• Title/Summary/Keyword: DGEBA

Search Result 176, Processing Time 0.018 seconds

Curing Kinetics and Mechanical Properties for Siloxane Contained ETSO-DDM/BPH Epoxy System (Siloxane을 포함한 ETSO-DDM/BPH계 에폭시 시스템의 경화동력학 및 기계적 특성 분석)

  • Kim, Hyo-Mi;Kim, Jong-Min;Han, Jung-Geun;Kim, Joo-Heon
    • Polymer(Korea)
    • /
    • v.33 no.4
    • /
    • pp.364-370
    • /
    • 2009
  • The curing kinetics and mechanical properties of siloxane-diaminodiphenylmethane (ETSO-DDM) on the two kinds of bisphenol (BPH) system which are DGEBA and DGEBF were investigated with the different contents of ETSO. To investigate the curing kinetics of the ETSO-DDM/BPH systems, differential scanning calorimeter (DSC) was used. The mechanical properties of ETSO-DDM/BPH systems were also examined by universal testing machine (UTM), tensile test and flexural test. From experimental results, the activation energies and mechanical properties of ETSO-DDM/BPH were improved with the decrease contents of ETSO. This was due to the high cross-linking density made from short length of ETSO-DDM, resulting in improving the mechanical inter-locking between ETSO-DDM and BPH in these systems.

Effect of Gamma Ray Irradiation on the Mechanical and Thermal Properties of MWNTs Reinforced Epoxy Resins

  • Shin, Bum Sik;Shin, Jin Wook;Jeun, Joon Pyo;Kim, Hyun Bin;Oh, Seung Hwan;Kang, Phil Hyun
    • Journal of Radiation Industry
    • /
    • v.5 no.2
    • /
    • pp.137-143
    • /
    • 2011
  • Epoxy resins are widely used as high performance thermosets in many industrial applications, such as coatings, adhesives and composites. Recently, a lot of research has been carried out in order to improve their mechanical properties and thermal stability in various fields. Carbon nanotubes possess high physical and mechanical properties that are considered to be ideal reinforcing materials in composites. CNT-reinforced epoxy system hold the promise of delivering superior composite materials with their high strength, light weight and multi functional features. Therefore, this study used multi-walled carbon nanotubes (MWNT) and gamma rays to improve the mechanical and thermal properties of epoxy. The diglycidyl ether of bisphenol A (DGEBA) as epoxy resins were cured by gamma ray irradiation with well-dispersed MWNTs as a reinforcing agent and triarylsulfonium hexafluoroantimonate (TASHFA) as an initiator. The flexural modulus was measured by UTM (universal testing machine). At this point, the flexural modulus factor exhibits an upper limit at 0.1 wt% MWNT. The thermal properties had improved by increasing the content of MWNT in the result of TGA (thermogravimetric analysis). However, they were decreased with increasing the radiation dose. The change of glass transition temperature by the radiation dose was characterized by DMA (dynamic mechanical analysis).

Effect of Cationic Initiator Content on Electron-beam Curing of Difunctional Epoxy Resin (양이온 개시제 함량이 2관능성 에폭시 수지의 Electron-beam 경화에 미치는 효과)

  • Soo-Jin Park;Gun-Young Heo;Jae-Rock Lee;Dong Hack Suh
    • Journal of the Korean Chemical Society
    • /
    • v.47 no.3
    • /
    • pp.250-256
    • /
    • 2003
  • In this work, the effect of cationic initiator content on the electron-beam (EB) curing process of diglycidylether of bisphenol-A (DGEBA) resin was studied using near-infrared spectroscopy (NIRS), thermogravimetric analysis (TGA), and critical stress intensity factor $(K_{IC})$. Benzylquinoxalinium hexafluoroantimonate (BQH) were used as an initiator and its content was varied from 0.5 to 3 phr. NIRS measurements showed that the hydroxyl group of EB-cured epoxy resin was increased with increasing the BQH content. Thermal stability and $K_{IC}$ value of EB-cured epoxy resin were increased with increasing the BQH content but were decreased above 2 phr content. These results could be attributed to the decrease of the conversion and degree of crosslinking. In another word, the conversion and degree of crosslinking were restricted by the incomplete network structure from high reactivity at the BQH content above 2 phr, resulting in decreasings of thermal stability and $K_{IC}$.

