Welcome to ThermoPore's eCatalog! While the majority of ThermoPore's production originates with captive tooling, tooling that is used exclusively for one particular customer, the part geometries listed within this eCatalog originate from tooling that is enrolled in ThermoPore's ToolShare™ program. Need information about a combination or would you like to order a sample for quick evaluation? ThermoPore makes the process as easy as 1-2-3. Just select a ToolShare™ geometry, select an X-Pore™ Material, and request information or submit your sample order by clicking the "Order Sample" tab below.

  • ToolShare™ Geometries
  • X-Pore™ Materials
  • ToolShare™ Program
  • Request Information
  • Order Samples

Because so many of these parts are used in a project's early development, ThermoPore has developed a series of sizes that accommodate a simple interference fit with standard Tygon® medical grade tubing. Information from Saint-Gobain's regarding their line of Tygon® tubing is available by clicking on the following link, Tygon®, and their pdf product data sheet can be viewed by clicking Tygon® pdf. Tubing inside diameters are listed for interference fits between the outside diameter of the porous plastic part and the inside diameter of the Tygon® tubing. Tubing outside diameters are listed for interference fits between the inside diameter of the porous plastic part and the outside diameter of the Tygon® tubing.

Sheet

Sheet Geometry
Dimensions (inches / millimeters)
Tool Number Dim. A Dim. B Dim. C
Sht - 010 0.010 / 0.2 42 / 1067 44 / 1117
Sht - 062 0.062 / 1.6 42 / 1067 44 / 1117
Sht - 125 0.125 / 3.2 42 / 1067 44 / 1117
Sht - 250 0.250 / 6.3 42 / 1067 44 / 1117
Sht - 500 0.500 / 12.7 48 / 1219 96 / 2438

Single Diameter Part

Dimensions (inches / millimeters)
Single Diameter Geometry
Tool Number Dim. A Dim. B Tubing Size, ID
OD1 - 072 0.072 / 1.8 0.12 / 3.0 1/16" / AAX00003
OD1 - 100 0.100 / 2.5 0.135 / 3.4 3/32" / AAX00004
OD1 - 107 0.107 / 2.7 0.156 / 4.0  
OD1 - 135 0.135 / 3.4 0.240 / 6.1 1/8" / AAX00006
OD1 - 184 0.184 / 4.7 0.245 / 6.2  
OD1 - 185 0.185 / 4.7 0.138 / 3.5  
OD1 - 190 0.190 / 4.8 0.156 / 4.0  
OD1 - 198 0.198 / 5.0 0.360 / 9.1 3/16" / AAX00011
OD1 - 210 0.210 / 5.3 0.235 / 6.0  
OD1 - 278 0.278 / 7.1 0.185 / 4.7 1/4" / AAX000016
OD1 - 278 0.278 / 7.1 0.247 / 6.3 1/4" / AAX000016
OD1 - 306 0.306 / 7.8 0.310 / 7.9 5/16" / AAX00022

Single Diameter Part with Radius

Dimensions (inches / millimeters)
Single diameter geometry with radius
Tool Number Dim. A Dim. B Radius Tubing Size, ID
OD1R - 072 0.072 / 1.8 0.12 / 3.0 Yes 1/16" / AAX00003
OD1R - 135 0.135 / 3.4 0.24 / 6.1 Yes 1/8" / AAX00006
OD1R - 198 0.198 / 5.0 0.24 / 6.1 Yes 3/16" / AAX00011
OD1R - 260 0.26 / 6.6 0.36 / 9.1 Yes 1/4" / AAX000016
OD1R - 323 0.323 / 8.2 0.36 / 9.1 Yesl 5/16" / AAX00022
OD1R - 385 0.385 / 9.8 0.485 / 12.3 Yes  

Two Diameter Part with Radius

Dimensions (inches / millimeters)
Two diameter geometry with radius
Tool Number Dim. A Dim. B Dim. C Dim. D Radius Tubing Size, ID
OD2R - 072 0.072 / 1.8 0.188 / 4.8 0.25 / 6.4 0.363 / 9.2 Yes 1/16" / AAX00003
OD2R - 135 0.135 / 3.4 0.25 / 6.4 0.31 / 7.9 0.363 / 9.2 Yes 1/8" / AAX00006
OD2R - 198 0.198 / 5 0.25 / 6.4 0.38 / 9.7 0.363 / 9.2 Yes 3/16" / AAX00011
OD2R - 260 0.26 / 6.6 0.25 / 6.4 0.44 / 11.2 0.363 / 9.2 Yes 1/4" / AAX000016
OD2R - 322 0.323 / 8.2 0.25 / 6.4 0.5 / 12.7 0.485 / 12.3 Yes 5/16" / AAX00022
OD2R - 385 0.385 / 9.8 0.25 / 6.4 0.56 / 14.2 0.485 / 12.3 Yes  

