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Space DC-DC Converters
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2024³â¿¡ 5,040¸¸ ´Þ·¯·Î ÃßÁ¤µÇ´Â ¿ìÁÖ¿ë DC-DC ÄÁ¹öÅÍ ¼¼°è ½ÃÀåÀº 2024³âºÎÅÍ 2030³â±îÁö 13.5%ÀÇ CAGR·Î ¼ºÀåÇÏ¿© 2030³â¿¡´Â 1¾ï 750¸¸ ´Þ·¯¿¡ ´ÞÇÒ °ÍÀ¸·Î ¿¹ÃøµË´Ï´Ù. ÀÌ º¸°í¼­¿¡¼­ ºÐ¼®ÇÑ ºÎ¹® Áß ÇϳªÀÎ Àý¿¬ÇüÀº CAGR 14.9%¸¦ ±â·ÏÇÏ¸ç ºÐ¼® ±â°£ Á¾·á½Ã¿¡´Â 7,470¸¸ ´Þ·¯¿¡ ´ÞÇÒ °ÍÀ¸·Î ¿¹ÃøµË´Ï´Ù. ºñÀý¿¬Çü ºÎ¹®ÀÇ ¼ºÀå·üÀº ºÐ¼® ±â°£ µ¿¾È CAGR 10.6%·Î ÃßÁ¤µË´Ï´Ù.

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DC-DC ÄÁ¹öÅͰ¡ ¿ìÁÖ ÀÓ¹«ÀÇ ¹Ì·¡¿¡ Áß¿äÇÑ ÀÌÀ¯´Â ¹«¾ùÀΰ¡?

¿ìÁÖ¿ë DC-DC ÄÁ¹öÅÍ´Â ¿ìÁÖ¼± Àü¿ø °ü¸® ½Ã½ºÅÛ¿¡ ÇʼöÀûÀÎ ±¸¼º¿ä¼Ò·Î, ´Ù¾çÇÑ ¼öÁØÀÇ Àü±â ÀÔ·ÂÀ» ÇÊ¿ä·Î ÇÏ´Â ¼­ºê ½Ã½ºÅÛ Àüü¿¡ °ÉÃÄ È¿À²ÀûÀÎ Àü¾Ð Á¶ÀýÀ» °¡´ÉÇÏ°Ô ÇÕ´Ï´Ù. À§¼ºÀÇ ÆäÀ̷εå, ÃßÁø ½Ã½ºÅÛ, ¿­ °ü¸® ÀåÄ¡ ¶Ç´Â žÀçµÈ µ¥ÀÌÅÍ ÇÁ·Î¼¼¼­ µî °¢ ¼­ºê½Ã½ºÅÛÀº Á¤È®ÇÑ Àü·Â °ø±ÞÀÌ ÇÊ¿äÇѵ¥, ÀÌ ÄÁ¹öÅÍ´Â À̸¦ ¿ëÀÌÇÏ°Ô ÇØÁÝ´Ï´Ù. Áö»ó¿ë ÄÁ¹öÅÍ¿Í ´Þ¸® ¿ìÁÖ¿ë DC-DC ÄÁ¹öÅÍ´Â Áø°ø, ³ÐÀº ¿Âµµ ¹üÀ§, ¹æ»ç¼± ³ëÃâ, ¹ß»ç ½Ã Áøµ¿ µî °¡È¤ÇÑ Á¶°Ç¿¡¼­µµ ÀÛµ¿ÇÒ ¼ö ÀÖµµ·Ï ¼³°èµÇ¾ú½À´Ï´Ù. ¿ìÁÖ ÀÓ¹«°¡ Á¡Á¡ ´õ º¹ÀâÇØÁö°í, ¼ÒÇüÈ­µÇ°í, ÀüÀÚÀû ÀÚÀ²¼º¿¡ ÀÇÁ¸ÇÏ°Ô µÊ¿¡ µû¶ó, ½Å·Ú¼º, °æ·®È­, °íÈ¿À²ÀÇ DC-DC ÄÁ¹öÅÍ¿¡ ´ëÇÑ ¼ö¿ä´Â °è¼Ó Áõ°¡Çϰí ÀÖ½À´Ï´Ù. LEO ¹× GEO À§¼ººÎÅÍ ½É¿ìÁÖ Å½»ç¼±, À¯ÀΠŽ»ç¼±±îÁö ¾ÈÁ¤ÀûÀÎ Àü·Â °ø±ÞÀº ¾çº¸ÇÒ ¼ö ¾ø½À´Ï´Ù. °í󸮷® À§¼º, Å¥ºê À§¼º, ÃʼÒÇü À§¼º, AI žÀç Ç÷§ÆûÀÇ µîÀåÀº ÆÄ¿ö ÀÏ·ºÆ®·Î´Ð½ºÀÇ ¿ªÇÒ Áõ°¡¸¦ ´õ¿í ºÎ°¢½Ã۰í ÀÖ½À´Ï´Ù. ÀÌ·¯ÇÑ ÄÁ¹öÅÍ´Â Àü±â ÃßÁø ½Ã½ºÅÛ¿¡µµ ÇʼöÀûÀ̸ç, ±× ³ôÀº È¿À²¼ºÀ¸·Î ÀÎÇØ ÇöÀç Àå±â ÀÓ¹«¿¡¼­ ÀϹÝÀûÀ¸·Î »ç¿ëµÇ°í ÀÖ½À´Ï´Ù. ¿ìÁÖ ½Ã½ºÅÛÀÌ µðÁöÅÐÈ­, ¸ðµâÈ­, ³×Æ®¿öũȭµÈ ¾ÆÅ°ÅØÃ³·Î ÀüȯµÊ¿¡ µû¶ó DC-DC ÄÁ¹öÅÍ´Â ´õ ÀÌ»ó ´Ü¼øÇÑ ¼öµ¿ ºÎǰÀÌ ¾Æ´Ï¶ó Àüü ½Ã½ºÅÛ ¼º´É, ¿¡³ÊÁö ÃÖÀûÈ­ ¹× ¹Ì¼Ç ¼º°øÀ» À§ÇÑ Áß¿äÇÑ ¿øµ¿·ÂÀÌ µÇ°í ÀÖ½À´Ï´Ù.

