Hasil Pencarian  ::  Simpan CSV :: Kembali

Hasil Pencarian

Ditemukan 169723 dokumen yang sesuai dengan query
cover
Moh. Azhar
"[ABSTRAK
Telah dilakukan penelitian pembuatan beton ringan atau lightweight
concrete (LWC) menggunakan batu apug (BA) dan abu sekam padi (ASP).
Sampel beton ringan yang dibuat mengandung BA dengan fraksi berbeda, adapun
material semen, pasir, dan abu sekam padi volumenya dijaga tetap. Terdapat dua
parameter utama yang menentukan sifat mekanik sampel LWC masing-masing
adalah densitas sampel dan rasio air/semen (w/c). Sifat mekanik yang paling
utama dari LWC adalah kekuatan tekan. Pada campuran dengan fraksi volume
batu apung terbesar (100%) menghasilkan densitas dan kekuatan tekan paling
rendah masing-masing sebesar (1389,6 kg/m3 dan 11,1 MPa). Diketahui bahwa
makin rendah fraksi batu apung dalam sampel beton makin tinggi nilai densitas
dan kekuatan tekannya, disebabkan oleh tingginya nilai fraksi pori baik pori
terbuka maupun pori tertutup dalam sampel beton. Observasi terhadap fotomikro
SEM batu apung menunjukkan bahwa terdapat sejumlah besar pori dengan bentuk
memanjang ke bagian dalam dari permukaan sampel beton. Pori hadir dengan
kerapatan jumlah pori relatif besar serta dengan ukuran yang bervariasi. Fakta ini
menjelaskan mengapa batu apung besifat ringan karena memiliki densitas massa
yang rendah. Pola difraksi sinar X sampel beton ringan memperlihatkan dominasi
fasa kristalin diidentifikasi sebagai fasa quartz (SiO2). Namun dapat dipastikan
sampel beton ringan terdiri dari fasa campuran antara fasa kristalin dan dengan
sedikit fasa amorph.
Fotomikro SEM beton ringan menunjukkan bahwa senyawa Kalsium Silikat
Hidrat (CSH) mulai tumbuh pada waktu awal proses hidrasi dan terus
berkembang sampai umur beton mencapai umur hidrasi 28 hari yang ditandai
dengan sifat fisik yang padat dan peningkatan kekuatan beton. Dapat dipastikan
bahwa senyawa CSH ini memiliki peranan penting terhadap pengaturan sifat
mekanik seperti kekuatan tekan. Penelitian ini menyimpulkan bahwa batu apung
dan abu sekam padi adalah material berbasis silika amorph yang memiliki densitas
lebih rendah terutama dibandingkan dengan material pembentuk beton lainnya.
Baik densitas dan kekuatan tekan sampel beton ringan ditentukan oleh rasio antara
batu apung dan abu sekam padi. Ditemukan rasio terkecil BA/ASP yaitu 8
menghasilkan nilai densitas dan kekuatan tekan optimal, masing-masing pada usia
beton 28 hari sebesar 1891 kg/m3 dan 23 MPa. Komposisi beton ringan yang
terbaik diperoleh dari hasil penelitian ini adalah komposisi campuran PCC (1,00) :
Pasir (1,00) : ASP (0,05) : BA (0,50) dengan nilai Slump 8 cm ditandai oleh nilai
rasio antara kuat tekan dan densitas tertinggi adalah 1285.;

ABSTRACT
Research studies on the manufacture of lightweight concrete (LWC) using
pumice and rice husk ash (RHA) materials have been done. LWC samples were
made of pumice materials with a different mass fraction, while the cement, sand,
and rice husk ash materials were keep fixed. It was found that there are two main
parameters that determine the mechanical properties of LWC which are density
and the water and cement ratio (w/c ratio). The main mechanical properties of
LWC sample is the power press. Samples with the largest volume fraction of
pumice (100%) resulted in lightest density (1389.6 kg/m3) and the smallest
strength of LWC (11.1 MPa). It was found that, the lower the mass fraction of
pumice in LWC samples, the higher the density values and compressive strength
were obtained. This was caused by the high mas fraction value of pores, which
were both open and closed pores. Scanning electron micorscopy (SEM) images
for the pumice showed that the there are a large number of regular and structured
pores extending deep inside the surface of the sample. It was observed that pores
present with pore size does not vary significantly but with the density of the
relatively large number of pores, indicating pumice has a low mass density. The
XRD pattern of the lightweight concrete samples indicated that the samples were
dominated by crystalline phases in which the quartz (SiO2) is the main phase and
a small fraction of amorphous phase was also obtained.
