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      • KCI등재

        李富孫의 『易經異文釋』과 項安世의 『周易玩辭』 비교 고찰

        임재규 동양고전학회 2024 東洋古典硏究 Vol.- No.94

        본 논문은 청대 이부손(李富孫)의 『역경이문석(易經異文釋)』과 송대 항안세(項安世)의 『주역완사(周易玩辭)』를 비교 고찰한 것이다. 본론의 2장에서 이부손의 『역경이문석』과 이문(異文)를 고찰하였다. 2장의 논의는 『청사고(清史稿)』 「열전(列傳)」 유림(儒林)편에 나와 있는 이부손 열전을 중심으로 전개하였으며, 『청사고』의 평가를 『역경이문석』의 관련 내용으로 증명하고자 했다. 즉 『청사고』는 이부손이 『역경이문석』의 이문(異文) 연구를 통해 『역경(易經)』의 고문(古文)을 복원하고자 하였다고 평가했다. 3장에서는 항안세의 『주역완사』와 사(辭)를 고찰하였다. 3장의 논의는 『사고전서회요(四庫全書薈要)』의 『주역완사』의 제요를 중심으로 전개하였다. 사고관신은 항안세의 역학이 기본적으로 정자의 역학을 계승했지만, 그렇다고 해서 항안세가 정자의 역학을 묵수한 것은 아니라고 평가하였다. 나아가 사고관신은 항안세의 역학을 의리와 상수의 겸유로 평가했다. 3장에서 필자는 『주역완사』에 대한 사고관신의 이러한 평가를 『주역완사』의 관련 내용으로 증명하고자 했다. 4장은 『역경이문석』의 이문석(異文釋)과 『주역완사』의 완사(玩辭)를 비교 고찰하였다. 『역경이문석』의 이문석(異文釋)과 『주역완사』의 완사(玩辭)의 공통점은 양자가 모두 『역경(易經)』의 원의를 복원하고자 했다는 것이며, 차이점은 『역경(易經)』의 원의를 복원하고자 한 방법론이다. 즉 『역경이문석』은 문자학과 고증학이라는 방법론을 주요한 방법론으로 사용하고 있으며, 『주역완사』는 의리학과 상수학의 겸유라는 방법론을 주요한 방법론으로 사용하고 있다. This paper is a comparative study of Yijingyiwenshi(易經異文釋) by Li Fusun(李富孫) of the Qing Dynasty and Zhouyiwanci(周易玩辭) by Xiang Anshi(項安世) of the Song Dynasty. In Chapter 2 of the main text, Li Fusun(李富孫)’s Yijingyiwenshi(易經異文釋) and Yiwen(異文) were examined. The discussion in Chapter 2 was developed focusing on Li Fusun(李富孫)’s biography in the Qingshigao(清史稿), and I tried to prove the evaluation of Qingshigao(清史稿) with the related contents of Yijingyiwenshi(易經異文釋). In other words, Qingshigao(清史稿) evaluated that Li Fusun(李富孫) attempted to restore Guwen(古文) of Yijing(易經) through research on Yiwen(異文) of Yijingyiwenshi(易經異文釋). In Chapter 3, Xiang Anshi(項安世)'s Zhouyiwanci(周易玩辭) and Ci(辭) were examined. The discussion in Chapter 3 was developed focusing on the summary of Zhouyiwanci(周易玩辭) of Sikuquanshuhuiyao(四庫全書薈要). Siku(四庫) official assessed that Xiang Anshi(項安世)'s Yixue(易學) basically inherited Chengzi(程子)‘s Yixue(易學), but that did not mean that Xiang Anshi(項安世) accept uncritically Chengzi(程子)‘s Yixue(易學). Furthermore, Siku(四庫) official evaluated Xiang Anshi(項安世)'s Yixue(易學) as a combination of Yili(義理) and Xiangshu(象數). In Chapter 3, I tried to prove this evaluation of Siku(四庫) official on Zhouyiwanci(周易玩辭) with related contents of Zhouyiwanci(周易玩辭). Chapter 4 compares Yiwenshi(異文釋) of Yijingyiwenshi(易經異文釋) and Wanci(玩辭) of Zhouyiwanci(周易玩辭). The common point between Yiwenshi(異文釋) of Yijingyiwenshi(易經異文釋) and Wanci(玩辭) of Zhouyiwanci(周易玩辭) is that both wanted to restore the original meaning of Yijing(易經), and the difference is the methodology to restore the original meaning of Yijing(易經). In other words, Yijingyiwenshi(易經異文釋) uses the methodology of philology and archaeological studies as its main methodology, and Zhouyiwanci(周易玩辭) uses the methodology of combining Yili(義理) and Xiangshu(象數) as its main methodology.

