Uploaded May 2014 | Updated September 2026, 2 hours ago
Polyethylene in Knee Replacements: Brace Yourself
The knee joint endures more stress than any other joint in the human body. Thus, it is not surprising that it is often the first joint to fail. Knee injuries and normal aging can limit a person's mobility, motivating one to acquire a knee replacement. Such a manufactured joint has to react well within the human body, and endure the day-to-day strain sustained by such a heavily used joint. Most modern knee replacements are composed of a round metal plate attached to the femur that sits in a plastic bearing allowing the metal "ball and socket" joint to pivot. Titanium, cobalt, and nickel alloys are often used for the metal plates and femoral components, while ultra-high-molecular-weight polyethylene. This type of polyethylene is a high strength plastic making it relatively resistant to wear, but is compressible enough to cushion the impact exerted on the knee joint. These designs are still fairly new, and they have been relatively difficult to perfect. For example, one limitation of using polyethylene is that it wears down over time, often because of contact with the femoral components, causing gradual discomfort and limited mobility. Over time, the micro-motion between the femoral component and the polyethylene can wear down the plastic to such an extent that a total replacement is needed. Advancements have been made and research is underway to greatly extend the longevity of these devices, and with the implementation of ultra-high-molecular-weight polyethylene, this lifespan has already doubled. Engineers are perpetually striving to improve knee replacements by enhancing the quality of the materials used and the general mechanisms in which they used.
Resources
1. medicinenet.com/total_knee_replacement/article.htm
2. ncbi.nlm.nih.gov/pmc/articles/PMC2504099
3. my.clevelandclinic.org/orthopaedics-rheumatology/treatments-procedures/hic-total-knee-replacement-surgery.aspx
4. http://www.polytech.mat.ethz.ch/research/diss/visjager.pdf
5. http://www.cedars-sinai.edu/Patients/Programs-and-Services/Imaging-Center/For-Physicians/Musculoskeletal-Radiology/Exhibits-and-Presentations/Knee-Arthroplasty/Polyethylene-Problems.aspx
6. stryker.com/en-us/products/Orthopaedics/KneeReplacement/X3AdvancedBearingTechnology/index.htm
7. plasticpipe.org/pdf/tn-17_crosslinked_polyethylene_pex.pdf
8. amjorthopedics.com/fileadmin/qhi_archive/ArticlePDF/AJO/041060280.pdf
9. Peacock, Andrew J. Handbook of polyethylene: Structures, properties, and applications. New York: Marcel Dekker, 2000
Polyethylene in Knee Replacements: Brace Yourself
The knee joint endures more stress than any other joint in the human body. Thus, it is not surprising that it is often the first joint to fail. Knee injuries and normal aging can limit a person's mobility, motivating one to acquire a knee replacement. Such a manufactured joint has to react well within the human body, and endure the day-to-day strain sustained by such a heavily used joint. Most modern knee replacements are composed of a round metal plate attached to the femur that sits in a plastic bearing allowing the metal "ball and socket" joint to pivot. Titanium, cobalt, and nickel alloys are often used for the metal plates and femoral components, while ultra-high-molecular-weight polyethylene. This type of polyethylene is a high strength plastic making it relatively resistant to wear, but is compressible enough to cushion the impact exerted on the knee joint. These designs are still fairly new, and they have been relatively difficult to perfect. For example, one limitation of using polyethylene is that it wears down over time, often because of contact with the femoral components, causing gradual discomfort and limited mobility. Over time, the micro-motion between the femoral component and the polyethylene can wear down the plastic to such an extent that a total replacement is needed. Advancements have been made and research is underway to greatly extend the longevity of these devices, and with the implementation of ultra-high-molecular-weight polyethylene, this lifespan has already doubled. Engineers are perpetually striving to improve knee replacements by enhancing the quality of the materials used and the general mechanisms in which they used.