SEM images of lightweight concrete samples showed that the structure of
Calcium Silicate Hydrates (CSH) started growing at the beginning of hydration
time and continue to evolve into a more solid structure until the age of 28 days,
where the compound has an important role to the mechanical properties such as
compressive strength. The study concluded that the pumice and rice husk ash is
are amorphous silica-based material which has a lower density compared to other
concrete forming material such as cement and sands. Both density and light
weight concrete compressive strength are determined by the ratio between pumice
and rice husk ash, in which the smallest ratio 8 resulted in the largest density and
compressive strength, which are 1890.5 kg/m3 and 23.2 MPa respectively at the
age of 28 days. The study concluded that the best composition for lightweight
concrete samples was the following: PCC (1,00): Sand (1,00): ASP (0,05): BA
(0,50) with a slump value of 8 cm resulted in the largest value of a ratio between
compressive strength and density of 1285.;Research studies on the manufacture of lightweight concrete (LWC) using
pumice and rice husk ash (RHA) materials have been done. LWC samples were
made of pumice materials with a different mass fraction, while the cement, sand,
and rice husk ash materials were keep fixed. It was found that there are two main
parameters that determine the mechanical properties of LWC which are density
and the water and cement ratio (w/c ratio). The main mechanical properties of
LWC sample is the power press. Samples with the largest volume fraction of
pumice (100%) resulted in lightest density (1389.6 kg/m3) and the smallest
strength of LWC (11.1 MPa). It was found that, the lower the mass fraction of
pumice in LWC samples, the higher the density values and compressive strength
were obtained. This was caused by the high mas fraction value of pores, which
were both open and closed pores. Scanning electron micorscopy (SEM) images
for the pumice showed that the there are a large number of regular and structured
pores extending deep inside the surface of the sample. It was observed that pores
present with pore size does not vary significantly but with the density of the
relatively large number of pores, indicating pumice has a low mass density. The
XRD pattern of the lightweight concrete samples indicated that the samples were
dominated by crystalline phases in which the quartz (SiO2) is the main phase and
a small fraction of amorphous phase was also obtained.
SEM images of lightweight concrete samples showed that the structure of
Calcium Silicate Hydrates (CSH) started growing at the beginning of hydration
time and continue to evolve into a more solid structure until the age of 28 days,
where the compound has an important role to the mechanical properties such as
compressive strength. The study concluded that the pumice and rice husk ash is
are amorphous silica-based material which has a lower density compared to other
concrete forming material such as cement and sands. Both density and light
weight concrete compressive strength are determined by the ratio between pumice
and rice husk ash, in which the smallest ratio 8 resulted in the largest density and
compressive strength, which are 1890.5 kg/m3 and 23.2 MPa respectively at the
age of 28 days. The study concluded that the best composition for lightweight
concrete samples was the following: PCC (1,00): Sand (1,00): ASP (0,05): BA
(0,50) with a slump value of 8 cm resulted in the largest value of a ratio between
compressive strength and density of 1285., Research studies on the manufacture of lightweight concrete (LWC) using
pumice and rice husk ash (RHA) materials have been done. LWC samples were
made of pumice materials with a different mass fraction, while the cement, sand,
and rice husk ash materials were keep fixed. It was found that there are two main
parameters that determine the mechanical properties of LWC which are density
and the water and cement ratio (w/c ratio). The main mechanical properties of
LWC sample is the power press. Samples with the largest volume fraction of
pumice (100%) resulted in lightest density (1389.6 kg/m3) and the smallest
strength of LWC (11.1 MPa). It was found that, the lower the mass fraction of
pumice in LWC samples, the higher the density values and compressive strength
were obtained. This was caused by the high mas fraction value of pores, which
were both open and closed pores. Scanning electron micorscopy (SEM) images
for the pumice showed that the there are a large number of regular and structured
pores extending deep inside the surface of the sample. It was observed that pores
present with pore size does not vary significantly but with the density of the
relatively large number of pores, indicating pumice has a low mass density. The
XRD pattern of the lightweight concrete samples indicated that the samples were
dominated by crystalline phases in which the quartz (SiO2) is the main phase and
a small fraction of amorphous phase was also obtained.
