• Title/Summary/Keyword: Polyamide-6

Search Result 146, Processing Time 0.021 seconds

Physical Properties of Poly(vinyl alcohol) with Polyamide-epichlorohydrin as a Wet Strength Additive for Paper (Polyamide-epichlorohydrin 지력 증강제 함유 폴리비닐알코올의 물성 연구)

  • Jang, Yunjae;Lee, Hwaljong;Kang, Ho-Jong
    • Polymer(Korea)
    • /
    • v.37 no.6
    • /
    • pp.730-735
    • /
    • 2013
  • The physical properties of poly(vinyl alcohol) (PVA) with polyamide-epichlorohydrin (PAE) for wet strength additives in paper industry were investigated. Upon introducing PAE to PVA, not only melting and crystallization enthalpy in DSC but also the area of diffraction peaks in XRD decreased, which represented the fact that PAE acted as a crosslinking agent for PVA. However, this crosslinking seemed to be physical crosslinking having relatively less bonding energy compared to chemical crosslinking since the crystallization in PVA was able to take place by thermal annealing. This physical crosslinking and crystallization by thermal annealing enhanced the thermal stability and mechanical strength in PVA and consequently, these improvements are desired in the paper manufacturing process to increase the dry and wet strength in the paper.

EVALUATION OF SEISMIC SHEAR CAPACITY OF PRESTRESSED CONCRETE CONTAINMENT VESSELS WITH FIBER REINFORCEMENT

  • CHOUN, YOUNG-SUN;PARK, JUNHEE
    • Nuclear Engineering and Technology
    • /
    • v.47 no.6
    • /
    • pp.756-765
    • /
    • 2015
  • Background: Fibers have been used in cement mixture to improve its toughness, ductility, and tensile strength, and to enhance the cracking and deformation characteristics of concrete structural members. The addition of fibers into conventional reinforced concrete can enhance the structural and functional performances of safety-related concrete structures in nuclear power plants. Methods: The effects of steel and polyamide fibers on the shear resisting capacity of a prestressed concrete containment vessel (PCCV) were investigated in this study. For a comparative evaluation between the shear performances of structural walls constructed with conventional concrete, steel fiber reinforced concrete, and polyamide fiber reinforced concrete, cyclic tests for wall specimens were conducted and hysteretic models were derived. Results: The shear resisting capacity of a PCCV constructed with fiber reinforced concrete can be improved considerably. When steel fiber reinforced concrete contains hooked steel fibers in a volume fraction of 1.0%, the maximum lateral displacement of a PCCV can be improved by > 50%, in comparison with that of a conventional PCCV. When polyamide fiber reinforced concrete contains polyamide fibers in a volume fraction of 1.5%, the maximum lateral displacement of a PCCV can be enhanced by ~40%. In particular, the energy dissipation capacity in a fiber reinforced PCCV can be enhanced by > 200%. Conclusion: The addition of fibers into conventional concrete increases the ductility and energy dissipation of wall structures significantly. Fibers can be effectively used to improve the structural performance of a PCCV subjected to strong ground motions. Steel fibers are more effective in enhancing the shear performance of a PCCV than polyamide fibers.

Synthesis, Structural Characterization and Thermal Behaviour of Block Copolymers of Aminopropyl-Terminated Polydimethylsiloxane and Polyamide Having Trichlorogermyl Pendant Group (Aminopropyl-Terminated Polydimethylsiloxane과 Trichlorogermyl 곁가지 그룹을 갖는 Polyamide 블록공중합체의 합성, 구조분석 및 열적거동)

  • Gill, Rohama;Mazhar, M.;Mahboob, Sumera;Siddiq, Muhammad
    • Polymer(Korea)
    • /
    • v.32 no.3
    • /
    • pp.239-245
    • /
    • 2008
  • Block copolymers of the general formula $[(-CO-R'-CO-HN-Ar-NH-CO-R'-CO)_xNH(CH_2)_3-(Me_2SiO)_y(CH_2)_3NH_2]_n$, [n=18.00 to 1175.0] where $R'=CH_2CH(CH_2GeCl_3)$;$CH_2CHGeCl_3CH_2$; and $Ar=-C_6H_4$;$-(o.CH_3C_6H_4)_2$;$-o.CH_3OC_6H_4)_2$;$-(o.CH_3C_6H_4)$ were prepared by a polycondensation reaction of polyamide containing a pendant trichlorogermyl group and terminal acid chloride $Cl(-CO-R'-CO-NH-Ar-NH-CO-R'-CO-)_xCl$ with aminopropyl-terminated polydimethylsiloxane $H_2N(CH_2)_3(Me_2SiO)_y-(CH_2)_3NH_2]$, (PDMS). These polymers were characterized by elemental analysis, $T_g$, FT-IR, $^1H$-NMR, solid state $^{13}C$-NMR, and molecular weight determination. The thermal stability of these copolymers was examined using thermal analysis techniques, such as TGA and DSC. Their molecular weights as determined by laser light scattering technique ranged $5.13{\times}10^5$ to $331{\times}10^5\;g/mol$. These polymers display their $T_g$ in the range of 337 to $393^{\circ}C$ with an average decomposition temperature at $582^{\circ}C$.

