\(\int \frac {\sqrt {c x}}{(a+b x^2)^{5/2}} \, dx\) [644]

Optimal result

Integrand size = 19, antiderivative size = 302 \[ \int \frac {\sqrt {c x}}{\left (a+b x^2\right )^{5/2}} \, dx=\frac {(c x)^{3/2}}{3 a c \left (a+b x^2\right )^{3/2}}+\frac {(c x)^{3/2}}{2 a^2 c \sqrt {a+b x^2}}-\frac {\sqrt {c x} \sqrt {a+b x^2}}{2 a^2 \sqrt {b} \left (\sqrt {a}+\sqrt {b} x\right )}+\frac {\sqrt {c} \left (\sqrt {a}+\sqrt {b} x\right ) \sqrt {\frac {a+b x^2}{\left (\sqrt {a}+\sqrt {b} x\right )^2}} E\left (2 \arctan \left (\frac {\sqrt [4]{b} \sqrt {c x}}{\sqrt [4]{a} \sqrt {c}}\right )|\frac {1}{2}\right )}{2 a^{7/4} b^{3/4} \sqrt {a+b x^2}}-\frac {\sqrt {c} \left (\sqrt {a}+\sqrt {b} x\right ) \sqrt {\frac {a+b x^2}{\left (\sqrt {a}+\sqrt {b} x\right )^2}} \operatorname {EllipticF}\left (2 \arctan \left (\frac {\sqrt [4]{b} \sqrt {c x}}{\sqrt [4]{a} \sqrt {c}}\right ),\frac {1}{2}\right )}{4 a^{7/4} b^{3/4} \sqrt {a+b x^2}} \] Output:

1/3*(c*x)^(3/2)/a/c/(b*x^2+a)^(3/2)+1/2*(c*x)^(3/2)/a^2/c/(b*x^2+a)^(1/2)- 
1/2*(c*x)^(1/2)*(b*x^2+a)^(1/2)/a^2/b^(1/2)/(a^(1/2)+b^(1/2)*x)+1/2*c^(1/2 
)*(a^(1/2)+b^(1/2)*x)*((b*x^2+a)/(a^(1/2)+b^(1/2)*x)^2)^(1/2)*EllipticE(si 
n(2*arctan(b^(1/4)*(c*x)^(1/2)/a^(1/4)/c^(1/2))),1/2*2^(1/2))/a^(7/4)/b^(3 
/4)/(b*x^2+a)^(1/2)-1/4*c^(1/2)*(a^(1/2)+b^(1/2)*x)*((b*x^2+a)/(a^(1/2)+b^ 
(1/2)*x)^2)^(1/2)*InverseJacobiAM(2*arctan(b^(1/4)*(c*x)^(1/2)/a^(1/4)/c^( 
1/2)),1/2*2^(1/2))/a^(7/4)/b^(3/4)/(b*x^2+a)^(1/2)
 

Mathematica [C] (verified)

Result contains higher order function than in optimal. Order 5 vs. order 4 in optimal.

Time = 10.01 (sec) , antiderivative size = 59, normalized size of antiderivative = 0.20 \[ \int \frac {\sqrt {c x}}{\left (a+b x^2\right )^{5/2}} \, dx=\frac {2 x \sqrt {c x} \sqrt {1+\frac {b x^2}{a}} \operatorname {Hypergeometric2F1}\left (\frac {3}{4},\frac {5}{2},\frac {7}{4},-\frac {b x^2}{a}\right )}{3 a^2 \sqrt {a+b x^2}} \] Input:

Integrate[Sqrt[c*x]/(a + b*x^2)^(5/2),x]
 

Output:

(2*x*Sqrt[c*x]*Sqrt[1 + (b*x^2)/a]*Hypergeometric2F1[3/4, 5/2, 7/4, -((b*x 
^2)/a)])/(3*a^2*Sqrt[a + b*x^2])
 

Rubi [A] (verified)

Time = 0.38 (sec) , antiderivative size = 343, normalized size of antiderivative = 1.14, number of steps used = 8, number of rules used = 7, \(\frac {\text {number of rules}}{\text {integrand size}}\) = 0.368, Rules used = {253, 253, 266, 834, 27, 761, 1510}

Below are the steps used by Rubi to obtain the solution. The rule number used for the transformation is given above next to the arrow. The rules definitions used are listed below.