SEM images of lightweight concrete samples showed that the structure of
Calcium Silicate Hydrates (CSH) started growing at the beginning of hydration
time and continue to evolve into a more solid structure until the age of 28 days,
where the compound has an important role to the mechanical properties such as
compressive strength. The study concluded that the pumice and rice husk ash is
are amorphous silica-based material which has a lower density compared to other
concrete forming material such as cement and sands. Both density and light
weight concrete compressive strength are determined by the ratio between pumice
and rice husk ash, in which the smallest ratio 8 resulted in the largest density and
compressive strength, which are 1890.5 kg/m3 and 23.2 MPa respectively at the
age of 28 days. The study concluded that the best composition for lightweight
concrete samples was the following: PCC (1,00): Sand (1,00): ASP (0,05): BA
(0,50) with a slump value of 8 cm resulted in the largest value of a ratio between
compressive strength and density of 1285.]"
2015
D2054
UI - Disertasi Membership  Universitas Indonesia Library
cover
Farah Dini Sofyani
"Seiring dengan bertambahnya kebutuhan perumahan di Indonesia, bertambah pula kebutuhan beton sebagai material yang paling diminati untuk pembuatan rumah tinggal. Cangkang Kelapa Sawit Oil Palm Shell / OPS dapat menjadi pilihan sebagai pengganti agregat kasar untuk campuran beton. Penggunaan OPS tidak hanya dapat memenuhi kebutuhan beton di Indonesia namun juga untuk mengurangi masalah pengolahan limbah OPS. Beton dengan campurang OPS sebagai agregat kasar sudah pernah diteliti sebelumnya dengan menghasilkan kuat tekan beton sebesar 20-23 MPa. Untuk itu kebutuhan untuk melanjutkan penelitian dalam skala yang lebih besar.
Penelitian ini menghasilkan respon mekanik dari balok beton ringan dengan OPS dengan menggunakan metode 2 point pembebanan. Pada penelitian ini akan diuji dua buah sampel balok dengan ukuran 15x25x300 cm. ukuran ini dianggap mewakili dimensi umum yang dipakai untuk rumah sederhana di Indonesia. Respon mekanik terhadap lentur murni akan disajikan sebagai hasil dari pengujian ini. Penelitian ini akan lebih difokuskan pada are dimana diprediksi akan terjadi lentur murni. Selainn itu juga dkan dilihat tentang bukaan retak yang terjadi.

Along with the increasing demand for habitation in Indonesia, the need for concrete as the most favourable housing material is escalating. Oil Palm Shell OPS as coarse aggregate material can be one of the alternatives materials in concrete mix proportions. This possible choice of material not only can fulfil the materials needs, but also capable of reducing the problem of OPS waste in Indonesia. As OPS concrete compressive strength in the previous studies in laboratory is in the range of 20 23 MPa, studies on larger element of structure becomes interesting.
This research presents flexure behaviour of lightweight concrete beams using OPS replacing natural coarse aggregates under four point loading application. In this study, a campaign of tests was conducted on three samples of identical beam with 15 25 300 cm3 of size. This size is representing typical dimension of beam used on two storey houses in Indonesia. Mechanical response due to bending that occurs in OPS lightweight concrete beam is presented. Observation on the beam is emphasized on the pure bending area. The evolution of the maximum crack opening will also be observed.
