stoicism2025
Member
I'm working at a small chemical plant here. we use a THF, which evaporates easily. To reuse it, we boil it off (10,000 pounds per hour, like a big pot of really volatile water) and then do distillation.
we have two cooling units, like two different refrigerators. The first one cools the hot THF "steam" down to 100 degrees Fahrenheit.
We know that at this temperature, if any THF is still a gas, it will only exert a pressure of 5.2 psia.
Then, we send whatever "steam" is left into a second, much colder cooler, bringing it down to 32 degrees Fahrenheit. At this freezing point, any remaining THF gas will have a very low pressure of just 0.9 psia.
My question is tht after the first chemical condenser, how much THF is still floating around as a gas?
And then, after the second chemical condenser, how much THF is still a gas?
We need to figure out those vapor flow rates at each step to design the system properly and know how much liquid THF we're recovering.
We're assuming no other gases are mixed in with the THF vapor.
we have two cooling units, like two different refrigerators. The first one cools the hot THF "steam" down to 100 degrees Fahrenheit.
We know that at this temperature, if any THF is still a gas, it will only exert a pressure of 5.2 psia.
Then, we send whatever "steam" is left into a second, much colder cooler, bringing it down to 32 degrees Fahrenheit. At this freezing point, any remaining THF gas will have a very low pressure of just 0.9 psia.
My question is tht after the first chemical condenser, how much THF is still floating around as a gas?
And then, after the second chemical condenser, how much THF is still a gas?
We need to figure out those vapor flow rates at each step to design the system properly and know how much liquid THF we're recovering.
We're assuming no other gases are mixed in with the THF vapor.