PugachevA. K., and RoslyakovO. A., Processing of fluoroplastics.Khimiya, Leningrad, 1987, 65 pp.
2.
IstominN. P., and SemenovA. P., Antifriction properties of composite materials based on fluoropolymers.Nauka, Moscow, 1981, 147 pp.
3.
SemenovA. P., and SavinskiiYu. E., Fluoroplastic–metal bearings.Mashinostroenie, Moscow, 1976, 192 pp.
4.
EnikolopovN. S., Principles of creation of polymer composites.Khimiya, Moscow, 1990, 238 pp.
5.
BelyiV. A., Polymer–metal materials and articles.Khimiya, Moscow, 1979, 135 pp.
6.
KatsH. S., and MilewskiJ. V., Fillers for polymer composites.Khimiya, Moscow, 1981, 736 pp.
7.
AdamenkoN. A., Properties of fluoroplastic composite materials produced by shock-wave compaction. Perspektivnye Materialy, No. 4, 1999, p. 68–72.
8.
AdamenkoN. A., Structure and properties of fluoroplastic and ultrahigh molecular weight polyethylene produced by shock-wave compaction. Plast. Massy, No. 10, 2000, p. 12–15.
9.
AdamenkoN. A., Structure and properties of shock-wave-treated dispersed thermoplastics. Materialovedenie, No. 1, 2001, p. 36–40.
10.
Teitel'baumB. Ya., Thermomechanical analysis of polymers.Khimiya, Moscow, 1979, 234 pp.
11.
KryzhanovskiiV. K., Application of thermomechanical analysis for assessing processing properties of polymeric materials. Plast. Massy, No. 3, 2002, p. 18–21.
12.
AdamenkoN. A., Properties of iron–fluoroplastic composite produced by shockwave compaction in ampoules. Perspektivnye Materialy, No. 4, 2003, p. 83–86.