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For any Promotion dm 👉👉 @wende161721 👉History for Grade 12, New curriculum grade 12 history, grade 12 Geography, Grade 12 Economics in Amharic on Youtube

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El canal WENDE TUTORIAL (@wendetutorial) en el segmento lingüístico de Amárico es un actor destacado. Actualmente la comunidad reúne a 11 900 suscriptores, ocupando la posición 16 634 en la categoría Educación y el puesto 2 839 en la región Etiopía.

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Desde su creación el невідомо, el proyecto ha mostrado un crecimiento acelerado, reuniendo a 11 900 suscriptores.

Según los últimos datos del 01 octubre, 2026, el canal mantiene una actividad estable. En los últimos 30 días la variación de miembros fue de -161, y en las últimas 24 horas de 14, conservando un alto alcance.

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El autor describe el recurso como un espacio para expresar opiniones subjetivas:
“For any Promotion dm 👉👉 @wende161721 👉History for Grade 12, New curriculum grade 12 history, grade 12 Geography, Grade 12 Economics in Amharic on Youtube”

Gracias a la alta frecuencia de actualizaciones (últimos datos recibidos el 02 octubre, 2026), el canal mantiene la vigencia y un amplio alcance. La analítica demuestra que la audiencia interactúa activamente con el contenido, lo que lo convierte en un punto de referencia dentro de la categoría Educación.

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It's important to note that these indicators are based on scientific observations and data analysis. They provide evidence of global warming trends and help scientists understand the changes occurring in the Earth's climate system. Assistant Poe Certainly! Here's some additional information on the indicators of global warming: Shrinking Glaciers: Glaciers around the world are retreating at an accelerated rate as a result of global warming. This is evident from direct measurements and comparisons of historical photographs and records. The loss of glaciers has implications for water resources, as many regions rely on glacial meltwater for freshwater supply during dry seasons. Changes in Phenology: Phenology refers to the timing of biological events, such as the timing of flowering, bird migration, and leaf shedding. Global warming has disrupted the natural timing of these events, with many species experiencing shifts in their phenological patterns. For example, spring events are occurring earlier in many regions, which can have ecological consequences, including mismatches between species interactions. Ocean Heat Content: Global warming is causing an increase in the heat content of the world's oceans. Researchers measure ocean heat content by deploying a network of buoys and using satellite observations. The accumulation of heat in the oceans is a crucial indicator of the long-term energy imbalance caused by greenhouse gases and is closely tied to sea-level rise. Changes in Atmospheric Circulation: Global warming can lead to changes in atmospheric circulation patterns, including shifts in wind patterns and the strength and frequency of certain weather systems, such as the jet stream. These changes can have implications for regional weather patterns and climate variability. Species Range Shifts: Many plant and animal species are responding to global warming by shifting their geographic ranges. Species are moving towards cooler regions or higher elevations as temperatures change, and suitable habitats shift. These range shifts can disrupt ecological communities and have cascading effects on ecosystems. Oceanic and Atmospheric Heatwaves: Global warming contributes to the occurrence of intense heatwaves in both the oceans and the atmosphere. Marine heatwaves, characterized by prolonged periods of unusually warm ocean temperatures, can have significant impacts on marine ecosystems, including coral bleaching events and disruptions to marine food webs. Atmospheric heatwaves, with prolonged periods of excessively hot temperatures, pose risks to human health, agriculture, and infrastructure. Changing Snow Cover: Global warming affects the duration and extent of snow cover in many regions. Satellite observations and ground-based measurements reveal a decline in the duration of snow cover and a shift towards earlier snowmelt in some areas. These changes have implications for water resources, ecosystems, and winter tourism. These indicators collectively provide strong evidence of global warming and its impacts on various aspects of the Earth's climate system. They help scientists and policymakers understand the magnitude and consequences of climate change and inform strategies for mitigation and adaptation. 2.4. Consequences of Climate Change Assistant Poe Climate change has far-reaching consequences across various aspects of the Earth's systems and has significant implications for human societies and the environment. Here are some key consequences of climate change: Rising Temperatures: Global warming leads to higher average temperatures, resulting in heatwaves and increased frequency of hot days and nights. High temperatures can have detrimental effects on human health, particularly for vulnerable populations, and can also impact agriculture, water resources, and ecosystems.