Input:

Int[Sqrt[c*x]/(a + b*x^2)^(5/2),x]
 

Output:

(c*x)^(3/2)/(3*a*c*(a + b*x^2)^(3/2)) + ((c*x)^(3/2)/(a*c*Sqrt[a + b*x^2]) 
 - (-((-((c^2*Sqrt[c*x]*Sqrt[a + b*x^2])/(Sqrt[a]*c + Sqrt[b]*c*x)) + (a^( 
1/4)*Sqrt[c]*(Sqrt[a]*c + Sqrt[b]*c*x)*Sqrt[(a*c^2 + b*c^2*x^2)/(Sqrt[a]*c 
 + Sqrt[b]*c*x)^2]*EllipticE[2*ArcTan[(b^(1/4)*Sqrt[c*x])/(a^(1/4)*Sqrt[c] 
)], 1/2])/(b^(1/4)*Sqrt[a + b*x^2]))/Sqrt[b]) + (a^(1/4)*Sqrt[c]*(Sqrt[a]* 
c + Sqrt[b]*c*x)*Sqrt[(a*c^2 + b*c^2*x^2)/(Sqrt[a]*c + Sqrt[b]*c*x)^2]*Ell 
ipticF[2*ArcTan[(b^(1/4)*Sqrt[c*x])/(a^(1/4)*Sqrt[c])], 1/2])/(2*b^(3/4)*S 
qrt[a + b*x^2]))/(a*c))/(2*a)
 

Defintions of rubi rules used

Int[(a_)*(Fx_), x_Symbol] :> Simp[a   Int[Fx, x], x] /; FreeQ[a, x] &&  !Ma 
tchQ[Fx, (b_)*(Gx_) /; FreeQ[b, x]]
 

Int[((c_.)*(x_))^(m_.)*((a_) + (b_.)*(x_)^2)^(p_), x_Symbol] :> Simp[(-(c*x 
)^(m + 1))*((a + b*x^2)^(p + 1)/(2*a*c*(p + 1))), x] + Simp[(m + 2*p + 3)/( 
2*a*(p + 1))   Int[(c*x)^m*(a + b*x^2)^(p + 1), x], x] /; FreeQ[{a, b, c, m 
}, x] && LtQ[p, -1] && IntBinomialQ[a, b, c, 2, m, p, x]
 

Int[((c_.)*(x_))^(m_)*((a_) + (b_.)*(x_)^2)^(p_), x_Symbol] :> With[{k = De 
nominator[m]}, Simp[k/c   Subst[Int[x^(k*(m + 1) - 1)*(a + b*(x^(2*k)/c^2)) 
^p, x], x, (c*x)^(1/k)], x]] /; FreeQ[{a, b, c, p}, x] && FractionQ[m] && I 
ntBinomialQ[a, b, c, 2, m, p, x]
 

Int[1/Sqrt[(a_) + (b_.)*(x_)^4], x_Symbol] :> With[{q = Rt[b/a, 4]}, Simp[( 
1 + q^2*x^2)*(Sqrt[(a + b*x^4)/(a*(1 + q^2*x^2)^2)]/(2*q*Sqrt[a + b*x^4]))* 
EllipticF[2*ArcTan[q*x], 1/2], x]] /; FreeQ[{a, b}, x] && PosQ[b/a]
 

Int[(x_)^2/Sqrt[(a_) + (b_.)*(x_)^4], x_Symbol] :> With[{q = Rt[b/a, 2]}, S 
imp[1/q   Int[1/Sqrt[a + b*x^4], x], x] - Simp[1/q   Int[(1 - q*x^2)/Sqrt[a 
 + b*x^4], x], x]] /; FreeQ[{a, b}, x] && PosQ[b/a]
 

Int[((d_) + (e_.)*(x_)^2)/Sqrt[(a_) + (c_.)*(x_)^4], x_Symbol] :> With[{q = 
 Rt[c/a, 4]}, Simp[(-d)*x*(Sqrt[a + c*x^4]/(a*(1 + q^2*x^2))), x] + Simp[d* 
(1 + q^2*x^2)*(Sqrt[(a + c*x^4)/(a*(1 + q^2*x^2)^2)]/(q*Sqrt[a + c*x^4]))*E 
llipticE[2*ArcTan[q*x], 1/2], x] /; EqQ[e + d*q^2, 0]] /; FreeQ[{a, c, d, e 
}, x] && PosQ[c/a]
 

Maple [A] (verified)

Time = 0.62 (sec) , antiderivative size = 256, normalized size of antiderivative = 0.85

Input:

int((c*x)^(1/2)/(b*x^2+a)^(5/2),x,method=_RETURNVERBOSE)
 

Output:

1/c/x*(c*x)^(1/2)/(b*x^2+a)^(1/2)*(c*x*(b*x^2+a))^(1/2)*(1/3/a/b^2*x*(b*c* 
x^3+a*c*x)^(1/2)/(x^2+a/b)^2+1/2*c*x^2/a^2/((x^2+a/b)*b*c*x)^(1/2)-1/4/a^2 
*c/b*(-a*b)^(1/2)*((x+1/b*(-a*b)^(1/2))*b/(-a*b)^(1/2))^(1/2)*(-2*(x-1/b*( 
-a*b)^(1/2))*b/(-a*b)^(1/2))^(1/2)*(-b/(-a*b)^(1/2)*x)^(1/2)/(b*c*x^3+a*c* 
x)^(1/2)*(-2/b*(-a*b)^(1/2)*EllipticE(((x+1/b*(-a*b)^(1/2))*b/(-a*b)^(1/2) 
)^(1/2),1/2*2^(1/2))+1/b*(-a*b)^(1/2)*EllipticF(((x+1/b*(-a*b)^(1/2))*b/(- 
a*b)^(1/2))^(1/2),1/2*2^(1/2))))
 

