This paper presents experimental results for evaluating bond strength of FRP Hybrid Bars(HYB). In order to confirm the bond strength of HYB, direct bond strength tests were performed on 20 specimens. 20 specimens made of deformed steel bars were also tested for relative comparison. HYB and deformed steel bars were embedded in a concrete block with a size of 200 mm and different attachment lengths were applied depending on the diameter of the reinforcing bars. During the test, load and relative displacement(slip) were measured and the load-displacement behaviors of all specimens were analyzed from the measured results. The maximum bond strength of deformed steel bars were higher than that of HYB regardless of its diameter. However, after the maximum load, the deformed steel bars were more dominant than the HYB in the sudden load reduction tendency.
GFRP(Glass Fiber Reinforced Polymer Plastic) has a superior corrosion resistance, high specific strength/stiffness, etc. Therefore, such properties can be used to mitigate the problems associated with the use of conventional construction materials. In this study, the various rib and pitch distance of hybrid fiber GFRP bars were evaluated by experimental method. From the test result, thirty two types of FRP hybrid bars such as spiral and cross type with the dimension of rib geometry were fabricated. To evaluate the bond properties of them, direct pull-out test was performed. All testing procedures including specimen preparation, set-up of test equipment and measuring devices were made in accordance with the recommendations of ASTM D 7913. From the test results, it was found that cross type hybrid GFRP reinforcing bars showed the highest bond strength than that of the others due to the higher relative rib area.
본 연구는 길이 1m의 SD400 D13, D10 철근 시편의 중앙 20cm를에 염화칼슘(CaCl2–10%)과 10V의 전압을 인가하여 부식을 촉진시킨 수, 부식으로 인해 줄어든 단면적과 철근의 인장 거동과의 관계를 파악하기 위한 것이다. 9주 동안의 실험을 통해 평균 15.57%의 단면 손실을 이루었으며, 이때 부식이 진행된 시편에서 항복응력의 저하, 탄성계수 감소 등의 현상이 나타난 것을 확인할 수 있다.
The purpose of this study is to investigate the bond characteristics of deformed steel bar for concrete with bamboo activated carbon. Pullout test was conducted for specimens with various replacement ratio (0%, 10%, 20%) of bamboo activated carbon. Test results show that it need to use a concrete with a replacement ratio of bamboo activated carbon of 10% or less to retain proper bond strength.
According to social needs, eco-friendly material for concrete structures has been developed in recent years. Hwang-toh is one of the eco-friendly architectural material and hwang-toh has been used by partial or complete replacement of portland cement. Pullout tests on deformed steel reinforcing bars with non-activated hwangtoh concrete are conducted in this paper. Experimental results, average bond strength of non-activated hwangtoh concrete was appeared to 7.3 MPa.
This paper describes pullout tests on deformed steel reinforcing bars with PVA fiber-reinforced activated hwangtoh concrete (PFRC). Four pullout specimens with the variation of the replacement ratio of PFRC to cement are prepared and test. Experimental results, average bond strength of PFRC was appeared to 19.81. MPa.
This study is to understand the structural behavior of flexural member according to the splice length of specimens reinforced by GFRP reinforcing bar. As compared with reinforcement, GFRP reinforcing bar has superior material properties such as non-corrosiveness, light weight, non-conduction, etc. However, GFRP reinforcing bar is difficult to use instead of reinforcement owing to brittle fracture when it failed. Therefore, GFRP reinforcing bar mixed with deformed reinforcing bar were used. A total of 5 specimen was produced and tested and the test main variables are the diameter of tension steel, lap splice length of GFRP reinforcing bar which are for investigating the reinforcement effects. The diameter of tension steel set as D10, and D13 and the lap splice length of GFRP reinforcing bar set as 30db, 45db and, 60db. The results of the experimental test, the specimen with GFRP reinforcing bar proved more reinforcement effect than the one without GFRP tie bar. At the same time, the specimen with tension steel of D13 increased an overall strength more than the one with tension steel of D10. The longer lap splice length showed increase the strength.
The purpose of this paper is to evaluate bond capacity of steel fiber reinforced concrete. Test variables were compressive strength of concrete and steel bar diameter and a total of six specimens in order to examine the discrepancy in bond resistance due to each variable. The specimens were tested by using universal testing machine in displacement control mode. From the test results, it can be seen that the bond strength increased with increasing diameter of steel bar for the same compressive strength of concrete. Also, the higher strength concrete is, the higher bond strength can be found in the test. Significant slip resistance inducing greater bond strength can be observed in the specimens with large diameter steel bar. All the specimens failed in splitting failure after its maximum load and compressive stress of concrete predominated in bond capacity.
Concrete and bar of bond performance used in the most RC structure. So Through recent studies and experiments for the attachment behavior of concrete and steel issues and evaluate their characteristics. Bar are two was used as the D13 and D16. The Bond stress was increased result of experiment by placing a variable length according to the Bond stress formulation according to the diameter and reinforced.
