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ž翭 °ü°³ ½Ã½ºÅÛ(SPIS)Àº ±âÁ¸ ³ó¾÷¿¡ »ç¿ëµÇ´ø µðÁ© ¿£Áø°ú Àü·Â¸ÁÀ¸·Î ±¸µ¿µÇ´Â ÆßÇÁ¸¦ ´ëüÇÒ ¼ö ÀÖ´Â Àç»ýÇÏ°í ºÐ»êÀûÀ̸ç È®Àå °¡´ÉÇÑ ´ë¾ÈÀ» Á¦°øÇÕ´Ï´Ù. ÀÌ ½Ã½ºÅÛÀº žçÀüÁöÆÇÀ» ÀÌ¿ëÇÏ¿© ÁöÇ¥¼ö ¶Ç´Â ÁöÇϼö ÆßÇÁ·Î ¿¬°áµÈ Àü±â ¸ðÅ͸¦ ±¸µ¿ÇÏ¿© ÃÖ¼ÒÇÑÀÇ ¿î¿µ ºñ¿ë°ú ȯ°æ ºÎÇÏ·Î ³óÀÛ¹°¿¡ °ü°³¿ë¼ö¸¦ °ø±ÞÇÕ´Ï´Ù. ¿¡³ÊÁö ºó°ï, ºÒ±ÔÄ¢ÇÑ °­¿ì·®, Àü·Â¸Á¿¡ ´ëÇÑ Á¢±Ù Á¦ÇÑÀÌ Æ¯Â¡ÀÎ Áö¿ª¿¡¼­ SPIS´Â ¾ÈÁ¤ÀûÀÎ ¹° °ø±ÞÀ» º¸ÀåÇϰí, ÀÛ¹° »ý»ê¼ºÀ» Çâ»ó½Ã۸ç, È­¼® ¿¬·á¿¡ ´ëÇÑ ÀÇÁ¸µµ¸¦ ÁÙÀÓÀ¸·Î½á ¿µ¼¼ ³ó°¡¿Í »ó¾÷Àû ³ó¾÷¿¡ Çõ¸íÀ» ÀÏÀ¸Å°°í ÀÖ½À´Ï´Ù.

SPIS µµÀÔÀÌ ±ÞÁõÇϰí ÀÖ´Â °ÍÀº ½Ä·®¾Èº¸, Àç»ý¿¡³ÊÁö, ±âÈÄ º¯È­ ÀûÀÀÀÌ ±³Â÷Çϰí ÀÖ´Â °ÍÀÌ ÁÖ¿ä ¿äÀÎÀ¸·Î ÀÛ¿ëÇϰí ÀÖ½À´Ï´Ù. ±âÈÄ º¯È­·Î ÀÎÇØ °­¿ì ÆÐÅϰú ´ë¼öÃþ ÇÔ¾ç·üÀÌ º¯È­ÇÏ´Â °¡¿îµ¥, ³ó°¡´Â ¼öÈ®·®À» ¾ÈÁ¤È­Çϱâ À§ÇØ °ü°³¸¦ ÀÌ¿ëÇϰí ÀÖ½À´Ï´Ù. ±×·¯³ª ¹°À» ²ø¾î¿Ã¸®±â À§ÇÑ ±âÁ¸ÀÇ ¿¡³ÊÁö¿øÀº ¸¹Àº ³óÃÌ È¯°æ¿¡¼­ Å͹«´Ï¾øÀÌ ºñ½Î°Å³ª ³í¸®ÀûÀ¸·Î ½Å·ÚÇÒ ¼ö ¾ø´Â °æ¿ì°¡ ¸¹½À´Ï´Ù. ž籤 ½Ã½ºÅÛÀº ¼ö¸íÀÌ 20³â ÀÌ»óÀÌ°í ¿¬·áºñ°¡ µéÁö ¾Ê±â ¶§¹®¿¡ Àå±âÀûÀ̰í À¯Áöº¸¼ö ºÎ´ãÀÌ ÀûÀº ¼Ö·ç¼ÇÀÔ´Ï´Ù. ¶ÇÇÑ SPIS´Â Á¡Àû ¹× ¸¶ÀÌÅ©·Î °ü°³ ½Ã½ºÅÛ°ú ÅëÇÕÇÒ ¼ö ÀÖÀ¸¸ç, ¹° »ç¿ë È¿À²À» Çâ»ó½Ã۰í Áö¼Ó°¡´ÉÇÑ ³ó¾÷ °­È­ ¸ñÇ¥¿¡ ºÎÇÕÇÕ´Ï´Ù.