Changes in precipitation patterns: Climate change is altering rainfall patterns, leading to more frequent and intense rainfall events, as well as prolonged droughts in some regions. This can impact water availability, agriculture, and ecosystems. Ocean acidification: Increased CO2 concentrations in the atmosphere are absorbed by the oceans, resulting in ocean acidification. This has negative impacts on marine life, including coral reefs and shell-forming organisms. Extreme weather events: Global warming can contribute to more frequent and intense extreme weather events, such as hurricanes, heatwaves, droughts, and heavy rainfall events, which can have severe social, economic, and environmental impacts. Addressing global warming requires collective efforts to reduce GHG emissions and transition to a low-carbon economy. This includes transitioning to renewable energy sources, improving energy efficiency, promoting sustainable land use practices, enhancing forest conservation and reforestation efforts, and adopting measures to increase climate resilience. International cooperation and policy measures, such as the Paris Agreement, are crucial for global efforts to mitigate and adapt to global warming. indicators of global warming Assistant Poe There are several indicators that scientists use to monitor and assess global warming and its effects on the Earth's climate system. These indicators provide evidence of long-term climate trends and changes. Here are some key indicators of global warming: Rising Temperatures: One of the most prominent indicators of global warming is the increase in average surface temperatures. Scientists measure temperature changes using various sources of data, including surface weather stations, satellites, and ocean buoys. These data show a clear upward trend in global temperatures over the past century, with the most significant warming occurring in the last few decades. Warming Oceans: The oceans act as a crucial heat sink, absorbing a significant portion of the excess heat trapped by greenhouse gases. Measurements of ocean temperatures indicate that the upper layers of the oceans are warming. This warming is contributing to the thermal expansion of seawater, which is a significant factor in rising sea levels. Melting Ice: The melting of ice sheets, glaciers, and sea ice is a visible indicator of global warming. Satellite observations and ground-based measurements reveal significant decreases in the extent and thickness of Arctic sea ice over the past few decades. Similarly, the Greenland and Antarctic ice sheets are losing mass, contributing to rising sea levels. Rising Sea Levels: Global warming leads to thermal expansion of seawater and the melting of land-based ice, causing sea levels to rise. Tide gauges and satellite altimetry provide evidence of a long-term increase in global mean sea levels. This rise poses risks to coastal communities, ecosystems, and infrastructure. Changing Precipitation Patterns: Global warming affects precipitation patterns, leading to changes in the frequency, intensity, and distribution of rainfall. While regional variations exist, some areas are experiencing increased rainfall and more intense precipitation events, while others face prolonged droughts. Scientists use precipitation data from rain gauges and satellites to monitor these changes. Ocean Acidification: The increase in atmospheric carbon dioxide concentrations due to human activities is not only causing global warming but also leading to ocean acidification. Measurements of ocean chemistry demonstrate a decrease in pH, indicating increased acidity. This has adverse effects on marine ecosystems, particularly coral reefs and shell-forming organisms. Extreme Weather Events: Global warming is associated with an increase in the frequency and intensity of certain extreme weather events. Heatwaves, heavy rainfall events, hurricanes, and severe storms have been observed to be more frequent or intense in many regions. These events can have significant socio-economic and environmental impacts.

