- #36
- 23,575
- 5,813
In this photo, the hose is obviously curved, which is the reason for a constraining force to be needed. If the hose were perfectly straight, no such force would be required.gmax137 said:
In this photo, the hose is obviously curved, which is the reason for a constraining force to be needed. If the hose were perfectly straight, no such force would be required.gmax137 said:I did some googling on fire hose nozzle reactions. Here's a link
https://www.fireengineering.com/articles/print/volume-159/issue-4/features/measuring-and-demonstrating-nozzle-reaction.html
it shows a measurement of reaction force using a fish scale
View attachment 234858
The net force backwards has to be the same as the force propelling the water. There will be a component of force in the line of the nozzle on every internal part of the water system. Many of these forces within the water path will cancel (as with symmetrical tapers). In particular, as a nozzle will be tapered from the wide hose to the narrow outlet, that resultant force there will be forwards, If you take the simplest form of pump, it could be a simple piston in a very long cylinder. If cylinder and hose are the same diameter and everything is straight in line, up to the nozzle taper, the reaction force on the piston will be the same as the propulsive force on the emerging water plus the forward component of the force on the taper. Other tapers and bends will introduce more forces in the system.Chestermiller said:What direction is this force acting?
Actually, in a straight pipe of constant cross section, the only force interaction between the flowing fluid and the pipe (in the horizontal direction) is the frictional drag at the wall. The wall exerts a viscous shear stress in the negative flow direction on the fluid, and the fluid exerts an equal and opposite viscous shear stress in the positive flow direction on the inner wall of the pipe.sophiecentaur said:The net force backwards has to be the same as the force propelling the water.
I have a feeling that we are talking slightly in quadrature here. Have I missed bit where you consider the reaction force that I am batting on about?Chestermiller said:Actually, in a straight pipe of constant cross section, the only force interaction between the flowing fluid and the pipe (in the horizontal direction) is the frictional drag at the wall.
Seems quite obvious. There are only two forces involved in the interaction between nozzle and water: pressure and viscous friction. Both act to push the nozzle in the direction of flow. There are only two forces involved in the interaction between the telescoping pipe walls and the water: pressure and viscous friction. The former has no effect in the direction of the flow. The latter acts to drag the pipe in the direction of the flow.CWatters said:Would be interesting to consider a straight rigid but telescopic pipe with a tapered nozzle...
When you turn the water on does it..
a) extend (due to pressure on the inside of the nozzle) or
b) retract (due to the water accelerating through the nozzle and conservation of momentum)
c) remain at constant length
d) both effects a) and b) exist but one is greater?
I kind of agree from a science standpoint, but the main problem with these threads is that many people are not answering the question being asked.sophiecentaur said:This discussion is reminding me strongly of the 'how does an aeroplane fly?' question. There are the bigendians who say it's because of Beernoilli and the littleendians who say it's because of Newton's Third Law.
But, whatever calculations that the bigendians introduce, there is no way that a plane flies because of a reaction less force. Similarly, with the fireman's hose, there has to be a reaction force but where it applies and what other forces are involved is a rich source of ideas and disagreements.
Not for the first time on PF, i think.russ_watters said:I kind of agree from a science standpoint, but the main problem with these threads is that many people are not answering the question being asked.
Not that pair; there are any number of pairs that could be considered and I am considering the overall forces on the whole pump / hose / nozzle kit, due to the expelled water. I realize that half of the OP content asks about the force on the nozzle (the one you correctly refer to and deal with) but also the op asks for an explanation of the forces on the firefighter. I'm talking about the force that must have existed to accelerate the fluid out of the nozzle and the necessary N3 force must act on a number of parts of the restraint of the system. Whenever Momentum is changing, there will be a force and a curve on the hose is one example. The fighter needs to minimise that force or at least make sure that it's in a controllable direction (down towards the ground and not sideways or up).Chestermiller said:The action-reaction pair you are asking about is (a) the forward pressure force that the fluid exerts on the nozzle body and (b) the backward force exerted by the nozzle body on the fluid.