      • KCI등재후보

        Fabrication and mechanical properties of Si3N4/SiC/TiAgCu multilayered nanocomposites

        임재규,Do Won Seo 한양대학교 세라믹연구소 2004 Journal of Ceramic Processing Research Vol.5 No.3

        Two-layered Si3N4/SiC nano-composites with 20 vol.% SiC have been fabricated by two-step sintering of a powder mixture of α-Si3N4 and carbon powder with a mean size of 13 nm, and 5 wt.% Y2O3. Nano- sized SiC particles were formed through reactions: carbon and surface SiO2 on the Si3N4 particles, and carbon and Si3N4 particles. To combine the specific advantages of nanoscale ceramics with that of metals, they are often used together within one composite component. In this study, the fabrication and mechanical properties of a nanoscale SiC layer brazed with a Ti active alloy were investigated. It was shown that, with a variation of strain rate, the joints have a bending strength of 310-380 MPa, and the deflection of the interlayer increases with increasing strain rate. The fracture types are classified into three groups; cracks grow into the metal-brazing filler layer, the ceramic-brazing filler layer or inside the ceramic.

      • SCOPUSKCI등재

        저변형률시험법에 의한 섬유강화 복합재료의 응력부식균열에 관한 연구

        임재규,최태수,Lim, Jae-Gyu,Choi, Tae-Su 대한기계학회 1996 大韓機械學會論文集A Vol.20 No.11

        This paper was investigation of the stres corrosion cracking(SCC) mechanism and the properties of corrosion fracture surface of glass fiber reinforced plastics(GFRP) produced by hand lay up(HLU) method in synthetic sea water. Test material is GFRP, that was used vinylester type epoxy acrylate resin and an unsaturated polyester as the matrix and the chopped strand mat(CSM) type E-glss fiber as the reinforcement. The slow strain rate test(SSRT) was performed on dry, wet and saturated wet specimens in sea water. Here the pH concentration of synthetic sea water was 8.2 and the strain rate is 1 x $10^{-6}$($sec^{-1}$) and test temperature ranges varied from $-60^{\circ}C$ to $80^{\circ}C$. It could be confirmed the fact that wet specimens tested at a particular test temperature ranges were appeared the eviences of SCC such as con-planar, mirror and hackle zone. Moreover, SCC of GFRP in sea water was characterised by falt fracture surfaces with only small amounts of fiber pull-out, in partial.

      • KCI등재
      • KCI등재후보
      • KCI등재

        Cr-Mo鋼 熔接熱影響部의 破壞靭性과 熔接入熱量에 관한 硏究 II

        임재규,정세희 대한용접접합학회 1987 대한용접·접합학회지 Vol.5 No.2

        Post weld heat treatment (PWHT) is carried out to increase the fracture toughness in heat affected zone(HAZ) and remove the residual stress. There occur some problems such as toughness decreement and stress relief cracking(SRC) in the coarse grained HAZ subjected to the effect of tempering treatment. Especially, embitterment of structure directly relates to the mode of fracture and is appeared as the difference of fracture surface, that is, grain boundary failure. Therefore, in this paper, PWHT was carried out under the stress of 0, 10, 20 and $30kg/cm^2$ to simulate residual stress in HAZ welded by heat input of 10, 30 and 40KJ/cm. Applied stress in weld HAZ during PWHT assisted precipitin of over saturated alloying element in the structure, and grain boundary failure according to welding heat input didn't almost appear at the heat input of 10 KJ/cm, but it appeared from being the applied stress of $30kg/cm^2$ at $30KJ/cm and 20kg/mm^2$ at 40KJ/cm.

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