3. Increasing greenhouse gas (GHG) emissions refers to the growing release of gases that contribute to the greenhouse effect and climate change. The primary greenhouse gases of concern are carbon dioxide (CO2), methane (CH4), nitrous oxide (N2O), and fluorinated gases. Here are some key factors contributing to the increase in GHG emissions: Fossil Fuel Combustion: The burning of fossil fuels, such as coal, oil, and natural gas, for energy production, transportation, and industrial processes is a major source of CO2 emissions. As global energy demand continues to rise, particularly in developing countries, the combustion of fossil fuels remains a significant driver of GHG emissions. Deforestation and Land Use Change: Large-scale deforestation, primarily for agriculture, results in the release of stored carbon dioxide as trees and vegetation are cleared. Additionally, land use changes contribute to emissions through the conversion of forests, grasslands, and wetlands into agricultural land or urban areas. This land-use change reduces the capacity of the land to sequester carbon, leading to increased GHG emissions. Agriculture and Livestock: Agricultural activities, including rice cultivation, livestock production, and the use of synthetic fertilizers, contribute to GHG emissions. Livestock, particularly ruminant animals like cattle, produce methane during digestion and through the decomposition of manure. Nitrous oxide emissions result from the use of nitrogen-based fertilizers and other agricultural practices. Industrial Processes: Certain industrial processes release GHGs, including CO2 emissions from cement production, chemical manufacturing, and the production and use of synthetic gases. Additionally, the release of fluorinated gases from industrial activities, such as refrigeration and electronics manufacturing, contributes to GHG emissions. Waste Management: Improper waste management, particularly in landfills, leads to the production of methane as organic waste decomposes. Methane emissions from landfills are a significant contributor to GHG emissions. Addressing the issue of increasing GHG emissions requires a comprehensive approach that includes transitioning to renewable and low-carbon energy sources, improving energy efficiency, promoting sustainable land use and agriculture practices, implementing waste management strategies that reduce methane emissions, and adopting cleaner industrial processes. International cooperation and policy measures, such as carbon pricing and regulations, are also crucial for reducing GHG emissions on a global scale. Global Warming Assistant Poe Global warming refers to the long-term increase in the average temperature of the Earth's climate system. It is primarily attributed to the buildup of greenhouse gases (GHGs) in the atmosphere, primarily carbon dioxide (CO2), methane (CH4), nitrous oxide (N2O), and fluorinated gases. These gases trap heat in the Earth's atmosphere, leading to a warming effect known as the greenhouse effect. The main causes of global warming are human activities that release GHGs into the atmosphere. The burning of fossil fuels for energy production, transportation, and industrial processes is the largest contributor to CO2 emissions. Deforestation and land use changes also contribute to global warming by reducing the Earth's capacity to absorb CO2 through photosynthesis. The consequences of global warming are wide-ranging and include: Rising temperatures: Global average temperatures have been steadily increasing, leading to heatwaves, increased frequency of hot days and nights, and changes in temperature extremes. Melting ice and rising sea levels: The warming climate is causing the melting of glaciers and ice sheets, leading to rising sea levels. This poses risks to coastal communities, low-lying islands, and ecosystems.

2. Aerosols impacts on Climate change Aerosols injected into the lower atmosphere refer to the deliberate release of tiny particles or liquid droplets into the air at lower altitudes. This concept is often discussed in relation to geoengineering or climate engineering strategies aimed at mitigating the effects of climate change. There are several proposed methods to inject aerosols into the lower atmosphere, including: Stratospheric Aerosol Injection: This method involves releasing aerosols, typically sulfur dioxide or other sulfate compounds, into the stratosphere. The particles remain suspended in the upper atmosphere, where they reflect sunlight back into space, thereby reducing the amount of solar radiation reaching the Earth's surface. This technique aims to offset the warming effect of greenhouse gases and potentially cool the planet. Tropospheric Aerosol Injection: Unlike stratospheric aerosol injection, which targets the upper atmosphere, tropospheric aerosol injection involves releasing aerosols into the lower portion of the atmosphere, known as the troposphere. The purpose of this method is to scatter or absorb sunlight in the lower atmosphere, which can have localized cooling effects. Proposed aerosols for tropospheric injection include sulfate particles, sea salt, or other reflective materials. It's important to note that while aerosol injection methods are being studied as potential climate interventions, they are highly controversial and come with significant uncertainties, risks, and ethical considerations. The potential consequences and unintended side effects of large-scale aerosol injection are not yet well understood, and there are concerns about the impacts on regional climates, precipitation patterns, and the environment. Furthermore, aerosol injection should not be seen as a substitute for reducing greenhouse gas emissions, which remains the primary and most effective approach to addressing climate change. Efforts should focus on reducing carbon dioxide and other greenhouse gas emissions through sustainable practices, renewable energy sources, and conservation measures.