Fricas [A] (verification not implemented)

Time = 0.07 (sec) , antiderivative size = 103, normalized size of antiderivative = 0.34 \[ \int \frac {\sqrt {c x}}{\left (a+b x^2\right )^{5/2}} \, dx=\frac {3 \, {\left (b^{2} x^{4} + 2 \, a b x^{2} + a^{2}\right )} \sqrt {b c} {\rm weierstrassZeta}\left (-\frac {4 \, a}{b}, 0, {\rm weierstrassPInverse}\left (-\frac {4 \, a}{b}, 0, x\right )\right ) + {\left (3 \, b^{2} x^{3} + 5 \, a b x\right )} \sqrt {b x^{2} + a} \sqrt {c x}}{6 \, {\left (a^{2} b^{3} x^{4} + 2 \, a^{3} b^{2} x^{2} + a^{4} b\right )}} \] Input:

integrate((c*x)^(1/2)/(b*x^2+a)^(5/2),x, algorithm="fricas")
 

Output:

1/6*(3*(b^2*x^4 + 2*a*b*x^2 + a^2)*sqrt(b*c)*weierstrassZeta(-4*a/b, 0, we 
ierstrassPInverse(-4*a/b, 0, x)) + (3*b^2*x^3 + 5*a*b*x)*sqrt(b*x^2 + a)*s 
qrt(c*x))/(a^2*b^3*x^4 + 2*a^3*b^2*x^2 + a^4*b)
 

Sympy [C] (verification not implemented)

Result contains complex when optimal does not.

Time = 1.41 (sec) , antiderivative size = 44, normalized size of antiderivative = 0.15 \[ \int \frac {\sqrt {c x}}{\left (a+b x^2\right )^{5/2}} \, dx=\frac {\sqrt {c} x^{\frac {3}{2}} \Gamma \left (\frac {3}{4}\right ) {{}_{2}F_{1}\left (\begin {matrix} \frac {3}{4}, \frac {5}{2} \\ \frac {7}{4} \end {matrix}\middle | {\frac {b x^{2} e^{i \pi }}{a}} \right )}}{2 a^{\frac {5}{2}} \Gamma \left (\frac {7}{4}\right )} \] Input:

integrate((c*x)**(1/2)/(b*x**2+a)**(5/2),x)
 

Output:

sqrt(c)*x**(3/2)*gamma(3/4)*hyper((3/4, 5/2), (7/4,), b*x**2*exp_polar(I*p 
i)/a)/(2*a**(5/2)*gamma(7/4))
 

Maxima [F]

\[ \int \frac {\sqrt {c x}}{\left (a+b x^2\right )^{5/2}} \, dx=\int { \frac {\sqrt {c x}}{{\left (b x^{2} + a\right )}^{\frac {5}{2}}} \,d x } \] Input:

integrate((c*x)^(1/2)/(b*x^2+a)^(5/2),x, algorithm="maxima")
 

Output:

integrate(sqrt(c*x)/(b*x^2 + a)^(5/2), x)
 

Giac [F]

\[ \int \frac {\sqrt {c x}}{\left (a+b x^2\right )^{5/2}} \, dx=\int { \frac {\sqrt {c x}}{{\left (b x^{2} + a\right )}^{\frac {5}{2}}} \,d x } \] Input:

integrate((c*x)^(1/2)/(b*x^2+a)^(5/2),x, algorithm="giac")
 

Output:

integrate(sqrt(c*x)/(b*x^2 + a)^(5/2), x)
 

Mupad [F(-1)]

Timed out. \[ \int \frac {\sqrt {c x}}{\left (a+b x^2\right )^{5/2}} \, dx=\int \frac {\sqrt {c\,x}}{{\left (b\,x^2+a\right )}^{5/2}} \,d x \] Input:

int((c*x)^(1/2)/(a + b*x^2)^(5/2),x)
 

Output:

int((c*x)^(1/2)/(a + b*x^2)^(5/2), x)
                                                                                    
                                                                                    
 

Reduce [F]

\[ \int \frac {\sqrt {c x}}{\left (a+b x^2\right )^{5/2}} \, dx=\sqrt {c}\, \left (\int \frac {\sqrt {x}\, \sqrt {b \,x^{2}+a}}{b^{3} x^{6}+3 a \,b^{2} x^{4}+3 a^{2} b \,x^{2}+a^{3}}d x \right ) \] Input:

int((c*x)^(1/2)/(b*x^2+a)^(5/2),x)
 

Output:

sqrt(c)*int((sqrt(x)*sqrt(a + b*x**2))/(a**3 + 3*a**2*b*x**2 + 3*a*b**2*x* 
*4 + b**3*x**6),x)