I just spotted this on re-reading. If you mean by "flow diverter", a mechanism for spreading the water around, then a rotary flow diverter (Catherine wheel style) follows exactly my explanation for the fire hose. The reaction against the force on the departing water causes the arm on the end to spin in the opposite direction.jbriggs444 said:Though the flow diverter at the nozzle makes this less than an ideal example).
sophiecentaur said:Not for the first time on PF, i think.
I like your post. The original question is hiding a paradox / misconception in people's intuition. The OP gives two apparently opposing ideas when they are actually not mutually exclusive. A narrowing taper will produce a forwards force on the hose but there are other forces at work, which can push / pull firefighters in many directions - including backwards. It's not surprising that there's confusion because we all know about rockets. But a bit of thought will remind us that rocket engines tend to have an widening taper and not a narrowing one. N3 comes along and he has to be right. The perfect storm for a PF thread.
The overall N3 constraint isn't ignored, but it can be somewhat nonintuitive. In the case of a completely straight pipe/hose with a nozzle on the end, the only force acting on the entire pipe/nozzle system will be in the same direction as the flow. The N3 reaction force from the fact that the water is coming out the end will only be felt in the backwards force exerted on the pump itself (which can alternatively be seen as the force caused by the pressure differential between the pump inlet and outlet). For your water tank example, there's a slight force on the tank itself caused by the fact that the opening out of which the water is flowing is an opening, and thus, the water is not exerting hydrostatic pressure on the tank at that point. There's an imbalance because on one side of the water tank, the water is pushing against a region that is not mirrored on the other side due to the opening. As such, the tank will experience a force away from the direction of the outlet.sophiecentaur said:Not that pair; there are any number of pairs that could be considered and I am considering the overall forces on the whole pump / hose / nozzle kit, due to the expelled water. I realize that half of the OP content asks about the force on the nozzle (the one you correctly refer to and deal with) but also the op asks for an explanation of the forces on the firefighter. I'm talking about the force that must have existed to accelerate the fluid out of the nozzle and the necessary N3 force must act on a number of parts of the restraint of the system. Whenever Momentum is changing, there will be a force and a curve on the hose is one example. The fighter needs to minimise that force or at least make sure that it's in a controllable direction (down towards the ground and not sideways or up).
I cannot see how people still seem to be ignoring the need for the overall N3 constraint. As I said above - this is just like the flying aircraft wing discussions. Both approaches are valid as far as they go.
I would say that, because of Bernouli, the pressure after the constriction goes up and the gas speed drops. But that doesn't actually go against what you say because the combustion conditions are optimised.cjl said:The rocket nozzle is expanding because that is the way to achieve the highest exhaust velocity.
I agree that looking for N3 involves looking everywhere. People only want to look at the nozzle and that accounts for the wrong thinking that we read about.cjl said:There's an imbalance because on one side of the water tank, the water is pushing against a region that is not mirrored on the other side due to the opening. As such, the tank will experience a force away from the direction of the outlet.
This is false. After the constriction, the speed rises dramatically (and the pressure continues to drop). Bernoulli is not applicable. For a fairly common rocket nozzle where the exit pressure is 1/125 of chamber pressure (so, for example, an exit pressure of 10 PSI and a chamber at 1250, which corresponds to an area expansion ratio of just under 10:1), the mach number at the exit will be 3.85, and the exhaust velocity will be 2.12 times higher than the velocity in the throat.sophiecentaur said:I would say that, because of Bernouli, the pressure after the constriction goes up and the gas speed drops. But that doesn't actually go against what you say because the combustion conditions are optimised.
Brilliant - thanks for that.cjl said:The reason bernoulli (and a lot of common sense about how fluids behave in general) doesn't apply is because of the compressibility of the flow. In compressible flows, a constriction only accelerates a flow if the flow is subsonic.