- #1
Buddy123
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The inventor of a water wheel claims that his design is better than a conventional overshot or breast wheel at extracting energy from water flows at low heads. He states that the design shown can generate up to 260 W of power from a head of 0.8 m. average household energy use over a 24-hour period is about 28 kW h.
(a) The claimed efficiency of the device is 70%. With a head of 0.8 m, calculate the flow rate of water that would be required to deliver 260 W of power.
Efficiency = 70%
Gravity = 9.81 m/s
Head size = 0.8 m
Efficiency = Flow Rate x Gravity x Head Size
E = Q x g x h
So…
Q = E
gh
Q = 70
9.81 x 0.8
Flow rate = 8.9 kg/s
(b) When the wheel is operating, there are twelve full troughs of water on the downward-travelling side of the belt. The diameter of the toothed sprocket is given as 0.25 m.
If any shaft rotates at 41 rpm when delivering 260 W of power, calculate how many litres of water each trough must be able to contain.
Flow rate = 8.9 kg/s
Power = 260 W
Sprocket = 0.25 m
41 rpm into angular speed = 41 x 2π
60
ω = 4.3 rad/s
v = rω
v = 0125 x 4.3
v = 0.5375 rad/s
Power = Torque x Angular speed
Torque = Power
Angular speed
Torque = 260
4.3
Torque = 60.47 Nm
Power = Gravity x Flow rate x Head size (P = G x Q x H)
H = P
GQ
H = 260
9.81 x 8.9
H = 2.98 m
unable to get the answer to part b)...any suggestions?
(a) The claimed efficiency of the device is 70%. With a head of 0.8 m, calculate the flow rate of water that would be required to deliver 260 W of power.
Efficiency = 70%
Gravity = 9.81 m/s
Head size = 0.8 m
Efficiency = Flow Rate x Gravity x Head Size
E = Q x g x h
So…
Q = E
gh
Q = 70
9.81 x 0.8
Flow rate = 8.9 kg/s
(b) When the wheel is operating, there are twelve full troughs of water on the downward-travelling side of the belt. The diameter of the toothed sprocket is given as 0.25 m.
If any shaft rotates at 41 rpm when delivering 260 W of power, calculate how many litres of water each trough must be able to contain.
Flow rate = 8.9 kg/s
Power = 260 W
Sprocket = 0.25 m
41 rpm into angular speed = 41 x 2π
60
ω = 4.3 rad/s
v = rω
v = 0125 x 4.3
v = 0.5375 rad/s
Power = Torque x Angular speed
Torque = Power
Angular speed
Torque = 260
4.3
Torque = 60.47 Nm
Power = Gravity x Flow rate x Head size (P = G x Q x H)
H = P
GQ
H = 260
9.81 x 8.9
H = 2.98 m
unable to get the answer to part b)...any suggestions?