One Outside Diameter, One Inside Diameters, Closed Ended Tube

Dimensions (inches / millimeters)
Closed ended tube geometry
Tool Number Dim. A Dim. B Dim. C Tubing Size, OD
CET - 177 0.177 / 4.5 0.302 / 7.7 1.5 / 38.1 3/16" / AAX00011
CET - 240 0.24 / 6.1 0.4 / 10.2 1.5 / 38.1 1/4" / AAX000016
CET - 365 0.365 / 9.3 0.525 / 13.3 1.5 / 38.1  
CET - 428 0.428 / 10.9 0.588 / 14.9 1.5 / 38.1  
CET - 490 0.49 / 12.4 0.406 / 10.3 1.5 / 38.1  
CET - 552 0.552 / 14.0 0.712 / 18.1 1.5 / 38.1  

Tube - One Outside Diameter, One Inside Diameter

Dimensions (inches / millimeters)
Tube Geometry
Tool Number Dim. A Dim. B Dim. C
TUB-050 0.50 / 12.7 0.25 / 6.4 36 / 914
TUB-070 0.75 / 19.1 0.50 / 12.7 36 / 914
TUB-085 0.85 / 21.6 0.62 / 15.7 48 / 1219
TUB-100 1.00 / 25.4 0.75 / 19.1 36 / 914
TUB-105 1.05 / 26.7 0.81 / 20.6 48 / 1219
TUB-129 1.29 / 32.8 0.96 / 24.4 48 / 1219
TUB-138 1.38 / 35.1 1.13 / 28.7 36 / 914
TUB-150 1.5 / 38.1 1.00 / 25.4 36 / 914
TUB-206 2.06 / 52.3 1.56 / 39.6 36 / 914
TUB-237 2.37 / 60.2 1.88 / 47.8 48 / 1219
TUB-287 2.87 / 72.9 2.22 / 56.4 48 / 1219
TUB-300 3.00 / 76.2 2.25 / 57.2 36 / 914

ThermoPore's X-Pore™ material listing also serves as an excellent starting point for your development project. Sorted first by raw material type and second by pore size, the X-Pore™ materials listed within this tabbed section characterize ThermoPore's material capabilities in very general terms. Of course, ThermoPore possesses ample amounts of material processing capability that can considerably broaden this material offering, so don't limit your design to the material options shown here.

Material Parameter PE10 PE25 PE60 PE100 PE150 PE-HV PP50 PP100 PP150 PVDF30 PTFE30
Polymer Type PE PE PE PE PE PE PP PP PP PVDF PTFE
Material Options H20/SS H20/SS H20/SS H20/SS H20/SS H20/SS H20/SS H20/SS H20/SS - -
Nominal Pore Size (µ) 10 25 60 100 150 30 50 100 150 30 30
Nominal Pore Volume (%) 50 50 50 50 50 60 45 45 45 45 40
Air Permeability (ft/min @ 1.2" H20 ΔP, material thickness of .125") <10 10-50 30-90 50-100 70-120 40-80 40-120 60-150 70-200 10-50 5-25
H2O Intrusion Pressure (mBar) 175 152 70 42 16 65 35 12 10 60 80
Air Filtration (ε > 98% @ 50 ft/min)) .5 µ 1 µ 5 µ 15 µ 30 µ 1 µ 10 µ 50 µ 75 µ 3 µ 3 µ
Water Filtration (ε > 95% @ 4 ft/min) 5 µ 10 µ 15 µ 20 µ 90 µ 10 µ 40 µ 100 µ 150 µ 15 µ N/A
Relative Raw Material Price $$$$ $ $ $ $ $$ $$ $$ $$ $$$ $$$$

Description of Material Parameters

Material Options

H20 - In there natural state, ThermoPore's porous materials will not wick water, i.e., they are hydrophobic. However, the material can be rendered hydrophilic through the use of simple raw material additives.

SS - A special additive can be incorporated into a porous plastic part's structure to cause the parts to be "self-sealing". You can learn more about this novel material additive and how it functions at ThermoTV.

Pore Size

Pore Size is determined through Mercury Intrusion Porsimetry. Due to mercury's high surface energy, the porous plastic does not seek to be "wetted" by the mercury. Put another way, the mercury does not naturally enter to pores of the porous plastic (as water does with a typical kitchen sponge). A mercury intrusion porsimeter, however, applies a know amount of force onto the liquid mercury in order to infuse the mercury into the pores of the porous plastic. Generally speaking, it takes more force to push the mercury into pores of smaller diameter and the mercury intrusion porsimeter measures and records the applied force and the amount of mercury infused into the porous plastic's structure. Analytical analysis of the curve creates a pore size distribution that is "bell" shaped in nature. The pore size value listed above represents the average pore size - but there are often times pore +/- 20% of this size within the porous plastic in lesser and lesser quantity as you travel away from the average.

Pore Volume

Pore Volume is determined through Mercury Intrusion Porsimetry testing. During this test, the sample's exterior (or envelop) volume is measured. Next, the volumetric amount of mercury introduced into the sample is record. The pore volume of the porous plastic is expressed as the ratio of air volume to plastic volume as a percentage. Therefore, a pore volume of 45% would describe a porous plastic article that was 55% plastic, and 45% void of plastic.