Preparation of Durable Softeners for Nylon Fiber Using Fatty Polyamide and Alkyl Imidazoline (지방산 폴리아미드 및 알킬이미다졸린을 이용한 나일론 섬유용 내구성 유연제의 제조)

  • Jung, Choong-Ho;Kim, Sung-Rae;Park, Hyong-Jin;Hahm, Hyun-Sik;Kim, Tae-Ok;Park, Hong-Soo
    • Journal of the Korean Applied Science and Technology
    • /
    • v.19 no.4
    • /
    • pp.291-296
    • /
    • 2002
  • Fatty polyamide that gives softness, lubrication and bulky property and alkyl imidazoline that gives durable softness and antistatic property were synthesized. then, an O/W-type durable softener (DSN) was prepared by the emulsion of the synthesized fatty polyamide and alkyl imidazoline. Emulsion stability of the DSN was good, and the mixed HLB value was 11.2. From the measurement of softness, lubrication, antistatic property, bending resistance, and color fastness, it was proved that the prepared DSN was a good durable softener for nylon.

Electrical and Thermo-mechanical Properties of DGEBA Cycloaliphatic Diamine Nano PA and SiO2 Composites

  • Trnka, Pavel;Mentlik, Vaclav;Harvanek, Lukas;Hornak, Jaroslav;Matejka, Libor
    • Journal of Electrical Engineering and Technology
    • /
    • v.13 no.6
    • /
    • pp.2425-2433
    • /
    • 2018
  • This study investigates a new organic based material and its dielectric and mechanical properties. It is a comprehensive nanocomposite comprising a combination of various types of nanofillers with hydrophobic silica nanoparticles (AEROSIL R 974) as a matrix modifier and a polyamide nano nonwoven textile, Ultramid-Polyamide 6, pulped in the electrostatic field as a dielectric barrier. The polymer matrix is an epoxy network based on diglycidyl ether of bisphenol A (DGEBA) and cycloaliphatic diamine (Laromine C260). The designed nanocomposite material is an alternative to the conventional three-component composites containing fiberglass and mica with properties that exceed current electroinsulating systems (volume resistivity on the order of $10^{16}{\Omega}{\cdot}m$, dissipation factor tan ${\delta}=4.7{\cdot}10^{-3}$, dielectric strength 39 kV/mm).

Melt viscosity and Morphology of Reactive Blends (Coupling Agent를 이용한 Polyamide 6와 Polyester Elastomer의 반응동반 블랜드)

  • Byung Kyu Kim;Sang Hyun Baek;Lee Keun Yoon
    • The Korean Journal of Rheology
    • /
    • v.11 no.1
    • /
    • pp.50-56
    • /
    • 1999
  • Melt blends of polyamide 6 (PA 6) with polyester elastomer (PEL) were prepared in a corotating twin screw extruder using two types of coupling agent(CA), viz. diglycidyl ether of bisphenol A (DGEBA) and 1,4-phenylene bis(2-oxazoline) (PBO). Notched impact strength of PA 6 as well as PA 6/PEL blends increased with the addition of coupling agent, especially with DGEBA and the maximum impact toughening of the blend was obtained with 0.6%(by mol) DGEBA, where a minimum domain size was observed from SEM. Melt viscosities of the untreated blends were higher than those of base resins at low frequencies. Viscosities of base resins as well as blends increased with the addition of CA, and the effect was much more pronounced with DGEBA, especially for PA 6 and PA 6-rich blends.

  • PDF

Evaluation of Tribological Characteristics of Diamond-Like Carbon (DLC) Coated Plastic Gear (플라스틱 기어의 트라이볼로지적 특성 향상을 위한 DLC 코팅 적용)

  • Bae, Su-Min;Khadem, Mahdi;Seo, Kuk-Jin;Kim, Dae-Eun
    • Tribology and Lubricants
    • /
    • v.35 no.1
    • /
    • pp.1-8
    • /
    • 2019
  • Demand for plastic gears are increasing in many industries due to their low production cost, light weight, applicability without lubricant, corrosion resistance and high resilience. Despite these benefits, utilizing plastic gears is limited due to their poor material properties. In this work, DLC coating was applied to improve the tribological properties of polyamide66 gear. 0 V, 40 V, and 70 V of negative bias voltages were selected as a deposition parameter in DC magnetron sputtering system. Pin-on-disk experiment was performed in order to investigate the wear characteristics of the gears. The results of the pin-on-disk experiment showed that DLC coated polyamide66 with 40 V of negative bias voltage had the lowest friction coefficient value (0.134) and DLC coated PA66 with 0 V of negative bias voltage showed the best wear resistance ($9.83{\times}10^{-10}mm^3/N{\cdot}mm$) among all the specimens. Based on these results, durability tests were conducted for DLC coated polyamide66 gears with 0 V of negative bias voltage. The tests showed that the temperature of the uncoated polyamide66 gear increased to about $37^{\circ}C$ while the DLC coated gear saturated at about $25^{\circ}C$. Also, the power transmission efficiency of the DLC coated gear increased by about 6% compared to those without coating. Weight loss of the polyamide66 gears were reduced by about 73%.

