Wednesday, June 20, 2012

All sorts of Pump

 1. 터보형 펌프 
(1) 원심펌프(centrifugal pump)
(2) 축류펌프(axial flow pump)
(3) 사류펌프(mixed flow pump) 
(4) 마찰펌프(friction pump) 
(5) 보어홀 펌프(bore-hole pump) 
(6) 수중모터펌프(submerged motor pump) 


 2. 용적형 펌프 
(1) 왕복펌프(reciprocating pump) 
(2) 회전 펌프(rotary pump) 


 3. 특수펌프 
(1) 기포펌프(air lift pump) 
(2) 분사펌프(jet pump) 


  펌프란 전동기나 내연기관 등의 원동기로부터 기계적 에너지를 받아서, 액체에 운동 및 압력에너지를 주어 액체의 위치를 바꾸어 주는 기계이다. 펌프의 작용은 흡입과 토출에 의해 이루어진다. 흡입작용은 펌프 내를 진공상태로 만들어 흡상시키는 것이다. 펌프의 종류는 구조 및 작동원리에 따라 터보형, 용적형, 특수형으로 나뉘고, 용도에 따라 급수용, 배수용, 순환용, 소화용, 기름용 등이 있다.  
  1. 터보형 펌프 깃(vane)을 가진 임펠러(impeller)의 회전에 의해 유액된 액체에 운동에너지를 부여하고, 다시 와류실(spiralcasing) 등의 구조에 의해 압력에너지로 변환시키는 펌프로서 원심펌프, 사류펌프, 축류펌프가 있다. 터보형 펌프는 용적형 펌프에 비해 진동이 적고 연속송수가 가능하다. 또한 구조가 간단하고, 취급이 용이하며, 운동성능도 양호하다. 토출량은 압력에 따라 변한다. 

  (1) 원심펌프(centrifugal pump) 액체가 축과 직각방향으로 된 임펠러로부터 흘러나와 스파이럴 케이싱에 모아져서 토출구로 이끌리는 펌프로서, 와권펌프라고도 한다. 급수용은 물론 설비의 각종 용도로 가장 많이 사용되고 있는 펌프이다. 원심펌프는 임펠러(회전차 ; impeller)를 회전시켜 액체에 회전력을 주어서 원심력 작용으로 양수하는 펌프로서, 깃(날개 ; vane)이 달린 임펠러, 안내깃(guide vane) 및 스파이럴 케이싱(spiral casing)으로 구성되었다. 액체는 먼저 흡입관을 통하여 임펠러 중심부에 들어가 깃 사이를 통과하는 사이에 회전력을 받아 압력이 증가하고, 안내깃을 지나는 동안 속도에너지는 압력에너지로 변화하면서 스파이럴 케이싱에 들어간다. 안내깃은 임펠러의 바깥 둘레에 배치한 고정 깃으로서, 엠펠러에서 나오는 빠른 속도의 액체를 안내하면서 속도에너지를 압력에너지로 바꾸어 주는 역할을 한다. 스파이럴 케이싱은 임펠러 또는 안내깃에서 나오는 액체를 모아서 토출구에 유도하는 것으로, 점차 통로를 넓게 하여 속도수두를 압력수두로 변화시킨다. 


 ☆ 펌프의 종류 - 원심펌프, 축류펌프   


  펌프의 종류에는 원심펌프(centrifugal pump), 축류펌프(axial flow pump), 왕복펌프(reciprocating pump), 회전펌프(rotary pump) 및 특수펌프(miscelanious pump)가 있다.   원심펌프는 물, 우유, 윤활유, 화학용액 등 가공용 물질을 압상하는데 가장 많이 쓰이는 펌프이다.

  원심펌프는 다수의 깃(blade, vane) 이 달린 회전차(impeller)가 밀폐된 케이싱(casing) 내에서 회전함으로써 발생하는 원심력을 이용하는 펌프이다. 유체는 회전차의 중심에서 유입되어 반지름방향으로 흐르는 사이에 압력 및 속도에너지를 얻고, 이 가운데 과잉의 속도에너지는 안내깃(guide vane, diffuser vane)을 지나 와류실(volute casing) 을 통과하는 사이에 압력에너지로 변한다. 원심펌프는 회전차의 바깥둘레에 안내깃이 없는 것을 벌류트펌프(volute pump), 안내깃이 달린 것을 터빈펌프(turbine pump) 라고 한다. 전자는 일반적으로 양정이 낮은 곳에 쓰이며, 후자는 높은 곳에 사용된다.  
  
  축류펌프는 유량이 대단히 크고 양정이 낮은 경우(보통 10m 이하) 에 사용되는 것으로, 농업용의 양수 및 배수, 상수도 및 하수도용으로 많이 사용된다. 유체는 회전차 속으로 축방향으로 유입되어 회전차를 지나 축방향으로 유출된다. 회전차의 날개는 그림 2-25와 같이 크고 넓으며, 마치 선풍기의 날개 또는 스크루 프로펠러와 같은 형상으로 되어 있다.



Andrew.byeon@gmail.com
With my pleasure

Friday, October 28, 2011

[Chemical Engineering] Separation Processes_PT

From here, We need to understand what 'Starling‘s law and K-K equation state about'.

First of all, Starling's law states that the force of contraction. It depends on the length of muscle fibers of the heart. This intrinsic response of the heart is called Starling's law of the heart.
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If you look at this slide, you can see that graph, which is 'Starling's law of the heart.'