"
Depok: Fakultas Teknik Universitas Indonesia, 2018
T50897
UI - Tesis Membership  Universitas Indonesia Library
cover
Popovics, Sandor
New York: John Wiley & Sons, 1982
620.136 POP f
Buku Teks SO  Universitas Indonesia Library
cover
Silitonga, David
"Skripsi ini membahas tentang pengaruh pemakaian Portland Composite Cement (PCC) terhadap ketahanan sulfat pada Self Compacting Concrete (SCC). Pada penelitian ini dilakukan uji kuat tekan, kuat tarik belah, kuat lentur dan permeabilitas pada metode perendaman air suling, air laut kadar sulfat 0.2%, larutan magnesium sulfat 5%, dan larutan magnesium sulfat 5% pasang surut pada umur 28, 42, dan 56 hari. Dari hasil penelitian didapatkan bahwa semakin besar kandungan sulfat dan semakin lama perendaman dalam sulfat, maka kekuatan beton yang diperoleh semakin menurun dan penetrasi semakin besar. Karena beton sensitif terhadap sulfat. Besar persentasi penurunan kuat tekan, kuat tarik belah, kuat lentur berurutan pada perendaman air laut sebesar 2.92%, 2.56%, -8.04%, pada larutan magnesium sulfat 5% sebesar 3.86%, 7.51%, -2.68%, pada larutan magnesium sulfat 5% sistem pasang surut sebesar 9.66%, 18.09%, 24.11%. Besar persentasi peningkatan penetrasi pada perendaman air laut sebesar 6.41%, dan pada perendaman larutan magnesium sulfat sebesar 6.41%.

The focus of this study discusses about the effect of using Portland Composite Cement (PCC) to the sulphate resistance of Self Compacting Concrete (SCC). On this research, some tests were done to determine the concrete?s compressive strength, splitting tensile strength, flexural strength and permeability of the immersion method of distilled water, sea water with 0.2% sulphate concentration, magnesium sulphate solution 5%, and tidal of magnesium sulfate solution 5% at 28, 42, and 56 days. The result showed that the larger the concentrate of sulphate and the longer the immersion of the concrete in sulphate solution, the strength of concrete obtained decreases and the concrete penetration increases. This happens because concrete is basically sensitive of sulphate. The reduction rate of compressive strength, splitting tensile strength, flexural strength respectively in sea water immersion for 2.92%, 2.56%, -8.04%, in the solution of magnesium sulphate are 5% of 3.86%, 7.51%, -2.68%, while in the solution of magnesium sulphate 5% with tidal of 9.66%, 18.09%, 24.11%. The increasing rate of the concrete penetration for the samples immersed in sea water is 6.41%, while the increasing rate for the samples immersed in solution of magnesium sulfate is 6.41%."
Depok: Fakultas Teknik Universitas Indonesia, 2011
S609
UI - Skripsi Open  Universitas Indonesia Library
cover
Fakultas Teknik Universitas Indonesia, 1999
S35933
UI - Skripsi Membership  Universitas Indonesia Library
cover
Darren Matthew
"Fenomena banjir hampir setiap tahun terjadi di Indonesia. Banjir menyebabkan masalah ekonomi, masalah sosial, masalah kesehatan, hingga sudah memakan korban jiwa. Salah satu faktor utama yang menyebabkan banjir adalah sebagian besar permukaan jalan dilapisi material yang bersifat kedap air sehingga air hujan tidak dapat terinfiltrasi ke dalam tanah dan menyebabkan limpasan air hujan, yang kemudian terakumulasi dan terjadi banjir. Penelitian ini bertujuan untuk mempelajari porous concrete paving block sebagai salah satu upaya untuk mencegah terjadinya banjir. Digunakkan batu screening dengan ukuran 4-9.5 mm sebagai komponen utama pembuatan porous concrete paving block. Dibuat paving block dengan variasi tinggi 6 cm, 8 cm, dan 10 cm. Rangkaian pengujian dilakukan untuk melihat karakteristik dari porous concrete paving block. Pengujian yang dilakukan berupa uji kuat tekan, porositas, dan laju infiltrasi. Berdasarkan pengujian yang telah dilakukan, porous concrete paving block memiliki porositas berkisar antara 19 – 23% dan laju infiltrasi berkisar antara 0.17 – 0.42 cm/detik, namun porous concrete paving block mengalami penurunan kuat tekan sebesar 58-60% jika dibandingkan dengan paving block konvensional. Hal ini menunjukkan bahwa porous concrete paving block hanya dapat digunakkan sebagai area pejalan kaki dan taman.

Floods occur almost every year in Indonesia. Floods cause economic, social, and health problems, and have even claimed lives. One of the main factors that cause flooding is that most of the road surfaces are coated with impervious pavement materials so that rainwater could not infiltrate into the soil and cause rainwater runoff, which accumulates and cause flooding. This research aims to study porous concrete paving block as an effort to prevent flooding. Screening stone with a size of 4-9.5 mm were used as the main component in manufacturing porous concrete paving block. Paving blocks were made with height variation of 6 cm, 8 cm, and 10 cm. A series of test were conducted to see the characteristics of porous concrete paving block. Compressive strength, porosity, and infiltration rate test are forms of testing that are carried out. The results show that porous concrete paving blocks have porosity between 19-23% and infiltration rate ranging from 0.17-0.42 cm/s. However, the compressive strength decreased by 58-60% when compared to conventional paving blocks. This indicates that porous concrete paving blocks can only be used as pedestrian and garden areas."