Fabrication of Electroconductive Textiles Based Polyamide/Polyurethan Knitted Fabric Coated with PEDOT:PSS/Non-oxidized Graphene (PEDOT:PSS/그래핀 코팅된 폴리아미드/폴리우레탄 혼방 편직물 기반의 전기전도성 텍스타일 제조)

  • Luo, Yuzi;Cho, Gilsoo
    • Fashion & Textile Research Journal
    • /
    • v.24 no.1
    • /
    • pp.146-155
    • /
    • 2022
  • We proposed a simple process of creating electroconductive textiles by using PEDOT:PSS(Poly(3,4-ethylenedioxythiophene):poly(styrenesulfonate))/non-oxidized graphene to coat polyamide or polyurethane knitted fabric for smart healthcare purposes. Electroconductive textiles were obtained through a coating process that used different amounts of PEDOT:PSS/non-oxidized graphene solutions on polyamide/polyurethane knitted fabric. Subsequently, the surface, electrical, chemical, weight change, and elongation properties were evaluated according to the ratio of PEDOT:PSS/non-oxidized graphene composite(1.3 wt%:1.0 wt%; 1.3 wt%:0.6 wt%; 1.3 wt%:0.3 wt%) and the number of applications(once, twice, or thrice). The specimens' surface morphology was observed by FE-SEM. Further, their chemical structures were characterized using FTIR and Raman spectroscopy. The electrical properties measurement (sheet resistance) of the specimens, which was conducted by four-point contacts, shows the increase in conductivity with non-oxidized graphene and the number of applications in the composite system. Moreover, a test of the fabrics' mechanical properties shows that PEDOT:PSS/non-oxidized graphene-treated fabrics exhibited less elongation and better ability to recover their original length than untreated samples. Furthermore, the PEDOT:PSS/non-oxidized graphene polyamide/polyurethane knitted fabric was tested by performing tensile operations 1,000 times with a tensile strength of 20%; Consequently, sensors maintained a constant resistance without noticeable damage. This indicates that PEDOT:PSS/non-oxidized graphene strain sensors have sufficient durability and conductivity to be used as smart wearable devices.

Effect of injection molding conditions on morphology of binary polymer blends (이성분계 고분자 블렌드의 형태학에 미치는 사출 조건의 영향)

  • Son, Young-Gon
    • Journal of the Korea Academia-Industrial cooperation Society
    • /
    • v.9 no.1
    • /
    • pp.165-169
    • /
    • 2008
  • The effect of processing conditions on the morphology of polyphenyleneoxide (PPO)/polyamide 6 (PA 6) blends were investigated. Injection molded part with a $15cm{\times}15cm{\times}3.2mm$ sized plate was molded with various injection molding conditions, and the morphology of the injection molded blends was investigation by using SEM. As a result, we found that molded part shows very complicated morphology because it has experienced complex thermal, shear and elongation history during the processing.

Effect of Adding Graphene/Carbon Nanotubes (FCN) on the Mechanical Properties of Polyamide-Nylon 6 (그래핀/탄소나노튜브(FCN) 첨가에 따른 Polyamide-Nylon 6의 기계적 특성에 미치는 영향)

  • Seung-Jun Yeo;Hae-Reum Shin;Woo-Seung Noh;Man-Tae Kim
    • Journal of the Korean Society of Industry Convergence
    • /
    • v.26 no.6_3
    • /
    • pp.1297-1303
    • /
    • 2023
  • Research on enhancing the mechanical strength, lightweight properties, electrical conductivity, and thermal conductivity of composite materials by incorporating nano-materials is actively underway. Thermoplastic resins can change their form under heat, making them highly processable and recyclable. In this study, Polyamide-Nylon 6 (PA6), a thermoplastic resin, was utilized, and as reinforcing agents, fused carbon nano-materials (FCN) formed by structurally combining Carbon Nanotube(CNT) and Graphene were employed. Nano-materials often face challenges related to cohesion and dispersion. To address this issue, Silane functional groups were introduced to enhance the dispersion of FCN in PA6. The manufacturing conditions for the composite materials involved determining the use of a dispersant and varying FCN content at 0.05 wt%, 0.1 wt%, and 0.2 wt%. Tensile strength measurements were conducted, and FE-SEM analysis was performed on fracture surfaces. As a result of the tensile strength test, it was confirmed that compared to pure PA6, the strength of the polymer composite with a content of 0.05 wt% was improved by about 60%, for 0.1 wt%, about 65%, and for 0.2 wt%, the strength was improved by 50%. Also, when compared according to the content of FCN, the best strength value was shown when 0.1 wt% was added. The elastic modulus also showed an improvement of about 15% in the case of surface treatment compared to the case without surface treatment, and an improvement of about 70% compared to pure PA6. Through FE-SEM, it was confirmed that the matrix material and silane-modified nanomaterial improved the dispersibility and bonding strength of the interface, helping to support the load evenly and enabling effective stress transfer.