The length-tension relationship of a normal heart is shown in the lower curve.
In contrast, this increase in heart rate can dramatically increases cardiac output.

As mentioned before, an increase in a heart volume increases stroke (맥박) volume and excess volume. Therefore, we could say that the magnitude of fluid movement is dependent on the net balance of Starling forces across the endothelial barrier(내비장벽).

From this fact, We can conclude that the rate of fluid transport through the capillary walls can be modeled by Starling's law.
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Let's move on to the next slide.

----------------------------------------------------------------------------------------- Next one is about The Kedem and Katchalsky equations.

The Kedem-Katchalsky (K-K) equations, commonly and classically used to describe
the volume and solute flows of nonelectrolyte solutions(비전해질용액) across membranes.

However in biophysical practice, we usually have to deal with systems whose solutions are poorly mixed caused by effect of solute size, effect of solute charge and so on.
That's why in that system, we assume that the solutions on both sides are well mixed.

The modified K-K equation obtained here, which expresses the volume flow (Jv), includes the effect of boundary layers with varied concentrations in the case of poorly-mixed solutions.

Further more, their existences significantly reduces the stream of diluted substance (Js) and the volume stream(Jv). In order to describe mathematically these streams, it was necessary to transform the Kedem and Katchalsky classical equation into a more practical equation.
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In conclusion, Starling and Kedem-Katchalsky eqn. Both of them are describing Endothelial permeability(내피투수성). In addition, The application of the K-K practical equations is reduced to membrane systems with sufficiently diluted and well mixed solutions such as a glomerulus system.

Tuesday, October 4, 2011

Andrew_CV can be shared.

To help visitors get well organized CV.
I've shared Andrew_CV with all guys here.

Necessary to access by E_mail (Andrew.Byeon@gmail.com)

10.05.2011 Andrew.Byeon

Sunday, May 8, 2011

[Heat and Mass Transfer] Speech

Hello, Everyone. My name is 변병근. from sixth team. Thank you for coming to today's presentation.
As you can see the screen, I'd like to talk to you "Heat transfer in refrigerator".
We, sixth team has found this journal from "International Communications in Heat and Mass Transfer", which name is "Experimental study of heat transfer characteristics for a refrigerator by using reverse heat loss method".

You might be curious about this term, Reverse heat loss method. This is the new concept, this author just came up with.
This main experiment in this journal is differently checking the heat transfer between freezer side and refrigerator side. By putting heaters into each section, they have found how and which paths the heat go forward to. This is the new concept differently checked from the original principle of refrigerator.
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We've divided our presentation into three parts.
First, I will explain you the reason why our team chose this journal and how important it is.
Then, we'd like to introduce you "The basic principle of fridge cooling down temperature"
Finally we will talk about the main purpose of the journal we've chosen.
So through the last part, you will know the point our team is going to discuss about at the final presentation.
Please Be ready to take a note and feel free to ask a question whenever you have.
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Here is a very interesting fact that a refrigerator inside a house runs for 24 / 7 and 365 days in a year until it is out of order. There is no home appliance other than a refrigerator which always runs in the world. So it is obvious that the electric power consumption by fridge
is considered as a huge cost. So for reducing electric power energy, we've chosen this journal, because it shows the experimental fact saving electric power energy in the aspect of heat transfer.
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Pay attention to here. This is the simplest figure which is showing the heat transfer in refrigerator. it is composed of four big parts in terms of heat transfer.

Compressor, Condenser, Expansion valve and Evaporator unit with Refrigerant.

The fluid flowing this system is Freon Gas (R12, R22 - Air condition). It is a noncorrosive fluid which means it has no a harmful function to break down the valve and pipes inside of fridge. and it is easily liquefied even at the low pressure to absorb ambient heat. So We can say that it is a qualified material as a refrigerant (fluid). I will just call it fluid to make it easy.
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The refrigeration process begins with the compressor. Freon Gas is compressed until it becomes very hot and high pressure.
This heated gas flows through the coils behind the fridge, which allow excess heat to be released into the surrounding air.
This is why people sometimes feel warm air circulating around the fridge.

Eventually the Freon Gas cools down to the point where it becomes a liquid at condenser.
This freon liquid is forced through an expansion valve.

Essentially, the expansion valve has such a small opening. That's why when the liquid Freon pass through this valve, it is turned into a very cold, fast-moving mist, evaporating.
This is explained by Bernoulli's theorem.

This low temperature freon liquid with low pressure is vaporized by absorbing more heat from inside of the insulation.
then its temperature rises.
this phenomenon cools down the temperature inside of fridge.

The freon gas is drawn back into the compressor, and then this circulation system begins again to continuously lower the temperature.
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Finally, Here in the last part, We are going to give you an introduction for final presentation.

In this journal, they had tried finding these four facts based on reverse heat loss method.

First, They found How long the temperature distribution inside fridge takes to reach the steady state condition from the fridge has a electric power at the first stage.

Second, They checked the efficiency of role of circulating fans between freezer side and refrigerator side.

Third, They separated the fridge into three parts like this picture. And they utilized the concept, The overall heat transfer coefficients respectively.
So they shows the relationship between them by derivation using mathematical calculation based on zeroth and first law of thermodynamics.


Above all facts have proven the performance of circulating fan and insulation in the aspect of Heat transfer.

Basically, There are several ways to cut down the cost of electric power energy.
I will explain them at the final presentation with sub journals.

We will see you later. Thank you very much.

Does anyone have a question?