Depok: Fakultas Teknik Universitas Indonesia, 2023
S-pdf
UI - Skripsi Membership  Universitas Indonesia Library
cover
Pretysesar Nurul Hikmah
"Menurut survey Badan Pusat Statistik di Indonesia diketahui telah terjadi pertumbuhan nilai konstruksi di Kalimantan Timur (lokasi baru Ibu Kota Negara) sebesar 6,60% dari tahun 2019-2020. Semakin tinggi nilai konstruksi maka semakin tinggi pula permintaan bahan bangunan, contohnya seperti mortar semen portland. Akan tetapi, terdapat dampak buruk dalam pemakaian semen portland yang secara terus-menerus yaitu terjadinya pemanasan global karena adanya emisi gas CO yang tinggi. Untuk mengurangi dampak buruk tersebut diperlukanlah bahan pengganti semen yang lebih ramah lingkungan seperti material geopolimer. Dalam pembentukan mortar geopolimer dibutuhkan bahan utama yang mengandung kadar Si dan Al yang tinggi seperti ASP dan zeolit, serta perlu adanya alkali aktivator seperti NaOH dan NaSiO yang berperan sebagai larutan pengikat unsur Si dan Al dalam reaksi geopolimerisasi. Ada perlakuan khusus pada studi ini untuk menjaga kualitas mortar geopolimer ASP-Zeolit yang terbentuk yaitu metode dengan oven di suhu 60°C selama 24 jam. Pada studi ini dilakukan pembentukan mortar geopolimer dengan lima variasi komposisi penyusun mortar geopolimer antara lain 100%ASP; 90%ASP-10%Zeolit; 70%ASP-30%Zeolit; 50%ASP-50%Zeolit; dan 100%Zeolit, untuk mengetahui pengaruh kadar prekursor terhadap nilai kuat tekan mortar tersebut serta membandingkan nilai kuat tekan mortar geopolimer dengan kuat tekan mortar semen portland. Hasil penelitian ini menunjukkan adanya kandungan Si yang tinggi dalam bahan penyusun mortar geopolimer akan meningkatkan nilai kuat tekannya seperti mortar geopolimer 100%ASP, tetapi nilai kuat tekan mortar geopolimer ASP-Zeolit masih dibawah nilai kuat tekan mortar semen portland.

According to a survey conducted by Indonesia's Central Statistics Agency, East Kalimantan (the new location for the State Capital of Indonesia) saw a 6,60% increase in construction value between 2019 and 2020. The higher the construction value, the higher the demand for building materials, such as portland cement mortar. However, there are negative impacts in the continuous use of portland cement which causes a global warming effect due to high CO2 gas emissions. To reduce these negative impacts, a more environmentally friendly cement substitute material, such as geopolymer material, is needed. In the formation of geopolymer mortar, the main ingredients that contain high levels of Si and Al are needed, such as RHA and zeolite, as well as the need for alkaline activators such as NaOH and Na2SiO3 which act as a binding solution for Si and Al elements in the geopolymerization reaction. There is special treatment in this study to maintain the quality of RHA-Zeolite geopolymer mortar that is formed namely curing oven at 60°C for 24 hours. In this study, geopolymer mortar was formed with five variations of geopolymer mortar composition, including 100% RHA; 90% RHA-10% Zeolite; 70% RHA-30% Zeolite; 50% RHA-50% Zeolite; and 100% Zeolite, to determine the effect of precursor content on the compressive strength of the mortar and to compare the compressive strength of this geopolymer mortar with the compressive strength of portland cement mortar. The results of this study indicate that a high Si content in the RHA-Zeolite geopolymer mortar will increase its compressive strength like 100% RHA geopolymer mortar, but the compressive strength of RHA-Zeolite geopolymer mortar is still below the compressive strength of portland cement mortar."
