Deck 47: Gas Exchange in the Lung
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Deck 47: Gas Exchange in the Lung
1
At b od y tem pe ra tur e, th e v ap or pre ss ur e o f w ate r is
A) 760 mm Hg
B) 713 mm Hg
C) 600 mm Hg
D) 160 mm Hg
E) 47 mm Hg
A) 760 mm Hg
B) 713 mm Hg
C) 600 mm Hg
D) 160 mm Hg
E) 47 mm Hg
E
2
Henry's Law is best described as
A) Q A =
V (V
B) PA = fA (PB - PH2O)
C) [A] = a P
D) Q A = QCO2 (PB - PH2O) / PACO2
E) PAO2 = PIO2 - PACO2/R + fIO2 PACO2 [(1-R)/R]
A) Q A =
V (V
B) PA = fA (PB - PH2O)
C) [A] = a P
D) Q A = QCO2 (PB - PH2O) / PACO2
E) PAO2 = PIO2 - PACO2/R + fIO2 PACO2 [(1-R)/R]
C
3
If glucose is the only fuel used for energy supply, the respiratory quotient would be
A) 1.0
B) 0.7
C) 0.8
D) 0.83
E) 6
A) 1.0
B) 0.7
C) 0.8
D) 0.83
E) 6
A
4
An ex pir ed tida l vo lum e is 0.5 L a t BT PS . Its vo lum e a t ST PD is
A) 350 mL
B) 605 mL
C) 413 mL
D) 469 mL
E) 289 mL
A) 350 mL
B) 605 mL
C) 413 mL
D) 469 mL
E) 289 mL
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5
The va po r pr es su re of w ate r at the bo iling po int o f w ate r is
A) 760 mm Hg
B) 47 mm Hg
C) Atm osp heric p ressu re or am bien t pres sure
D) 713 mm Hg
E) Cannot be determined from the information given
A) 760 mm Hg
B) 47 mm Hg
C) Atm osp heric p ressu re or am bien t pres sure
D) 713 mm Hg
E) Cannot be determined from the information given
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6
The respiratory quotient is typically about
A) 1.0
B) 0.8
C) 0.7
D) 200
E) 250
A) 1.0
B) 0.8
C) 0.7
D) 200
E) 250
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7
The respiratory quotient is the ratio
A) TV / TLC
B) FEV1 / VC
C) D LO2 / DLCO2
D) PACO2 / PAO2
E) Q CO2 / Q O2
A) TV / TLC
B) FEV1 / VC
C) D LO2 / DLCO2
D) PACO2 / PAO2
E) Q CO2 / Q O2
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8
STPD refers to standard conditions of
A) 0o K, 1 atm and saturated with water vapor
B) 0o K, 1 atm and no w ater vapor
C) 0o C, 1 atm and no water vapor
D) 37o C, 1 atm and no water vapor
E) 37oC, 1 atm and saturated with water vapor
A) 0o K, 1 atm and saturated with water vapor
B) 0o K, 1 atm and no w ater vapor
C) 0o C, 1 atm and no water vapor
D) 37o C, 1 atm and no water vapor
E) 37oC, 1 atm and saturated with water vapor
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9
Exchange of gas between alveolar air and blood is rapid because
A) The surface area for exchange is large
B) Gasses diffuse incredibly fast
C) The dif fus ion dist an ce is sm all
D) The gradients for diffusion are large
E) Both A and C are true
A) The surface area for exchange is large
B) Gasses diffuse incredibly fast
C) The dif fus ion dist an ce is sm all
D) The gradients for diffusion are large
E) Both A and C are true
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10
Which has the grea test solubility in water?
