In each of Problems 1 through 26: (a) Find the general solution in terms of real functions. (b) From the roots of the characteristics equation, determine whether each critical point of the corresponding dynamical system is asymptotically stable, stable, or unstable, and classify it as to type. (c) Use the general solution obtained in part (a) to find a two parameter family of trajectories X = x 1 i + x 2 j = y i + y ' j of the corresponding dynamical system. Then sketch by hand, or use a computer, to draw a phase portrait, including any straight-line orbits, from this family of trajectories. y ' ' − 4 y ' + 16 y = 0
In each of Problems 1 through 26: (a) Find the general solution in terms of real functions. (b) From the roots of the characteristics equation, determine whether each critical point of the corresponding dynamical system is asymptotically stable, stable, or unstable, and classify it as to type. (c) Use the general solution obtained in part (a) to find a two parameter family of trajectories X = x 1 i + x 2 j = y i + y ' j of the corresponding dynamical system. Then sketch by hand, or use a computer, to draw a phase portrait, including any straight-line orbits, from this family of trajectories. y ' ' − 4 y ' + 16 y = 0
(a) Find the general solution in terms of real functions.
(b) From the roots of the characteristics equation, determine whether each critical point of the corresponding dynamical system is asymptotically stable, stable, or unstable, and classify it as to type.
(c) Use the general solution obtained in part (a) to find a two parameter family of trajectories
X
=
x
1
i
+
x
2
j
=
y
i
+
y
'
j
of the corresponding dynamical system. Then sketch by hand, or use a computer, to draw a phase portrait, including any straight-line orbits, from this family of trajectories.
vide
0.
OMS
its
150MAS 40k
300mts 46KV
4). A technique is taken with 100 mA, 200
ms, 60 kV and produces 200 mSv.
Find the intensity in rem when this technique
is changed to 200 mA, 400 ms, 69 kV?
nd
5). The dose to the body was 200 mSy. Find
Genesis Ward
#9) A good exposure is taken using a technique of 12 mAs, 200 cm SSD,40kv, table top, and
produces an EI value of 400 with a TEI value of 500.
Find the new mAs value required to set DI=0, if a 100 cm SSD,34kV and a 6:1 grid were
substituted. 12 MAS, 200cm SSD, 40kv
E1 = 400 TEL = 500
of a radiograph was 100 mSv with a technique of: 10 mAs, 180 kV at 200 cm and
2 IV at 00 cm using a 5:1 grid then find the
Explain the key points of 11.5.2
Chapter 4 Solutions
Differential Equations: An Introduction to Modern Methods and Applications
Need a deep-dive on the concept behind this application? Look no further. Learn more about this topic, subject and related others by exploring similar questions and additional content below.