 

Water Intrusion Pressure

As described above for Bubble Point, porous materials have an affinity for "wetting" fluids, i.e., fluids with low surface energies. Increase the fluid's surface energy or decrease the surface energy of the porous material's surface, however, and the opposite is true. Porous materials with hydrophobic characteristics have a natural ability to withstand or hold back water intrusion into their structure. However, their ability is a function of three variables: the relative surface energy differences between the porous plastic and the challenging fluid, and 2) the pore size of the porous plastic, and 3) the amount of pressure that the fluid is exhibiting onto to porous plastic. If we use water as the challenging fluid and a polyolefin as the base polymer for the porous plastic, a material's water intrusion pressure increases as the pore size decreases. The amount of pressure that the material's is capable of incurring just prior to water intrusion is referred to as the water intrusion pressure. Water Intrusion tests are very valuable in hydrophobic venting applications where the largest through-hole might dictate a vent's ability to perform in various applications.

Filtration Efficiency

Air Filtration Efficiency describes a material's ability to capture particles of various sizes. This test involves the preparation of an upstream sample (also referred to as the influent sample) with a known concentration of particulate of know diameter. Typically, the upstream sample will be characterized by particle count data and particle size data. Next, the supply air is moved through the porous plastic. Many of the particles do not make their way through the porous plastic. As a result, there are fewer particles present in the down stream sample (also referred to as the effluent sample). The ratio of the number of particles of a specific particle size (diameter) in the influent versus the number of particles of a specific particle size (diameter) in the effluent can be expressed as a percentage. This percentage represents the penetration percentage. However, filtration efficiencies are typically expressed in terms of percent capture which is equal to one minus the penetration percentage.

Filtration efficiencies change with different flow rates. Flow rates are typically expressed in terms of "face velocity" which is calculated by dividing the volumetric flow rate by the size of the test sample. This yields a face velocity unit that is simply distance / unit time (for example, inches/sec., feet/minute, cm/sec., or m/sec.). Because of the fact that a material's filtration efficiency varies with changes in the face velocity of the influent stream, air filtration efficiency specs need to reference the test condition's face velocity, particle size, and capture efficiency. A typical format for filtration efficiency takes the following format: 99.9% efficient for particles with a diameter between .01 and .2 microns at a face velocity of 3 ft./min.

Air Permeability

Air Permeability describes the resistance that air incurs as it attempts to travels through a porous material. Materials with tight pore structure usually create more resistance to air flow than materials with more open or larger pore sizes. Air Permeability is typically expressed with three parameters: air flow rate, differential pressure, and time. Because air permeability is not linear with different face velocities, the proper specification of air permeability should include both differential pressure and face velocity values. In one scenario, the differential pressure can be held constant and the face velocity can be recorded (3 ft/min @ ΔP of 1.2" H2O). In a second scenario, the face velocity can be held constant and the differential pressure can be recorded (ΔP of 2.6" H2O @ face velocity of 3 ft/min). In yet a third scenario a Gurley number can be referenced. The Gurley number is equal to the amount of time (seconds) required for a known volume of air to pass through a known sample size of material when a constant pressure is applied to the influent air stream (i.e., a Gurley number of 23 sec.).


Tool Share Geometries

Molded parts require tooling - there's simply no way around it and production tooling can be a costly proposition. But what if you approach ThermoPore early enough in the design process and your assembly embodies enough flexibility to accommodate a part made form existing ThermoPore tooling? Alternatively, have you ever wondered if your part design and subsequent production tool has potential applications in other non-competitive industries. If you answered "yes" to either question then keep reading.

Consider the recent development project whereby ThermoPore was asked to produce a single diameter, industrial, hydrophobic wick. The same part geometry just happened to meet the needs of a development engineer designing a perfume cosmetic applicator. So what did ThermoPore do? We built a bridge between these two seemingly unrelated and non-competitive project opportunities and enrolled the tool into ThermoPore's ToolShare™ program.

So what is the ToolShare™ program and how does it work? If you chose to enroll your production tool into ThermoPore's ToolShare™ program, you'll receive tooling at a substantially reduced cost AND the product made from this tool will be sold to you for exclusive use into your selected market application. Even more, ThermoPore will cover the tools maintenance and replacement cost for life of the part's enrollment. Mean while, ThermoPore will make available this tool available to customers use into markets that are non-competitive to your business interest. Leverage ThermoPore's ToolShare™ for you own benefit today!

Need more information on a combination? No problem. Make use of the form below to request additional information on three parts. Specify the ToolShare Tool Number, X-Pore Material Numbers, and a Material Property description for each combination. In need of a quote? Use ThermoPore's Quote-Porous Plastic form page to ensure that we provide you with a complete reply.

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While ThermoPore does maintain an inventory of items made from the ToolShare™ tooling geometries, we cannot guarantee that we'll have every material iteration in stock at the time of your order. In the event that ThermoPore finds it necessary to manufacture custom samples for your evaluation, a sales engineer will contact you to discuss pricing options (Tube samples are 8" in length and sheet samples are 7" X 7").

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