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Medical tubing has evolved to be a complex, sophisticated product combining various materials, technologies and processes.
October 8, 2012
By: Mark Crawford
Tubing and catheters used in medical devices are growing increasingly sophisticated as medical device OEMs go beyond dimensional requirements to design higher performance into their devices. Higher performance is being driven by specialty compounds, tighter specifications, more lumens with thinner walls between lumens and reinforcement of individual lumens with exotic composites that incorporate a variety of materials such as combinations of polymer fibers and metallic braid elements, polyamide or polytetrafluoroethylene (commonly abbreviated as PTFE). Kink resistance is more prevalent than ever and wire- or filament-reinforced tubes, as well as multiple materials, are being utilized to give better performance. “An increasing number of customers want smaller tubes that still have the same physical requirements as the bigger tubes they’ve used in the past,” said Robert Kolonia, president of MedConnection, a Phillipsburg, N.J.-based medical device subcontractor that manufactures catheters and other components. “Tighter tolerances with thinner walls are now required for some of these applications. We have worked on tubing with walls as thin as 0.001 inches and diameters as small as 0.012 inches.” Tubing continues to get smaller and thinner as minimally invasive surgery continues to drive the need for multi-functionality from tubing. “In essence, everybody wants smaller and more complex tubing as the number of procedures that utilize minimally invasive techniques and technologies continues to grow,” commented Rudi Gall, managing director for Raumedic, a Leesburg, Va.-based provider of molding, assembly and extrusion services for polymers and silicones. “For example, a single-lumen microbore tube will not be suitable for future medical applications. The tubing must have the same micro-diameter, but also contain multiple lumens to perform tasks such as guidewire access points, fluid-transfer channels, inflation ports or even steering lumens. The challenge is to work with properly dimensioned drawings, whereby the outer diameter and the wall thickness between the lumens are well balanced. When this is properly engineered it’s not a problem to run tubing with up to 13 lumens.” More complex, multiple-use devices are required to last longer and perform more functions than ever before. A trend toward shorter and smaller-sized tubing is gaining traction, to a point where traditional tubing suppliers cannot or will not supply micro-sized tubing. “There is also a ‘less is more’ approach to the design of medical devices today,” added Cassie Botti, director of business development for Fluortek Inc., an Easton, Pa.-based custom manufacturer of medical tubing and partially finished medical devices. “Medical device manufacturers are looking for higher-performance devices with fewer components in order to reduce cost and failure modes.” Combine and Innovate A growing design challenge for tubing and catheter manufacturers is combining physical properties that normally are contrary to each other to create higher-performance products—such as highly flexible tubing that has good pushability, or kink-resistant tubing that still is highly torquable. “These combinations affect the way we design tubing and the processes we use to produce tubing,” said Robert LaDuca, CEO for Duke Empirical, a Santa Cruz, Calif.-based medical tubing extruder and manufacturer of catheters, components and devices. “There is an infinite number of design configurations available and by utilizing a long history of experience and capability we can recommend how to achieve the desired performance, which provides a customized solution for the developer’s unique application.” These more complex products often are manufactured using a combination of extrusion technologies—for example, combining micro-extrusion needs with co-extrusion, multi-lumen capability, metal or monofilament braiding and wire inserts. The range of polymers that can be used in tubing extrusion is unlimited—even so, Gall said, most customers “still are interested in those thermoplastics that have been long-established in medical and pharmaceutical applications such as thermoplastic polyurethanes, polyamides, polyolefins, thermoplastic elastomers and plasticized polyvinyl chloride.” Combining multiple polymer layers to produce tubing of the smallest possible dimensions for medical devices (such as insulin delivery applications or contrast media injection) is a challenge that requires state-of-the-art equipment and precise, real-time monitoring and control. Special micro-extrusion lines can produce multilayer tubing for different applications with up to three different polymer materials. “With such equipment an inner tube diameter of around 0.004 inches with a wall thickness of around 0.002 inches can be achieved,” Gall said. “These extrusion lines work with extremely small throughput rates, as little as 2 ounces per hour.” Meeting these dimensions and tolerances is a huge challenge to repeatability and reproducibility. Another complicating factor is the emergence of electronics in medical devices that often require copper or stainless steel wires to be embedded within tubing walls to allow for data transfer. “Metal or filament-reinforced tubing, which requires braiding know-how and capabilities, is also a growing requirement to achieve a high degree of torque (the ability to twist the catheter) for catheter guidance,” Gall added. Co-extrusion of multiple polymer material also is used to combine an inner layer and outer layer of two different polymer materials—a good example is an epidural catheter used in regional anesthesia. This tubing is inserted via a tiny metal cannula into the nerve channel in the spine. The catheter must be narrow enough and flexible enough not to damage nerves within the spinal cord, but also have enough kink resistance to smoothly negotiate the tight radii between the spinal vertebrae. The tubing also must be transparent so the fluid can be visually checked by the anesthesiologist. A two-layer tubing design, consisting of a polyamide inner layer and a polyurethane outer layer, will meet these performance requirements. Both materials achieve a firm, permanent bond with each other during the extrusion process. The polyamide layer is responsible for the mechanical strength of the catheter—especially the kink resistance. The benefit of the polyurethane outer layer is that it can easily be printed with length markers.
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