1. Land Use impacts on Climate change Land use changes can have significant impacts on the climate. Here are some ways in which land use changes can influence the climate: Deforestation: The clearing of forests for agriculture, urbanization, or logging contributes to climate change. Forests act as carbon sinks, meaning they absorb carbon dioxide from the atmosphere through photosynthesis. When forests are removed, the stored carbon is released back into the atmosphere as carbon dioxide, a greenhouse gas that contributes to global warming. Deforestation also reduces evapotranspiration, which can alter local and regional rainfall patterns. Urbanization: The expansion of cities and infrastructure leads to the conversion of natural landscapes, such as forests and grasslands, into impervious surfaces like buildings, roads, and pavements. Urban areas tend to have higher temperatures compared to surrounding rural areas due to the urban heat island effect. This effect is caused by the absorption and retention of heat by urban materials, reduced vegetation cover, and increased energy consumption. Agriculture: Land conversion for agriculture, particularly for intensive monoculture practices, can impact the climate. Certain agricultural activities, such as rice cultivation and livestock production, release significant amounts of methane, a potent greenhouse gas. Additionally, the use of synthetic fertilizers in agriculture can lead to nitrous oxide emissions, another potent greenhouse gas. Land management practices, such as tillage and irrigation, can also influence soil carbon storage and greenhouse gas emissions. Afforestation and Reforestation: On the other hand, planting trees and restoring forests can help mitigate climate change. Trees absorb carbon dioxide from the atmosphere and store carbon in their biomass and in the soil. Afforestation (establishing forests in areas where they did not exist before) and reforestation (restoring forests in areas that were previously forested) projects can help sequester carbon and promote biodiversity. Land Degradation: Land degradation, such as soil erosion, desertification, and degradation of wetlands, can exacerbate climate change. Degraded lands have reduced vegetation cover, lower carbon sequestration capacity, and diminished water-holding capacity, leading to increased vulnerability to droughts and floods. It's important to recognize that land use changes are interconnected with other factors influencing the climate, such as greenhouse gas emissions from fossil fuel combustion. Addressing climate change requires a comprehensive approach that considers both reducing greenhouse gas emissions and sustainable land management practices.

Geography new G-12 Chap 1 Patr-1.pdf1.45 MB

Economics Chapter one part 2 short note be ready for video👍👍

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Geography Grade 12 Chapter 2 Part 1.pdf7.82 KB

Short notes by PDF👍👍👍

የ2015 ዓ.ም የ12ኛ ክፍል ከፍተኛ ውጤት 👉የ2015 ዓ.ም ከፍተኛ ውጤት ተፈጥሮ ሳይንስ 649 ፤ የማህበራዊ ሳይንስ 533 ሆኖ ተመዝግቧል። 👉649 ያመጣችው የአዲስ አበባ ልደታ ክሩዝ ትምህርት ቤት ስትሆን 👉533 ያመጣው ከደ/ማርቆስ አዲስ አለማየሁ ትምህርት ቤት ነው።