Depok: Fakultas Teknik Universitas Indonesia, 2023
S-pdf
UI - Skripsi Membership  Universitas Indonesia Library
cover
Dwi Afsari
"ABSTRAK
Polypropylene merupakan jenis plastik polimer yang banyak digunakan sebagai kemasan produk. Banyaknya limbah berbahan dasar polypropylene ini sulit terurai, menjadi salah satu alasan untuk menggunakannya sebagai pengganti agregat kasar pada beton. Untuk mencapi mutu beton yang struktural, diperlukan komposisi material penyusun beton yang tepat. Dalam penelitian ini volume perbandingan agregat kasar polypropylene terhadap volume semen yang digunakan adalah 2,6; 2; dan 1,8 dimana hasil kuat tekan kubus yang diperoleh adalah 243,762 kg/cm2; 268,744 kg/cm2; dan 285,623 kg/cm2, dengan nilai modulus elastisitas 7584,048 MPa; 2520,158 MPa; 3913,633 MPa dan poisson rsquo;s ratio sebesar 0,178; 0,164; 0,219. Selain itu, nilai kuat lentur yang dihasilkan sebesar 2,94 MPa; 2,43 MPa; dan 3,41 MPa. Beton ringan ini termasuk kedalam klasifikasi beton ringan mutu sedang berdasarkan ACI 213R-87.

ABSTRACT
Polypropylene is kind of polymer that is used as product warp. That many un degraded waste made by polypropylene is the main reason of using it as lightweight coarse aggregates concrete. To achive the structural concrete, required the right composition of concrete materials. In this reseacrh, ratio the volume of coarse aggregate to the volume of cement used are 2,6 2 and 1,8 where the resulting compressive cube strength are obtained 243,762 kg cm2 268,744 kg cm2 dan 285,623 kg cm2, with modulus of elasticity 7584,048 MPa 2520,158 MPa 3913,633 MPa and poisson rsquo s ratio are 0,178 0,164 0,219. Besides that, the resulting of flexural strength are obtained 2,94 MPa 2,43 MPa and 3,41 Mpa. This lightweight concrete is classified as moderate lightweight concrete based on ACI 213R 87."
2017
S68732
UI - Skripsi Membership  Universitas Indonesia Library
cover
Ayudia Mutiara Fani
"Pertumbuhan penduduk di Indonesia semakin bertambah tiap tahunnya, mengakibatkan kebutuhan akan rumah tinggal juga meningkat. Hal tersebut akan berdampak pada penggunaan material beton sebagai bahan utama dari dalam pembuatan komponen struktural maupun non struktural dari rumah bangunan. Dengan keterbatasan sumber daya alam sebagai bahan penyusun beton, maka diperlukan pemanfaatan limbah yang dapat digunakan sebagai bahan penyusun beton. Berdasarkan penelitian yang telah dilakukan sebelumnya didapatkan bahwa dengan penggunaan limbah cangkang kelapa sawit sebagai pengganti agregat kasar dalam campuran beton ringan mendapatkan hasil kuat tekan berkisar antara 20-23 MPa, nilai kuat tekan tersebut tergolong beton struktural. Beton ringan cangkang kelapa sawit tersebut dapat diaplikasikan pada komponen struktural yaitu pelat lantai, dimana pada sebuah bangunan yang mempunyai volume paling besar dibandingkan komponen lainnya yaitu pelat lantai. Penelitian ini menggunakan proporsi campuran beton pada penelitian yang telah dilakukan sebelumnya tetapi tidak menggunakan bahan tambah untuk diaplikasikan pada pelat beton sebagai komponen struktural dalam rumah tinggal. Dengan ukuran sampel pelat yaitu 65x125x300 cm sebanyak 3 sampel. Hasil yang didapatkan berupa respon mekanik akibat lentur murni yang terjadi pada pelat beton ringan cangkang kelapa sawit.

In accordance with the high demand of building and housing materials, the use of alternative materials from industrial waste is challenging nowadays in Indonesia. As the production of palm oil in Indonesia is large, the solid end from oil manufacturing process is also high. This by products is often called Oil Palm Shell (OPS). In this research, the solid OPS is used as coarse aggregate material to replace the natural ones. Previous research in laboratory shows that the structural requirements of concrete compressive strength is achieved, around 20-23 MPa. In this paper, study on larger element structure, such as slab is performed. To do so, a campaign of experiment was conducted on three samples of identical slab with 12 × 60 × 300 cm3 of size. Mechanical response due to bending that occurs in OPS lightweight concrete slab is presented. Investigation on the slab is emphasized on the pure bending area."
