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三角形三边关系的证明 证明方法如下: 作下图所示的三角形ABC。在三角形ABC中三角不等式可以表示为|AB|+|BC||AC|。 height="1.90625in"}
①延长直线AB至点D并使|BD|=|BC|,连接|DC|那么三角形BCD为等腰三角形。所以∠BDC=∠BCD。 ②记它们均为α,根据欧几里得第五公理∠ACD大于角∠ADC(α)。 ③由于∠ACD的对边为AD∠ADC(α)的对边为AC所以根据大角对大边(几何原本中的命题19)就可以得到|AB|+|BC|=|AB|+|BD|=|AD||AC|。 求证在三角形ABC中P为其内部任意一点。请证明∠BPC > ∠A。 证明过程: 延长BP交AC于D ∵∠BPC是△PCD的一个外角∠PDC是△BAD的一个外角 ∴∠BPC=∠PCD+∠PDC∠PDC=∠DBA+∠A ∴∠BPC=∠PCD+∠DBA+∠A ∴∠BPC∠A