አጠቃላይ የ12ኛ ክፍል ውጤት ምን ይመስላል????? 👉ከተፈተኑት ጠቅላላ ተማሪዎች ውስጥ 50 ከመቶ የሚሆኑት እና ከዛ በላይ 26%  ነው ያገኙት🤔 👉ከ845 ሺህ ፤ 422,500 ሺህ ተማሪ ከ26 በታች ነው ያገኘው። እንደው ዝም ብሎ አንድ ተማሪ ፈተናውን በግምት ቢሞላ እንኳን ሊያገኘው የሚችለው ውጤት ነው። 👉ለዚህ ነው ከታች ጀምሮ በደንብ አጥርተን መስራት አለብን የምንለው። " ስለ 2015 ዓ/ም የ12ኛ ክፍል ብሄራዊ ፈተና ቁጥሮች ምን ይላሉ ? 👉በ2015 የተፈተኑ ተማሪዎች ብዛት 845,099 ፤ 50 በመቶና በላይ ያመጡ 27,267 ተማሪዎች (3.2%) ብቻ ናቸው። 👉ከነዚህ ውስጥ ፦ • ከተፈጥሮ ሳይንስ ያለፉ 19,017 ተማሪዎች # ከማህበራዊ ሳይንስ ያለፉ 8,250 ተማሪዎች 👉 በማታ የተፈተኑ 16,541 ያለፉ 12 ተማሪዎች ብቻ 👉በግል የተፈተኑ 169,502 ያለፉ 498 ተማሪዎች ብቻ 👉በመደበኛ የተፈተኑ 659,056 ያለፉ 26,757 ተማሪዎች ብቻ 👉የ12ኛ ክፍል ፈተና ካስፈተኑ 3,106 ት/ቤቶች፤ 1,328 ትምህርት ቤቶች #አንድም_ተማሪ ማሳለፍ አልቻሉም / ምንም ተማሪ አላሳለፉም። 👉በሀገሪቱ ካሉትና የ12ኛ ክፍል ፈተና ካስፈተኑት ትምህርት ቤቶች 42.8 በመቶ የሚሆኑት አንድም እንኳን ተማሪ ማሳለፍ አልቻሉም። 👉27 ሺህ 267 ተማሪዎች በቀጥታ ፍሬሽ ማን ሆነው ወደ ዩኒቨርሲቲ ሲገቡ 160 ሺህ ገደማ ተማሪ በሬሜዲያል ይገባሉ።

Geography Grade 12 chapter 2 part 1 video tutorial

ውጤት እንዴት መመልከት ይቻላል ? የ2015 ዓ.ም የ12ኛ ክፍል ብሔራዊ ፈተና ተፈታኞች መገ መስከረም 29 ቀን 2016 ዓ.ም ከጠዋቱ 12 ሰዓት ጀምሮ በሚከተሉት አማራጮች ውጤታቸውን ማየት ይችላሉ። በዌብ ሳይት 👉 https://eaes.edu.et/ በአጭር የጽሑፍ መልዕክት 👉 6284 በቴሌግራም 👉 https://t.me/eaesbot And please use VPN for fast Network

የ 12ኛ ክፍል ተማሪዎች ውጤት ይፋ ይሆናል። 🔰ዉጤት ልክ እንደወጣ ዉጤታቹን የምታዩበት websites እነዚህ ናቸው :: 1.  result.neaea.gov.et 2.  result.ethernet.edu.et 3.  Telegram @moestudentbot 4. 9444 SMS #ትምህርት_ሚኒስቴር

All of you students go back to geography chapter one part1, If I said you " When the continental crust converge with oceanic crust then the continental crust become subduct because of continental crust has low density." Please correct it by " When continental crust converge with oceanic crust, The denser oceanic crust becomes subducted beneath the less dense continental crust." For mistake I want to say sorry.

Grade 12 Economics Chapter 1 Part 2 Short note

Short note chapter two Geography for grade 12 Part 1 wait for video👍👍👍

🎇🎇 All of you I want to say Thank you for all your support. 💚💛❤️Our channel reached 1️⃣0️⃣0️⃣0️⃣ Subscribers🎉🎉