Depok: Fakultas Teknik Universitas Indonesia, 2019
T51719
UI - Tesis Membership  Universitas Indonesia Library
cover
Andhika Rizki Yuandry
"ABSTRACT
Beton ringan merupakan beton yang menggunakan campuran agregat kasar ringan dan pasir, sesuai spesifikasi SNI 03-2461-2002, memiliki berat isi antara 1680-1840 kg/m3, kuat tarik belah antara 2-2.3 MPa, dan kuat tekan antara 17-28 MPa. Agregat kasar ringan polipropilen yang dilapisi pasir dipakai dalam penelitian ini. Penelitian ini bertujuan untuk mendapatkan rancang campur yang menghasilkan beton ringan struktural sesuai spesifikasi diatas, dan mendapatkan hubungan tegangan tarik vs regangan tarik secara empiris melalui pengujian tarik langsung serta melalui simulasi numerik memakai ANSYS Student terhadap suatu uji pull-out, untuk mengetahui pengaruh tulangan pengekang pada beton ringan terhadap perilaku kuat lekat tulangan baja. Simulasi numerik uji pull-out tanpa tulangan pengekang dibuat sebagai perbandingan. Pada simulasi numerik hasil formulasi empiris tegangan-regangan tarik akan digunakan bersama-sama properti beton ringan lainnya yang didapat dari penelitian orang lain. Hasil dari penelitian ini dari secara berturut rancang campur 1: berat isi 1660.38 kg/m3, kuat tarik belah 1.9 MPa, kuat tekan 19.44 MPa, rancang campur 2: berat isi 1717.89 kg/m3, kuat tarik belah 2.3 MPa, kuat tekan 23.16 MPa, dan rancang campur 3: berat isi 1763.43 kg/m3, kuat tarik belah 2.26 MPa, kuat tekan 25.72 MPa. Ketiganya sudah memenuhi persyaratan beton struktural dalam SNI 03-2461-2002. Secara empiris didapat kuat tarik langsung beton berbanding lurus dengan akar kuadrat kuat tekan beton. Sedangkan, tegangan lekat hasil simulasi numerik pull-out dengan tulangan kekang memiliki nilai yang mirip jika dibandingkan dengan tegangan lekat pull-out tanpa tulangan kekang hasil eksperimen dan hasil simulasi numerik studi ini.

ABSTRACT
As specified in SNI 03 2461 2002, lightweight concrete is a concrete using a mixture of lightweight coarse aggregate and sand, where it has bulk density between 1680 1840 kg m3, tensile splitting strength between 2 2.3 MPa, and compressive strength between 17 28 MPa. In this study, sand coated polypropylene is used as coarse aggregates. The purpose of this study is to obtain mix design that produce structural lightweight concrete as specified above, and to obtain empirical relation between tensile stress and tensile strain via direct tensile test. Beside those two studies, another study to understand the influence of confining reinforcement on lightweight concrete in reinforcing bar rsquo s bond strength behavior is numerically simulated using ANSYS Student for pull out cases. Numerical analysis pull out test without confining reinforcement is made for comparison. In numerical analysis, empirical formula of tensile stress strain will be used together with other lightweight concrete properties obtained from other researches. The results of bulk density, tensile splitting strength, and compressive strength from this study can be presented sequentally where, mix design 1 properties 1660.38 kg m3, 1.9 MPa, 19.44 MPa, mix design 2 1717.89 kg m3, 2.3 MPa, 23.16 MPa, and mix design 3 1763.43 kg m3, 2.26 MPa, 25.72 MPa. All three of them have met the requirements of structural concrete in SNI 03 2461 2002. Empirically obtained, direct tensile strength of the concrete is directly proportional to square root of concrete compressive strength. Whereas, bond strength of pull out numerical analysis with confining reinforcement has similar value if compared to experimental results and numerical analysis of bond strength on pull out test without confining reinforcement."
2018
S-Pdf
UI - Skripsi Membership  Universitas Indonesia Library
<<   1 2 3 4 5 6 7 8 9 10   >>