A) O 2
B) N 2
C) CO₂
D) CO
E) All of the m hav e the sam e so lubility
A) O 2
B) N 2
C) CO₂
D) CO
E) All of the m hav e the sam e so lubility
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11
Ga s m ove m ent is d own its
A) Absolute concentration gradient
B) Partial pressure gradient
C) Total pressure gradient
D) Oncotic pressure gradient
E) Velocity of fluid flow gradient
A) Absolute concentration gradient
B) Partial pressure gradient
C) Total pressure gradient
D) Oncotic pressure gradient
E) Velocity of fluid flow gradient
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12
The alv eo lar ve ntila tion eq ua tion is
A) Q A =
V (V
B) PA = fA (PB - PH2O)
C) [A] = a P
D) Q A = QCO2 (PB - PH2O) / PACO2
E) PAO2 = PIO2 - PACO2/R + fIO2 PACO2 [(1-R)/R]
A) Q A =
V (V
B) PA = fA (PB - PH2O)
C) [A] = a P
D) Q A = QCO2 (PB - PH2O) / PACO2
E) PAO2 = PIO2 - PACO2/R + fIO2 PACO2 [(1-R)/R]
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13
The vapor press ure of water
A) Depe nds on the a m bient pressure
B) Depends on the temperature of the water
C) Varies with the composition of the gas phase
D) Is greatest for N 2
E) Is greatest for O 2
A) Depe nds on the a m bient pressure
B) Depends on the temperature of the water
C) Varies with the composition of the gas phase
D) Is greatest for N 2
E) Is greatest for O 2
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14
The ide al g as eq ua tion is
A) PA = fA (PB -47)
B) R = Q CO2 / Q O2
C) PV = nRT þ P
D) X A = A A
E) [A] = a P
A) PA = fA (PB -47)
B) R = Q CO2 / Q O2
C) PV = nRT þ P
D) X A = A A
E) [A] = a P
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15
The diffusing capacity has units of
A) cm 2 s-1
B) mL dL -1
C) Pa s
D) M ol s -1 cm -2
E) m L m in-1 mm Hg -1
A) cm 2 s-1
B) mL dL -1
C) Pa s
D) M ol s -1 cm -2
E) m L m in-1 mm Hg -1
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16
The partial pressure of an ideal gas is
A) The m ole frac tion o f the g as tim es th e tota l press ure
B) T he pre ss ur e o f th e g as pe r m ole
C) T he pre ss ur e o f th e g as pe r m ole cu le
D) The pressure of the gas divided by the partial molar volume
E) The pressure the gas would have if it was at STPD
A) The m ole frac tion o f the g as tim es th e tota l press ure
B) T he pre ss ur e o f th e g as pe r m ole
C) T he pre ss ur e o f th e g as pe r m ole cu le
D) The pressure of the gas divided by the partial molar volume
E) The pressure the gas would have if it was at STPD
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17
The anatomic dead space is
A) The volu me of gas th at fills the no n-exch angin g airw ays
B) The volume of gas that does not exchange with blood
C) The volume of gas left in the lungs after a forceful expiration
D) Greater than the physiological dead space
E) The volume of gas that doesn't move with ventilation
A) The volu me of gas th at fills the no n-exch angin g airw ays
B) The volume of gas that does not exchange with blood
C) The volume of gas left in the lungs after a forceful expiration
D) Greater than the physiological dead space
E) The volume of gas that doesn't move with ventilation
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18
Alveolar gas partial pressures at rest
A) Are relatively constant because the tidal volume is a small fraction of the FRC
B) Vary widely during each breath because fresh air replaces "stale" alveolar air during each brea th
C) Vary widely because the blood squirts through unevenly during each ejection cycle of the heart
D) Ar e th e s am e a s th os e in m ois t tra ch ea l air
E) Are relatively constant because the tidal volume is a small fraction of the TLC
A) Are relatively constant because the tidal volume is a small fraction of the FRC
B) Vary widely during each breath because fresh air replaces "stale" alveolar air during each brea th
C) Vary widely because the blood squirts through unevenly during each ejection cycle of the heart
D) Ar e th e s am e a s th os e in m ois t tra ch ea l air
E) Are relatively constant because the tidal volume is a small fraction of the TLC
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19
The diffusing capacity for O2 Increases markedly during exercise because
A) O 2 diffuses more quickly when the blood is hot
B) Previously non-perfused areas of the lung become perfused with blood
C) Alveolar ventilation is Increased
D) Pulmonary ventilation is Increased
E) The diffusion distance is shorter
A) O 2 diffuses more quickly when the blood is hot
B) Previously non-perfused areas of the lung become perfused with blood
C) Alveolar ventilation is Increased
D) Pulmonary ventilation is Increased
E) The diffusion distance is shorter
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20
A person inspires dry air. The N2 partial pressure in moist tracheal air should be
A) The sam e as in dry inspired air because N2 does not exchange
B) The sam e as in dry inspired air because the water vapor merely Increases the total pressure
C) Less than that in dry inspired air because water vapor dilutes all of the gasses
D) M or e th an tha t in d ry ins pir ed air b ec au se ox yge n is rem ov ed fro m the tra ch ea l air
E) Unaffected by anything because N2 is inert to bodily metabolism
A) The sam e as in dry inspired air because N2 does not exchange
B) The sam e as in dry inspired air because the water vapor merely Increases the total pressure
C) Less than that in dry inspired air because water vapor dilutes all of the gasses
D) M or e th an tha t in d ry ins pir ed air b ec au se ox yge n is rem ov ed fro m the tra ch ea l air
E) Unaffected by anything because N2 is inert to bodily metabolism
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