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ž翭 °ü°³ ½Ã½ºÅÛÀº ÀϹÝÀûÀ¸·Î ž籤¹ßÀü ÆÐ³Î, ÄÁÆ®·Ñ·¯(¶Ç´Â ÀιöÅÍ), Àü±â ¸ðÅÍ, ÆßÇÁ(¿ø½É½Ä ¶Ç´Â ¼öÁß½Ä)·Î ±¸¼ºµÇ¸ç, Á¾Á¾ ¹° ÀúÀå ÅÊÅ© ¶Ç´Â °ü°³ ¹è°ü¸Á°ú °áÇյ˴ϴÙ. ºê·¯½¬¸®½º DC ¸ðÅÍ, °¡º¯ Á֯ļö µå¶óÀ̺ê(VFD), žç ÃßÀû ¸ÞÄ¿´ÏÁòÀÇ Çõ½ÅÀ¸·Î SPISÀÇ È¿À²¼º°ú ½Å·Ú¼ºÀº Àϻ緮ÀÌ º¯µ¿ÇÏ´Â »óȲ¿¡¼­µµ Çâ»óµÇ¾ú½À´Ï´Ù. ÀϺΠ÷´Ü ½Ã½ºÅÛÀº ¼¾¼­¿Í IoT ±â¹Ý ÀÚµ¿È­¸¦ ÅëÇÕÇÏ¿© Åä¾ç ¼öºÐÀ» ¸ð´ÏÅ͸µÇϰí, À¯·®À» Á¶ÀýÇϸç, ¿¡³ÊÁö »ç¿ëÀ» ÃÖÀûÈ­ÇÕ´Ï´Ù. ÀÌ·¯ÇÑ ½º¸¶Æ® ±â´ÉÀº °ÇÁ¶ ¹× ¹Ý°ÇÁ¶ Áö¿ªÀÇ »ó¾÷Àû ³ó¾÷ °æ¿µ¿¡¼­ Á¡Á¡ ´õ ¸¹ÀÌ Ã¤Åõǰí ÀÖ½À´Ï´Ù.

SPISÀÇ ÁÖ¿ä ÀÌ¿ë »ç·Ê´Â ½Ä·®ÀÛ¹° »ý»ê(¹Ð, ¿Á¼ö¼ö, ½Ò), °íºÎ°¡°¡Ä¡ ¿ø¿¹(°úÀÏ, ä¼Ò, È­ÈÑ), È¥ÇÕ °æÀÛ ½Ã½ºÅÛ¿¡¼­ÀÇ ¸ñÃÊ °ü°³ µî ´Ù¾çÇÕ´Ï´Ù. »çÇ϶ó »ç¸· À̳² ¾ÆÇÁ¸®Ä«¿Í ³²¾Æ½Ã¾Æ¿¡¼­´Â ¿µ¼¼ ³ó°¡°¡ SPIS¸¦ ÅëÇØ Àç¹è ±â°£À» ¿¬ÀåÇϰí, Çö±Ý ÀÛ¹°·Î ÀüȯÇÏ¿© ½Ä·®¾Èº¸¸¦ °³¼±Çϰí ÀÖ½À´Ï´Ù. ¶óƾ¾Æ¸Þ¸®Ä«¿¡¼­´Â SPIS°¡ ¹Ù³ª³ª, Ä¿ÇÇ, »çÅÁ¼ö¼öÀÇ °ü°³¸¦ ¾ÈÁ¤È­ÇÏ¿© ³ó»ê¹° ¼öÃâ »ê¾÷À» Áö¿øÇϰí ÀÖ½À´Ï´Ù. Àεµ, ÄɳÄ, ¹æ±Û¶óµ¥½Ã, ¿¡Æ¼¿ÀÇÇ¾Æ µîÀÇ ±¹°¡¿¡¼­´Â ¸ó¼ø¿¡ ÀÇÁ¸ÇÏ´Â ³ó¾÷ÀÇ ºÒ¾ÈÁ¤¼ºÀ» ¿ÏÈ­Çϱâ À§ÇØ SPIS¸¦ ±¹°¡ ³ó¾÷ °³·® º¸±Þ ÇÁ·Î±×·¥¿¡ ÅëÇÕÇϰí ÀÖ½À´Ï´Ù. ¶ÇÇÑ SPIS´Â ¾î·ù ¾ç½Ä°ú °¡Ãà ±Þ¼ö ½Ã½ºÅÛ¿¡µµ Ȱ¿ëµÇ°í ÀÖÀ¸¸ç, ³óÃÌ °æÁ¦ Àü¹Ý¿¡ °ÉÃÄ ±× °¡Ä¡¸¦ ´õ¿í È®´ëÇϰí ÀÖ½À´Ï´Ù.

