• Title/Summary/Keyword: Jointed concrete pavement

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Dynamic Response of Jointed Concrete Pavement in Test Road Due to Temperature Gradient (온도구배에 의한 시험도로 줄눈콘크리트 포장의 동적응답)

  • Yoo Tae-Seok;Jeong Jin-Hoon;Han Seung-Hwan;Sim Jong-Sung
    • International Journal of Highway Engineering
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    • v.8 no.1 s.27
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    • pp.25-32
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    • 2006
  • Behavior of concrete pavement due to temperature gradient was investigated for 48 hours at test road using Falling Weight Deflectometer. The deflections at slab center changed similarly to those of ambient temperature and temperature gradients in the slab. And rapid variations in the deflections were observed between 8 to 12 in the morning. However, dynamic modulus of subgrade reaction and joint deflections showed reverse trends to the ambient temperature and temperature gradients. The dynamic modulus of subgrade reaction was significantly affected by temperature gradient when its value got higher. Backcalculated elastic moduli were obtained using AREA method and Method of Equivalent Thickness. The trends of the backcalculated elastic modulus were similar to those of dynamic modulus of subgrade reaction. Measured load transfer efficiencies showed maximum peak in the morning due to dowel locking. However, additional effort is necessary to verify the result.

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Evaluation of AASHTO Joint Opening Equation Based on the Analysis of Joint Movement of Concrete Pavement in Korea highway Test Road (시험도로 줄눈콘크리트포장 줄눈폭 변화분석을 통한 AASHTO 줄눈폭 예측식 타당성 연구)

  • Choi, Jeong Keun;Jeong, Jin Hoon;Lee, Seung Woo
    • KSCE Journal of Civil and Environmental Engineering Research
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    • v.26 no.5D
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    • pp.805-812
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    • 2006
  • To investigate the usefulness of AASHTO joint opening equation, joint movement of Korea Highway Test Road was monitored and analyzed. The monitored section included Lean, Rubble, BB3 subbase. Demac gauges were installed at each joint in the monitored section, and joint movements with temperature changes were monitored. The measured joint movements with temperature change were then analyzed based on ER (Effective Ratio). The effect of subbase, which was considered as 'C' value in AASHTO equation, was not shown in the observed joint movement. To study the effcet of sealing on joint opening two unsealed sections were included in the monitored section, and no effects of sealing on joint movement were observed.

Field Measurements of Joint Movements at JPCP (줄눈콘크리트 포장의 줄눈 거동 측정)

  • Yun, Kyong-Ku;Kim, Dong-Ho;Hong, Chang-Woo;Lee, Joo-Hyung
    • Journal of Industrial Technology
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    • v.21 no.B
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    • pp.325-330
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    • 2001
  • In this research, the early-age movements of joint at JPCP(Jointed Plain Concrete Pavement) were measured by field tests. The field tests were carried out for 5 days just after concrete placement, for 1 day after 52 and 72 days on Chung-Ang Expressway construction site in Dan-yang on the 28th and 29th of May 2001. The joint movements were measured by demec gauge and clip gauge. The results of regression analysis for the data measured during early 5 days showed that the joints of No.4, No.5, No.6, No.10, No.13, and No.15 could be considered as a moving joint. From data analysis on july 20, the joints of No.2, No.9, and No.10 showed the significant correlations from the minus value of coefficient of regression. As a result of regression data on August 8, joint movements occurred at all joints. Joint freezing and closure could be judged from the regression analysis using joint opening and total temperature measured at field tests.

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Development of a Probabilistic Joint Opening Model using the LTPP Data (LTPP Data를 이용한 확률론적 줄눈폭 예측 모델 개발)

  • Lee, Seung Woo;Chon, Sung Jae;Jeong, Jin Hoon
    • KSCE Journal of Civil and Environmental Engineering Research
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    • v.26 no.4D
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    • pp.593-600
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    • 2006
  • Joint opening of jointed concrete pavement is caused by change in temperature and humidity of adjoined slab. The magnitude of joint opening influences on the load-transfer-efficiency and the behavior of sealant. If temperature or humidity decreases, joint opening increases. Generally maximum joint opening of a given joint is predicted by using AASHTO equation. While different magnitudes of joint opening at the individual joints have been observed in a given pavement section, AASHTO equation is limited to predict average joint opening in a given pavement section. Therefore the AASHTO equation may underestimate maximum joint for the half of joint in a given pavement section. Joints showing larger opening than the designed may experience early joint sealant failure, early faulting. Also unexpected spalling may be followed due to invasion of fine aggregate into the joints after sealant pop-off. In this study, the variation of the joint opening in a given pavement section was investigated based on the LTPP SMP data. Factors affecting on the variation are explored. Finally a probabilistic joint opening model is developed. This model can account for the reliability of the magnitude of joint opening so that the designer can select the ratio of underestimated joint opening.