Showing posts with label heating. Show all posts
Showing posts with label heating. Show all posts

Monday, April 29, 2019

Watlow Heaters Heating Requirements

General Method for Determining Watlow Heater Requirements


Electric Heaters, Heating Elements and Controls
Contact Flow Factor HERE!


Most electrical heating problems can be readily solved by determining the heat required to do the job. To do this, the heat requirement must be converted to electrical Power and the most practical heater can then be selected for the job. Whether the problem is heating solids, liquids or gases, the method, or approach, to determining the Power requirement is the same.
All heating problems involve the following steps to their solution:

Step 1: Define the Heating Problem

  • Gather application information
  • Sketch problem for visual reference

Step 2: Calculate Power Requirements

  • System start-up power requirement
  • System maintenance power requirements
  • Operating heat losses

Step 3: Review System Application Factors

  • Operating temperature
  • Operating efficiency
  • Safe/permissible watt densities
  • Mechanical considerations
  • Operating environment factors
  • Heater life requirements
  • Electrical lead considerations

Step 4: Select Heater

  • Type
  • Size
  • Quantity

Step 5: Select Control System

  • Type of temperature sensor and location
  • Type of temperature controller
  • Type of power controller

Defining the Problem

Your heating problem must be clearly stated, paying careful attention to defining operating parameters. Take these into consideration:

  • Minimum start and finish temperatures expected
  • Maximum flow rate of material(s) being heated
  • Required time for start-up heating and process cycle times
  • Weights and dimensions of both heated material(s) and containing vessel(s)
  • Effects of insulation and its thermal properties
  • Electrical requirements — voltage
  • Temperature sensing methods and location(s)
  • Temperature controller type
  • Power controller type
  • Electrical limitations
  • And since the thermal system you're creating may not take into account all the possible or unforeseen heating requirements, don't forget a safety factor. A safety factor increases heater capacity beyond calculated requirements.

Calculations for Required Heat Energy

When performing your own calculations, refer to Equations for values of materials covered by these equations.
The total heat energy (kWh or Btu) required to satisfy the system needs will be either of the two values shown below depending on which calculated result is larger.
  • Heat required for start-up
  • Heat required to maintain the desired temperature
The power required (kW) will be the heat energy value (kWh) divided by the required start-up or working cycle time. 
The kW rating of the heater will be the greater of these values plus a safety factor.
The calculation of start-up and operating requirements consist of several distinct parts that are best handled separately. However, a short method can also be used for a quick estimate of heat energy required.

Safety Factor Calculation

You should always include a safety factor of varying size to allow for unknown or unexpected conditions. The size of the safety factor is dependent on the accuracy of the wattage calculation. Heaters should always be sized for a higher value than the calculated figure. A factor of 10% is adequate for small systems that are closely calculated; 20% additional wattage is more common. Safety factors of 20% and 35% are not uncommon, and should be considered for large systems, such as those containing doors that open or are large radiant heat applications. You'll also want to predict how long your system will operate without failure, so examine the amount of heater life you'll be needing. And because electricity costs money, take efficiency factors into account so your system will cost as little as possible to operate.
With these considerations in mind, carefully review them all to be sure you do, in fact, have definitive information to decide on a particular solution to your heating problem. Some of this supporting information may not be readily available or apparent to you. You may find it necessary to consult the reference tables and charts in this reference data section, or reference a book that deals with the particular parameter you need to define. At the minimum, the thermal properties of both the material(s) being processed/heated and their containing vessel(s) will be required.
Figuring a safety factor requires some intuition on your part. The list of possible influences can be great. From changing ambient operating temperatures, caused by seasonal changes, to a change in material or material temperature being processed, you must carefully examine all the influences.
Generally speaking, the smaller the system with fewer variables and outside influences---the smaller the safety factor. Conversely, the larger the system and the greater the variables and outside influences — the greater the safety factor.
Here are some general guidelines:
  • 10% safety factor for small systems with closely calculated power requirements
  • 20% safety factor is average20% to 35% for large systems
The safety factor should be higher for systems that have production operations that contain equipment cycles subjecting them to excessive heat dissipations, e.g.: opening doors on furnaces, introducing new batches of material that can be of varying temperatures, large radiant applications and the like.
Flow Factor
216-765-4231

Tuesday, August 26, 2014

Penberthy Jet Pumps



Penberthy jet pumps from Flow Factor

Penberthy Jet Pump (eductor)



56877-090   GL series STEEL

56877-010   GL series IRON

56877-030   GL Series STAINLESS

56875-010   GL series IRON

56876-000   GH series BRONZE

56844-000    LL series  BRONZE

56870-000   GH series  BRONZE

56849-020   LH series PVC

56847-020   LH series PVC

56873-010   GL series IRON

56877-000   GL series BRONZE  1-1/2 inch

56874-010   GH series IRON

56880-000   GH series BRONZE

56876-030   GH series  STAINLESS

56864-030  GH series in Stainless


Penberthy eductors cane used for mixing, heating and blending of gases, liquids and some solids.