¾î´À Áö¿ª¿¡¼­ µµÀÔÀÌ È®´ëµÇ°í ÀÖÀ¸¸ç, Á¤ºÎ¿Í °³¹ß ÆÄÆ®³Ê´Â ¾î¶² ¿ªÇÒÀ» Çϰí Àִ°¡?

Àεµ´Â SPIS º¸±ÞÀÇ ¼¼°è ¸®´õÀ̸ç, KUSUM(Kisan Urja Suraksha evam Utthaan Mahabhiyan)°ú °°Àº ÁÖÁ¤ºÎ Â÷¿øÀÇ ÇÁ·Î±×·¥Àº °èÅ뿬°èÇü žçÈ÷Æ®ÆßÇÁ¸¦ ¼³Ä¡ÇÏ´Â ³ó°¡¿¡ ÀÚº» º¸Á¶±Ý°ú ÀÓº£µðµå °¡°ÝÀ» Á¦°øÇÕ´Ï´Ù. Àεµ´Â °ø°ø ÅõÀÚ, ¾çÇ㼺 À¶ÀÚ, ¹Î°£ ºÎ¹®ÀÇ Âü¿©¿¡ ÈûÀÔ¾î 2026³â±îÁö 200¸¸ ´ë ÀÌ»óÀÇ Å¾籤 ÆßÇÁ¸¦ µµÀÔÇϰڴٴ ¾ß½ÉÂù ¸ñÇ¥¸¦ ¼¼¿ì°í ÀÖ½À´Ï´Ù. »çÇ϶ó À̳² ¾ÆÇÁ¸®Ä«¿¡¼­´Â Powering Agriculture ±¸»ó, ¼¼°èÀºÇàÀÇ »çÇï °ü°³ ±¸»ó, ¾ÆÇÁ¸®Ä«°³¹ßÀºÇàÀÇ Desert-to-Power ¾ÆÁ¨´Ù¿Í °°Àº °ø¿©±¹ Áö¿ø ÇÁ·Î±×·¥À» ÅëÇØ ºü¸£°Ô µµÀÔÀÌ ÁøÇàµÇ°í ÀÖ½À´Ï´Ù. ÄɳÄ, Àáºñ¾Æ, ³ªÀÌÁö¸®¾Æ, ¼¼³×°¥Àº SPIS°¡ µðÁöÅÐ ±ÝÀ¶, ±³À°, ¹° °Å¹ö³Í½º ¼­ºñ½º¿Í ÇÔ²² Á¦°øµÇ´Â »õ·Î¿î ÇÖ½ºÆÌÀÔ´Ï´Ù.

Áßµ¿ ¹× ºÏ¾ÆÇÁ¸®Ä«¿¡¼­´Â ¸ð·ÎÄÚ, ÀÌÁýÆ®, ¿ä¸£´Ü µîÀÇ ±¹°¡µéÀÌ SPIS¸¦ ÀÌ¿ëÇÏ¿© µðÁ© ¼öÀÔÀ» ÁÙÀ̰í, ¿Â½Ç °¡½º ¹èÃâÀ» ¾ïÁ¦Çϸç, »ç¸· Áö¿ª ³ó¾÷ÀÇ °ü°³ °èȹÀ» Çö´ëÈ­Çϱâ À§ÇØ »ç¿ëÇϰí ÀÖ½À´Ï´Ù. ¶óƾ¾Æ¸Þ¸®Ä«¿¡¼­´Â ¸ß½ÃÄÚ, Æä·ç, ºê¶óÁú¿¡¼­ µµÀÔÀÌ È®´ëµÇ°í ÀÖÀ¸¸ç, Off-grid ³ó¾÷ Çùµ¿Á¶ÇÕÀ̳ª ±âÈÄ º¯È­¸¦ °í·ÁÇÑ ³ó¾÷¿¡ ÃÊÁ¡À» ¸ÂÃá ¹Î°ü ÆÄÆ®³Ê½ÊÀ» ÅëÇØ µµÀÔÀÌ ¸¹ÀÌ ÀÌ·ç¾îÁö°í ÀÖ½À´Ï´Ù. µ¿³²¾Æ½Ã¾Æ¿¡¼­´Â Çʸ®ÇÉ, º£Æ®³², ¹Ì¾á¸¶°¡ ³óÃÌ Àü±âÈ­ ±¸»ó¿¡ µû¶ó º­³ó»ç ¹× ¾ç½Ä »ç¾÷À» Áö¿øÇϱâ À§ÇØ SPIS¸¦ µµÀÔÇϰí ÀÖ½À´Ï´Ù.