Bond strength of PCS-coated rebar is better than that of uncoated rebar and epoxy-coated rebar. It is also high bond strength at curing ages of 7-day or less, and coating thicknesses of 75 μm and 100 μm. The maximum bond strength of PCS-coated rebar at curing age of 3-hour is almost same as that of curing age of 1-day and 7-day. The maximum bond strength of PCS-coated rebar with EVA at polymer-cement ratio of 100%, and coating thickness of 100 μm is about 1.23 and 1.29 times respectively, the strength of uncoated rebar and epoxy-coated rebar. It is apparent that the curing age, coating thickness and polymer cement ratio are very important factors to improve the bond strength of PCS-coated rebar to cement concrete. We can havebasic information that it can replace epoxy coated rebar by the PCS-coated rebar with curing age at 3-hour and coating thickness of 100 μm.
본 연구는 고강도 철근을 확대머리 이형철근으로 사용하는 경우 정착길이 효과에 관한 실험 연구이다. 현행 기준에서는 확대머리 이형철근의 정착길이를 산정하는 식에서 철근의 설계기준강도를 400 MPa로 한정하고 있다. 고강도 철근에 대한 연구결과가 충분하지 않기 때문에 이러한 규정이 명시된 것이다. 따라서 본 연구에서는 설계기준 항목강도 600 MPa의 철근으로 확대머리 이형철근을 제작하여, 변수별 실험연구를 수행하였다. 실험은 철근의 정착길이, 철근의 개수, 그리고 확대머리의 형상 등의 변수로 계획하였다. 실험체는 정착길이가 긴 L형과 정착길이가 짧은 S형으로 분류하고, 확대머리의 형상은 원판형(A형)과 원뿔형(B형)으로 구분하였다. L형 실험체는 원판형 확대머리를 대상으로 철근 개수가 1∼3으로 변하는 3개의 실험체와 S형 실험체는 원판과 원뿔형 확대머리 형상에 대하여 정착길이를 L형의 50%, 45%, 40%, 35%로 변화한 실험체를 계획하였다. L형(LA형) 3개, SA형 4개, SB형 4개 등 총 11개의 실험체를 인발실험을 하였다. 실험결과는 콘크리트구조기준(부록 II)의 정착길이 산정 규정에 따라 평가하였으며, 그 결과 항복강도 600 MPa의 철근을 사용한 확대머리 이형철근은 현행기준의 설계식을 적용하여 설계할 수 있음을 보였다.
KCI 2012 and ACI318-11 contains development length provisions for the use of headed deformed bars in tension and does not allow their tension lap splices. In ACI318-11, the confinement factor, such as transverse reinforcement factor, is not used to calculate the development length of headed bars. The purpose of this experimental study is to evaluate the effect of confinement details to the lap splice performance of headed deformed reinforcing bars in grade SD400 and SD500. The confinement details are stirrups and tie-down bars in lap zone. Test results showed that specimens with only stirrups had the brittle failure and could not increase lap strengths, and that specimens with composite confinements by stirrups and tie-down bars had the flexural strengths over than nominal flexural strengths. Stirrups with tie-down bars can have an effect on improvement in lap splice of headed bars in grade SD400 and SD500.
The purpose of this experimental study is to evaluate that KCI2012 equation for the development length, ldt, of headed bars can be used to calculate the lap length of headed deformed bars in grade SD400~500 for high strength concrete. Test results showed that specimens with lap lengths equal to 1.3ldt had maximum flexural strengths as 0.84~0.90 times as the nominal flexural strengths. These observations indicate that 1.3 is unsuitable to the tensile lap length of headed deformed bars in grade SD400~500 for high strength concrete.
현행 콘크리트구조기준 (KCI2012) 및 ACI318-11에서 B급이음된 일자형 이형철근에 대하여 인장력에 대한 겹침이음길이를 정착길이의 1.3배로 산정하고 있다. 동일 기준에서 확대머리 이형철근의 정착길이를 제시하고 있지만 겹침이음상세에 대한 규정은 없다. 이에 본연구에서는 400MPa과 500MPa 설계기준항복강도를 가지는 확대머리 이형철근의 겹침이음실험을 실시함으로써, 기준의 정착길이식을 겹침이음설계에 적용가능한 지를 평가하고자 하였다. 실험결과, SD400과 SD500의 설계기준항복강도를 적용한 확대머리 이형철근에 대하여 겹침이음길이를 정착길이의 1.3배로 산정할 경우, 실험 최대휨강도가 공칭휨강도에 비하여 16~31% 크게 평가되었고 연성적인 휨파괴 거동을 나타내었다. 따라서, 이들 철근에 대해 정착길이 1.3배의 겹침이음길이로 설계함으로써 강도 및 변형성능 측면에서 겹침이음 성능을확보할 수 있는 것으로 사료된다.