Mechanical Properties and Morphology of Epoxy/Polyamide/DDS/2E4MZ-CNS Reactive Blends (에폭시/폴리아미드/DDS/2E4MZ-CNS 반응성 블렌드의 형태학적 특징 및 기계적 물성)

  • Park, So-Hyun;Phuong, Thanh Vu;Song, Hyun-Woo;Park, Kyeong-Nam;Kim, Byung-Min;Choe, Youngson
    • Applied Chemistry for Engineering
    • /
    • v.19 no.5
    • /
    • pp.471-476
    • /
    • 2008
  • The thermal and mechanical properties and morphology of epoxy/polyamide/DDS/2E4MZ-CNS reactive blends with various amounts of polyamide were investigated. The amount of polyamide was 10, 20, and 30 phr and 2 phr of catalyst was added to the blend to cure at $180^{\circ}C$ for 30 min. By adding the catalyst, 2E4MZ-CNS, to the blend, the cure reaction occurred at a lower temperature. From the SEM images, it was found that the boundary of separated-phase was unclear and the phase was co-continuous. Without the catalyst, however, the boundary of separated-phase was clear. The control of cure temperature and morphology could be achieved by using a proper catalyst and consequently the mechanical strength increased by 20% compared to the blend without the catalyst due to the strong interaction between epoxy matrix and phase-separated polyamide at the interface.

Characterizations of Adhesion Property, Morphology and Cure Reaction of Epoxy/Polyamide/MPD Reactive Blend with Imidazole(2E4MZ-CN) Catalyst (이미다폴(2E4MZ-CN) 촉매 첨가에 의한 에폭시/폴리아미드/MPD 반응성 블렌드의 경화 반응, 형태학적 특징 및 접착력 향상 연구)

  • Song, Hyun-Woo;Kang, Hak-Su;Kim, Won-Ho;Marzi, Stephan;Kim, Byung-Min;Choe, Young-Son
    • Polymer(Korea)
    • /
    • v.33 no.4
    • /
    • pp.290-296
    • /
    • 2009
  • The morphology and mechanical properties of epoxy/polyamide/MPD/2E4MZ-CN reactive blends with various amount of catalyst were investigated. The cure behaviors, mechanical strengths, and morphological changes of the epoxy blend systems were analyzed by using DSC, UTM, and SEM, respectively. The amount of catalyst ranged from 0 to 3 phr, and the cure reaction occurred at $170^{\circ}C$ for 30 min. The maximum peaks in heat flow during cure reactions appeared at slightly lower temperature with increasing catalyst content, indicating that the cure reactions start at lower temperature by adding catalyst and polyamide rarely hinders the cure reaction paths. The co-continuous morphology was found in epoxy/polyamide(20 phr) blends and by adding catalyst to the blends much clearer and uniform co-continuous phase was observed. The surface tension of the mechanical test specimen was increased due to the AP plasma surface treatment, and then adhesion strength was increased by over 20% by adding 2 phr of catalyst to the blends. When considering morphological tuning of the blends by means of catalyst incorporation, it is expected that the increased elongation and adhesion strength can be achieved in the structural adhesive systems.

Improvement in Adhesion Properties of Epoxy/Polyamide/MPD Reactive Blends by means of AP Plasma Treatment and Morphological Tuning (상압 플라즈마 표면처리와 형태학적 조절에 의한 에폭시/폴리아미드/MPD 반응성 블렌드의 접착력 향상)

  • Song, Hyun-Woo;Kang, Hak-Su;Kim, Won-Ho;Marzi, Stephan;Kim, Byung-Min;Choe, Young-Son
    • Polymer(Korea)
    • /
    • v.33 no.4
    • /
    • pp.284-289
    • /
    • 2009
  • The morphology and mechanical properties of epoxy/polyamide/MPD reactive blends with various amount of polyamide were investigated. The cure behaviors, mechanical strengths, and morphological changes of the epoxy blend systems were analyzed by using DSC, UTM, and SEM, respectively. The amount of high soluble polyamide in epoxy ranged from 0 to 30 phr, and the cure reaction occurred at $170^{\circ}$ for 30 min. The start and maximum exothermic temperature in heat flows during cure reactions appeared at almost same temperature, indicating that soluble polyamide could rarely hinder the cure reactions. From the SEM images, it was found that the size of separated-phase was very fine about 100-300 nm, and at 20 phr of polyamide the boundary of separated-phase was unclear and the phase revealed co-continuous. By AP plasma treatment of specimen surface, the adhesion strength was increased by 20% due to enhanced surface free energy. By blending 20 phr of polyamide with epoxy, the adhesion strength was increased by 50% due to co-continuous phase in morphology. By considering the surface treatment of specimen and morphological tuning of the blends, it can be expected that the improvement in toughness and excellent adhesion strength can be achieved in structural adhesive systems.