FAO, GIZ, IFAD, USAID µî ´ÙÀÚ°£ ±â°üÀº ±â¼ú Ç¥ÁØÈ­, Áö½Ä º¸±Þ, ÇöÀå ½ÇÁõ¿¡ Áß¿äÇÑ ¿ªÇÒÀ» Çϰí ÀÖ½À´Ï´Ù. ÀÌµé ±â°üÀº °¡À̵å¶óÀÎ, ǰÁú º¸Áõ ÇÁ·ÎÅäÄÝ, ½ÃÀå °³¹ß Àü·«À» ÅëÇØ ½Ã½ºÅÛ ¼º´É ºÎÁ·°ú Áö¼Ó ºÒ°¡´ÉÇÑ Ãë¼ö¸¦ ¹æÁöÇÏ´Â »ýŰ踦 ±¸ÃàÇÒ ¼ö ÀÖµµ·Ï Áö¿øÇϰí ÀÖ½À´Ï´Ù.

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¼¼°è ž籤 °ü°³ ½Ã½ºÅÛ ½ÃÀåÀÇ ¼ºÀåÀº ž籤¹ßÀü ºñ¿ë °¨¼Ò, ¿¬·á °¡°Ý »ó½Â, ¹° È¿À²ÀÌ ³ôÀº ³ó¾÷¿¡ ´ëÇÑ ¼ö¿ä Áõ°¡, ³óÃÌ °³¹ßÀÇ Ã»Á¤ ¿¡³ÊÁö ¼Ö·ç¼Ç¿¡ ´ëÇÑ Àü ¼¼°è ¼ö¿ä Áõ°¡ µî ¿©·¯ °¡Áö ¿äÀο¡ ÀÇÇØ ÁÖµµµÇ°í ÀÖ½À´Ï´Ù. SPISÀÇ ¸ðµâ¼º°ú È®À强À» ÅëÇØ ´Ù¾çÇÑ ³óÀå ±Ô¸ð, ÁöÇü, ÀÛ¹° À¯Çü¿¡ ÀûÀÀÇÒ ¼ö ÀÖ½À´Ï´Ù. ¹° ºÎÁ·°ú ±âÈÄ º¯È­°¡ ±âÁ¸ÀÇ Ãµ¼ö´ä ³ó¾÷À» À§ÇùÇÏ´Â °¡¿îµ¥, SPIS´Â ź¼Ò¹èÃâ·®À» ´Ã¸®Áö ¾Ê°íµµ ½Ä·®½Ã½ºÅÛÀÇ ¾ÈÁ¤¼ºÀ» È®º¸ÇÒ ¼ö ÀÖ´Â »ý¸íÁÙ·Î ¶°¿À¸£°í ÀÖ½À´Ï´Ù.

±â¼úÀÇ ¹ßÀüÀº SPIS¿¡ »õ·Î¿î ÁöÆòÀ» ¿­¾îÁÖ°í ÀÖ½À´Ï´Ù. žçÈ÷Æ®ÆßÇÁ´Â AI¸¦ Ȱ¿ëÇÑ ÀÇ»ç°áÁ¤ Áö¿ø Åø, À§¼ºÀ» ÀÌ¿ëÇÑ ±â»ó ¿¹Ãø, ºí·ÏüÀÎÀ» Ȱ¿ëÇÑ °ø±Þ¸Á ¸ð´ÏÅ͸µ°ú ÅëÇÕÀÌ ÁøÇàµÇ°í ÀÖ½À´Ï´Ù. ž翭À» ÀÌ¿ëÇÑ ÁöÇ¥¸é °ü°³ ÀÚµ¿È­, ÀÌÃà žç ÃßÀû, ž翭°ú dz·Â ÇÏÀ̺긮µå ÆßÇÁ ½Ã½ºÅÛÀÇ Çõ½ÅÀº ÇѰè ȯ°æ¿¡¼­ SPISÀÇ Àû¿ë °¡´É¼ºÀ» È®ÀåÇϰí ÀÖ½À´Ï´Ù. ¸ð¹ÙÀÏ ¹ðÅ·°ú IoT ¼¾¼­¿¡ ÀÇÇØ ÃËÁøµÇ´Â Á¾·®Á¦(PAYG) ¸ðµ¨Àº ³ôÀº Ãʱ⠺ñ¿ëÀ» ÁöºÒÇÒ ¼ö ¾ø´Â ¼Ò³óµéÀÇ Á¢±ÙÀ» ¹ÎÁÖÈ­Çϰí ÀÖ½À´Ï´Ù.