216-765-4231
info@flowfactor.com


Sunday, March 30, 2014

Penberthy GH/GL Eductors for Gases

Penberthy/Pentair GL/GH Eductors (jet pumps) for pumping/heating with gas from Flow Factor

Pumping gases using a liquid or gas (steam or air) motive is an effective means of exhausting, evacuating and priming and can be used in a wide variety of operations and industries. These Pentair Penberthy Jet Pumps offer many advantages over other methods of moving gases; they have no moving parts and provide a very simple cost effective method of handling a wide variety of gases and processes. These units are used for all aspects of water treatment, refrigeration, petroleum, petro chemical, brewing, distilling and general process industries.



Features & Benefits:
  • Simple two-piece construction
  • No moving parts to wear out
  • No lubrication
  • Wide variety of special material to suit the most diverse applications
  • Virtually maintenance free
  • Cost effective and inexpensive
  • No power or special installation requirements  



Sizes: 1/2” to 12”
Threaded (Standard) or flanged connections

Operating Pressure Range 20 to 200 psig

Application Range, inches HG. ABS. 0.5 to 30

Materials:
Bronze, Ductile Iron, Carbon Steel, Stainless Steel, PVC, PP, PVDF
Wide variety of special materials also available  

Penberthy jet pumps can also use steam or a gas (air) as the operating media for exhausting, evacuating or priming operations. Primary uses of these types of pumps are for exhausting or evacuating gases. Exhausting means removing gases from an area at a continuous rate while maintaining pressure at a constant level. Evacuation means drawing gases from a defined volume by pumping the vessel down from an initial pressure to a final lower pressure. These steam/gas motive jet pumps meet the industry's most stringent requirements, while providing a simple, low-cost method of transporting gases, operating flawlessly even in the harshest work environments.
Penberthy Models GL and GH operate at pressures from 20 to 120 psig (140 to 830 kPag), the overall capacity being slightly higher when using air as the operating media. U and L Models are single-stage ejectors while the 2NC is a two-stage, non-condensing ejector using steam as the operating media. All these units provide maintenance-free pumping capabilities.
Some uses for steam/gas motive jet pumps include: creating vacuums, exhausting vapors from process systems, evacuating tanks & vessels, priming, fume removal, fluid concentration, humidifying and drying. Industries that could benefit from the use of the jet pumps might include: chemical processing, textile manufacturing, food processing, petroleum production & refining, sterilization and HVAC.

Typical applications involve either exhausting or evacuating. Similar information is needed in order to determine the specific jet pump for your application. Using the information required (listed below), fill out an application form and submit to Penberthy sales representative or the factory to determine the correct pump for your needs.
If Exhausting (Continuous Suction Flow)

Motive:
  • Gas/Steam
  • Pressure (Available)
  • Flow Rate (Available volume-scfm)
  • Temperature
  • Molecular Weight (Gas only)
Suction:
  • Pressure (Inches Hg Abs-kg/sq cm Abs)
  • Flow Rate-scfm
  • Temperature
  • Molecular Weight
Discharge:
  • Pressure (That unit must overcome)

If Evacuating (Sealed Vessel-Pump Down)
  • Volume of Space to Evacuate
  • Required Evacuation Time (Minutes)
MOTIVE:
This function is the power phase of the pumping operation. At this stage, the velocity of the motive media increases as it passes through a nozzle. This phase of the pumping operation takes advantage of the kinetic properties of the motive media, whether it is liquid, steam or gas. Because of this, design differences may exist within the motive connection of the jet pump. For instance, jet pumps with liquid motives use a converging nozzle, since liquids usually cannot be compressed. On the other hand, jet pumps with gas or steam motives use converging/diverging nozzles to achieve trans-sonic flow velocity. The critical flow paths of all Penberthy jet pumps are smoothly machined with no abrupt turns or steps in order to produce the most efficient flow during the motive function. Without this direct flow design and smooth interior surface, the jet pump would not operate at peak efficiency.
SUCTION:
This connection of the jet pump is where the pumping action takes place. The high velocity stream of the motive causes a drop in pressure in the suction chamber. This allows pressure in the suction vessel to push a liquid, steam or gas into the suction chamber of the jet pump. This, in turn, is entrained by the high-velocity motive stream emerging from the inlet nozzle
DISCHARGE:
As the motive flow combines with the suction medium, some kinetic energy of the MOTIVE is transferred to the SUCTION, mixing and discharging at a reduced pressure. The amount of pressure that can be recovered depends on the ratio of the MOTIVE flow to SUCTION flow, plus the amount of SUCTION pressure built up in the suction vessel. Kinetic energy is converted back to pressure as the mixed media passes through the diverging taper and is discharged out the pump.


GL series jets have a motive pressure range of 60-120 psig and suction range of 6-30 inches.
GH series jets have a motive pressure range of 20-80 psig and a suction range of 6.5-30 inches.
Cast eductors can be made from 1/2 inch size to 4 inch size.
Fabricated eductors are 4 inches and up.
Non-Metallic are 1/2 to 3 inch size, these are PVC, Poly Pro, and Kynar.
The common metals are Cast Iron, Low Lead Bronze, Carbon Steel and 316L Stainless Steel.

www.flowfactor.com
866-360-9830