) sqrt (3)) / (sqrt (3+) sqrt (3-) sqrt (5))?
2/7 vzamemo, A = (sqrt5 + sqrt3) / (sqrt3 + sqrt3 + sqrt5) - (sqrt5-sqrt3) / (sqrt3 + sqrt3-sqrt5) = (sqrt5 + sqrt3) / (2sqrt3 + sqrt5) - (sqrt5) -sqrt3) / (2sqrt3-sqrt5) = (sqrt5-sqrt3) / (2sqrt3-sqrt5) = ((sqrt5 + sqrt3) (2sqrt3-sqrt5) - (sqrt5-sqrt3) ) (2sqrt3 + sqrt5) ((2sqrt15-5 + 2 * 3-sqrt15) - (2sqrt15-5 + 2 * 3-sqrt15)) / ((2sqrt3)) ^ 2- (sqrt5) ^ 2) = (prekliči (2sqrt15) -5 + 2 * 3zaključi (-sqrt15) - prekliči (2sqrt15) -5 + 2 * 3 + prekliči (sqrt15)) / (12-5) = ( -10 + 12) / 7 = 2/7 Upoštevajte, da če je v imenovalcu (sqrt3 + sqrt (3 + sqrt5)) in (sqrt3 + sqrt (3-sqrt5)), bo odgovor spremenjen.
Kako poenostavite (1 / sqrt (a-1) + sqrt (a + 1)) / (1 / sqrt (a + 1) -1 / sqrt (a-1)) div sqrt (a + 1) / ( (a-1) sqrt (a + 1) - (a + 1) sqrt (a-1)), a> 1?
Ogromno oblikovanje matematike ...> barva (modra) (((1 / sqrt (a-1) + sqrt (a + 1)) / (1 / sqrt (a + 1) -1 / sqrt (a-1)) ) / (sqrt (a + 1) / ((a-1) sqrt (a + 1) - (a + 1) sqrt (a-1))) = barva (rdeča) (((1 / sqrt (a- 1) + sqrt (a + 1)) / ((sqrt (a-1) -sqrt (a + 1)) / (sqrt (a + 1) cdot sqrt (a-1)))) / (sqrt (a +1) / (sqrt (a-1) cdot sqrt (a-1) cdot sqrt (a + 1) -sqrt (a + 1) cdot sqrt (a + 1) sqrt (a-1))) = barva ( modro) ((((1 / sqrt (a-1) + sqrt (a + 1)) / ((sqrt (a-1) -sqrt (a + 1)) / (sqrt (a + 1) cdot sqrt (a -1)))) / (sqrt (a + 1) / (sqrt (a + 1) cdot sqrt (a-1) (sqrt (a-1) -sqrt (a + 1))) = barva (rdeča) ((1 / sqr
Rešite naslednji sistem enačbe: [((1), sqrt (2) x + sqrt (3) y = 0), ((2), x + y = sqrt (3) -sqrt (2))]?
![Rešite naslednji sistem enačbe: [((1), sqrt (2) x + sqrt (3) y = 0), ((2), x + y = sqrt (3) -sqrt (2))]?](https://img.go-homework.com/precalculus/solve-the-following-system-of-equation-1-sqrt2xsqrt3y02-xysqrt3-sqrt2.png "Rešite naslednji sistem enačbe: [((1), sqrt (2) x + sqrt (3) y = 0), ((2), x + y = sqrt (3) -sqrt (2))]?")
{(x = (3sqrt (2) -2sqrt (3)) / (sqrt (6) -2)), (y = (sqrt (6) -2) / (sqrt (2) -sqrt (3))) :} Iz (1) imamo sqrt (2) x + sqrt (3) y = 0 Delitev obeh strani s sqrt (2) nam daje x + sqrt (3) / sqrt (2) y = 0 "(*)" Če od (2) odštejemo "(*)", dobimo x + y- (x + sqrt (3) / sqrt (2) y) = sqrt (3) -sqrt (2) - 0 => (1-sqrt) (3) / sqrt (2)) y = sqrt (3) -sqrt (2) => y = (sqrt (3) -sqrt (2)) / (1-sqrt (3) / sqrt (2)) = (sqrt (6) -2) / (sqrt (2) -sqrt (3)) Če nadomestimo vrednost, ki smo jo našli za y, nazaj v "(*)" dobimo x + sqrt (3) / sqrt (2) * (sqrt (6) -2) / (sqrt (2) -sqrt (3)) = 0 => x + (