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Global Solar Powered Irrigation Systems Market to Reach US$68.5 Billion by 2030

The global market for Solar Powered Irrigation Systems estimated at US$47.8 Billion in the year 2024, is expected to reach US$68.5 Billion by 2030, growing at a CAGR of 6.2% over the analysis period 2024-2030. Drip Irrigation System, one of the segments analyzed in the report, is expected to record a 6.8% CAGR and reach US$40.6 Billion by the end of the analysis period. Growth in the Sprinkler Irrigation System segment is estimated at 4.9% CAGR over the analysis period.

The U.S. Market is Estimated at US$13.0 Billion While China is Forecast to Grow at 9.8% CAGR

The Solar Powered Irrigation Systems market in the U.S. is estimated at US$13.0 Billion in the year 2024. China, the world's second largest economy, is forecast to reach a projected market size of US$14.1 Billion by the year 2030 trailing a CAGR of 9.8% over the analysis period 2024-2030. Among the other noteworthy geographic markets are Japan and Canada, each forecast to grow at a CAGR of 3.0% and 6.1% respectively over the analysis period. Within Europe, Germany is forecast to grow at approximately 4.1% CAGR.

Global Solar Powered Irrigation Systems Market - Key Trends & Drivers Summarized

Powering Agriculture with the Sun: How Solar Irrigation Systems Are Redefining Water-Energy-Food Security

Why Are Solar Irrigation Systems Emerging as Game-Changers in Agriculture and Water Management?

Solar Powered Irrigation Systems (SPIS) offer a renewable, decentralized, and scalable alternative to diesel- or grid-powered pumps traditionally used in agriculture. These systems utilize photovoltaic panels to drive electric motors connected to surface or sub-surface water pumps, supplying irrigation water for crops with minimal operating costs and environmental impact. In regions characterized by energy poverty, erratic rainfall, or limited grid access, SPIS are revolutionizing smallholder and commercial farming by ensuring reliable water supply, improving crop productivity, and reducing dependence on fossil fuels.

The surge in SPIS adoption is largely attributed to the growing intersection of food security, renewable energy, and climate adaptation. As climate variability alters rainfall patterns and aquifer recharge rates, farmers are increasingly turning to irrigation to stabilize yields. However, conventional energy sources for pumping water are either prohibitively expensive or logistically unreliable in many rural settings. Solar systems offer a long-term, maintenance-light solution with a lifespan of over 20 years and no recurring fuel costs. Moreover, the ability to integrate SPIS with drip and micro-irrigation systems enhances water-use efficiency, aligning with sustainable agricultural intensification objectives.

What Are the Core Components and Use Cases Across Agricultural Landscapes?

Solar irrigation systems typically consist of solar PV panels, a controller (or inverter), an electric motor, and a pump (centrifugal or submersible), often coupled with storage tanks or irrigation distribution networks. Innovations in brushless DC motors, variable frequency drives (VFDs), and solar tracking mechanisms have enhanced the efficiency and reliability of SPIS, even under variable irradiance. Some advanced systems integrate sensors and IoT-based automation to monitor soil moisture, regulate flow rates, and optimize energy use. These smart features are increasingly being adopted in commercial farming operations across arid and semi-arid regions.