Resources
1. medicinenet.com/total_knee_replacement/article.htm
2. ncbi.nlm.nih.gov/pmc/articles/PMC2504099
3. my.clevelandclinic.org/orthopaedics-rheumatology/treatments-procedures/hic-total-knee-replacement-surgery.aspx
4. http://www.polytech.mat.ethz.ch/research/diss/visjager.pdf
5. http://www.cedars-sinai.edu/Patients/Programs-and-Services/Imaging-Center/For-Physicians/Musculoskeletal-Radiology/Exhibits-and-Presentations/Knee-Arthroplasty/Polyethylene-Problems.aspx
6. stryker.com/en-us/products/Orthopaedics/KneeReplacement/X3AdvancedBearingTechnology/index.htm
7. plasticpipe.org/pdf/tn-17_crosslinked_polyethylene_pex.pdf
8. amjorthopedics.com/fileadmin/qhi_archive/ArticlePDF/AJO/041060280.pdf
9. Peacock, Andrew J. Handbook of polyethylene: Structures, properties, and applications. New York: Marcel Dekker, 2000


![Xenon MCV - Aerogel as a Thermal Insulator
Aerogel as a Thermal Insulator
Brooke Adams
Hyoeun Kim
Oscar Sandoval
Scott Weiss
Our chosen technical challenge is the loss of energy due to poor insulators in building infrastructure. The problem with the insulators of todays buildings is that they are composed of materials that are not energy efficient in the long run. For starters, a typically large amount of material is needed for the insulators to even accomplish their task, compromising space in the building that is not necessary for its construction. Todays insulators also tend to be brittle, calling out for maintenance fees that make the tenure of the material to be expensive as well. Should a thermal insulator be inefficient in its duty, the more energy is needed for a building to stay warm or cold during the extreme seasonal temperatures occurring throughout the year. Energy unnecessarily spent compromises the source of where it is obtained from, depleting the already stretched energy sources demanded by humans worldwide.
Our chosen material will address many of these dilemmas in a unique and efficient way. Our chosen solution for the problem of insulation is the use of a green material named Aerogel. Aerogel is amazing for addressing thermal insulation because its composition almost nullifies almost all methods of heat transfer (convection, conduction, and radiation). This is due to the fact that the material is composed of 99.98% air, which is a terrible thermal conductor due to its properties as a gas. Aerogel also has other incredible properties such as being 500 times the strength of its counterpart silica aerogel. This could be because aerogel has certain polymers that support the silica chains within it, such as polyimide, along with interchain linking (networking). Aerogels are also extremely thin, hydrophobic, breathable, and fireproof, adding more properties that make it a desirable thermal insulator. The processing of aerogels is very costly, however, leading to expensive pricing for its acquisition. Although its cost may be exorbitant, aerogels astounding properties grants it much potential as a green building material in thermal insulation.
Works Cited:
[ RT ISOLAZIONI - Soluzioni termoisolanti in Aerogel ] - Tecnologia Aerogel. (n.d.). Retrieved April 27, 2014, from http://www.rtisolazioni.com/technology.php
Berge, A., & Johansson, P. (2012). Literature Review of High Performance Thermal Insulation (2). Retrieved from Chalmers University of Technology website: http://publications.lib.chalmers.se/records/fulltext/local_159807.pdf
Fricke, J., & Tillotson, T. (1997). Aerogels: production, characterization, and applications. Thin Solid Films, 297(1-2), 212-223. doi:10.1016/S0040-6090(96)09441-2
The Frontier - Aerogels: Their History, Structure, and Applications. (n.d.). Retrieved April 27, 2014, from http://geobeck.tripod.com/frontier/aerogels.html#link
Gromicko, N. (n.d.). Aerogel - Intl Association of Certified Home Inspectors (InterNACHI). Retrieved April 27, 2014, from http://www.nachi.org/aerogel.htm
Hartmann, J., Rubin, M., & Arasteh, D. (1987). Thermal and Solar-optical Properties of Silica Aerogel for Use in Insulated Windows. Retrieved from U.S. Department of Energy website: http://eande.lbl.gov/sites/all/files/publications/23386.pdf
What Makes Polymers Different? (n.d.). Retrieved April 27, 2014, from http://pslc.ws/macrog/kidsmac/differnt.htm
Media:
https://www.youtube.com/watch?v w0uQLHrVw0
https://www.youtube.com/watch?v=E-xhxS581Uc
https://www.youtube.com/watch?v=8E-MtJBAZvw
https://www.youtube.com/watch?v=ZDe6GNCilV4
http://sweetclipart.com/hourglass-design-873
http://www.thermablok.com/images/flame-heat-resisant-thermablok-face.jpg
http://upload.wikimedia.org/wikipedia/commons/e/ea/Aerogelbrick.jpg
http://mycrazytown.com/wp-content/uploads/2013/08/aerogel.jpg
http://mynameisnotomlette.files.wordpress.com/2012/11/shattered-glass.jpg
http://pamelanorris.files.wordpress.com/2010/04/aerogel-process2.jpg
http://supercriticalfluids.blogspot.com/2012/01/supercritical-fluids-in-2012.html
http://pamelanorris.wordpress.com/research/aerogel-lab/
http://faculty.uscupstate.edu/llever/Polymer%20Resources/Crystalline.htm
https://www.llnl.gov/str/Foxhighlight.html Xenon MCV - Aerogel as a Thermal Insulator](https://i.ytimg.com/vi/hYwlxv0oooY/mqdefault.jpg)