The primary use cases of SPIS span staple crop production (wheat, maize, rice), high-value horticulture (fruits, vegetables, flowers), and pasture irrigation in mixed farming systems. In sub-Saharan Africa and South Asia, smallholder farmers use SPIS to extend growing seasons, shift to cash crops, and improve food security. In Latin America, SPIS supports agri-export industries by stabilizing irrigation for bananas, coffee, and sugarcane. Countries like India, Kenya, Bangladesh, and Ethiopia are integrating SPIS into national agricultural extension programs to mitigate the volatility of monsoon-dependent farming. Additionally, SPIS is being used in fish farming and livestock watering systems, further expanding its value across the rural economy.

Which Regions Are Scaling Adoption and What Role Are Governments and Development Partners Playing?

India is the global leader in SPIS deployment, with state-level programs like KUSUM (Kisan Urja Suraksha evam Utthaan Mahabhiyan) offering capital subsidies and buy-back tariffs for farmers installing grid-connected solar pumps. India has set an ambitious target of deploying over 2 million solar pumps by 2026, supported by public investment, concessional loans, and private sector participation. Sub-Saharan Africa is witnessing rapid uptake, driven by donor-supported programs such as the Powering Agriculture initiative, World Bank-s Sahel Irrigation Initiative, and Africa Development Bank-s Desert-to-Power agenda. Kenya, Zambia, Nigeria, and Senegal are emerging hotspots where SPIS is being bundled with digital finance, training, and water governance services.

In the Middle East and North Africa, countries like Morocco, Egypt, and Jordan are turning to SPIS to reduce diesel imports, curb greenhouse gas emissions, and modernize irrigation schemes in desert farming. Latin America is seeing expanding adoption in Mexico, Peru, and Brazil, often through off-grid farming cooperatives and public-private partnerships focused on climate-smart agriculture. In Southeast Asia, the Philippines, Vietnam, and Myanmar are deploying SPIS to support rice and aquaculture operations under rural electrification initiatives.

Multilateral agencies such as FAO, GIZ, IFAD, and USAID are playing instrumental roles in technical standardization, knowledge dissemination, and field demonstrations. These organizations are helping create enabling ecosystems through guidelines, quality assurance protocols, and market development strategies to prevent system underperformance or unsustainable water abstraction.

What Is Fueling Market Growth and Where Will the Next Frontier of Innovation Arise?

The growth in the global solar powered irrigation systems market is driven by several factors including declining PV costs, rising fuel prices, increasing demand for water-efficient farming, and the global push toward clean energy solutions in rural development. The modularity and scalability of SPIS make them adaptable across a range of farm sizes, topographies, and crop types. As water scarcity and climate change threaten traditional rain-fed farming, SPIS is emerging as a lifeline that ensures food system stability without adding to carbon footprints.

Technological advancements are opening new frontiers in SPIS. Solar pumps are increasingly integrated with AI-powered decision-support tools, satellite-based weather forecasting, and blockchain-enabled supply chain monitoring. Innovations in solar-powered surface irrigation automation, dual-axis solar tracking, and hybrid solar-wind pumping systems are expanding the applicability of SPIS in marginal environments. Pay-as-you-go (PAYG) models, facilitated through mobile banking and IoT sensors, are democratizing access for smallholders who cannot afford high upfront costs.

Future opportunities lie in bundling SPIS with regenerative farming practices, agroforestry models, and decentralized cold storage to create climate-smart agro-ecosystems. As water-energy-food security becomes central to national resilience strategies, solar-powered irrigation systems will remain a cornerstone technology for achieving sustainable development, agricultural modernization, and rural empowerment in the coming decades.

SCOPE OF STUDY:

The report analyzes the Solar Powered Irrigation Systems market in terms of units by the following Segments, and Geographic Regions/Countries:

Segments:

System Type (Drip Irrigation System, Sprinkler Irrigation System, Surface Irrigation System); Component (Solar Panel Component, Pump Controller Component, Submersible Water Pump Component, Inverter Component, Other Components); Application (Agricultural Irrigation Application, Landscaping & Gardening Application, Other Applications)

Geographic Regions/Countries:

World; United States; Canada; Japan; China; Europe (France; Germany; Italy; United Kingdom; Spain; Russia; and Rest of Europe); Asia-Pacific (Australia; India; South Korea; and Rest of Asia-Pacific); Latin America (Argentina; Brazil; Mexico; and Rest of Latin America); Middle East (Iran; Israel; Saudi Arabia; United Arab Emirates; and Rest of Middle East); and Africa.

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TABLE OF CONTENTS

I. METHODOLOGY

II. EXECUTIVE SUMMARY

III. MARKET ANALYSIS

IV. COMPETITION

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