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¿ìÁÖ¿ë DC-DC ÄÁ¹öÅÍ ¼³°è´Â ±â´ëµÇ´Â ¼º´É°ú ¿ìÁÖ ÀÎÁõ ¿ä°Ç ¸ðµÎ¿¡ µû¶ó Å©°Ô ¹ßÀüÇϰí ÀÖ½À´Ï´Ù. ±âÁ¸ÀÇ ºÎÇǰ¡ Å« ÄÁ¹öÅÍ´Â ÆäÀÌ·Îµå °ø°£À» ÃÖÀûÈ­ÇÏ°í ¹ß»ç ºñ¿ëÀ» Àý°¨ÇÏ´Â µ¥ ÇʼöÀûÀÎ Àü·Â´ë Áß·®ºñ¸¦ Çâ»ó½ÃŰ´Â ¼ÒÇüÈ­ ¹× °í¹Ðµµ À¯´ÖÀ¸·Î ´ëüµÇ°í ÀÖ½À´Ï´Ù. ¿ÍÀÌµå ¹êµå°¸ ¹ÝµµÃ¼ Àç·á, ƯÈ÷ ÁúÈ­°¥·ý(GaN)°ú źȭ±Ô¼Ò(SiC)ÀÇ ÅëÇÕÀº °¡Àå Çõ½ÅÀûÀÎ Æ®·»µå Áß ÇϳªÀÔ´Ï´Ù. ÀÌ·¯ÇÑ ¼ÒÀç´Â ´õ ³ôÀº ½ºÀ§Äª Á֯ļö, ³·Àº ¹ß¿­, Çâ»óµÈ ³»¹æ»ç¼±¼ºÀ» °¡´ÉÇÏ°Ô ÇÏ¿© ¿ìÁÖ¿ë ¾ÖÇø®ÄÉÀ̼ǿ¡ ÀÌ»óÀûÀÔ´Ï´Ù. ¿­ È®»ê±â ¹× »ó º¯È­ Àç·áÀÇ ÅëÇÕÀ» Æ÷ÇÔÇÑ °í±Þ ¿­ °ü¸® ±â¼úÀº ¿­¾ÇÇÑ ±Ëµµ ȯ°æ¿¡¼­ Àå±âÀûÀÎ ½Å·Ú¼ºÀ» º¸ÀåÇϱâ À§ÇØ ³»ÀåµÇ¾î ÀÖ½À´Ï´Ù. ¶ÇÇÑ, ½Ç½Ã°£ Áø´Ü, ¿ø°Ý ÃøÁ¤, ºÎÇÏ º¯µ¿¿¡ ´ëÇÑ ÀûÀÀÀ» À§ÇØ ÄÁ¹öÅÍ ³»¿¡ µðÁöÅÐ Á¦¾î ÀÎÅÍÆäÀ̽º°¡ ³»ÀåµÇ¾î ÀÖ¾î ½Ç½Ã°£ Áø´Ü, ¿ø°Ý ÃøÁ¤, ºÎÇÏ º¯µ¿¿¡ ÀûÀÀÇÒ ¼ö ÀÖ½À´Ï´Ù. EMI Â÷Æó, ÀÌÁßÈ­ ¾ÆÅ°ÅØÃ³, ³»°áÇÔ¼º ȸ·ÎÀÇ Çõ½Å ¶ÇÇÑ À§Çèµµ°¡ ³ôÀº ¹Ì¼Ç¿ë DC-DC ÄÁ¹öÅÍÀÇ ½Å·Ú¼º°ú ÀÛµ¿ ¼ö¸íÀ» Çâ»ó½Ã۰í ÀÖ½À´Ï´Ù. ¹Ì¼ÇÀÌ ´õ ±íÀº ¿ìÁÖ·Î ÁøÃâÇϰí ÇöÀå À¯Áöº¸¼ö°¡ ºÒ°¡´ÉÇØÁü¿¡ µû¶ó, ÀÌ·¯ÇÑ Çõ½ÅÀ» ÅëÇØ ÄÁ¹öÅÍ´Â ±ä ¹Ì¼Ç ¶óÀÌÇÁ»çÀÌŬ µ¿¾È ÀϰüµÈ ÀÚÀ² Àü·Â Á¦¾î¸¦ °¡´ÉÇÏ°Ô ÇÕ´Ï´Ù.

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Global Space DC-DC Converters Market to Reach US$107.5 Million by 2030

The global market for Space DC-DC Converters estimated at US$50.4 Million in the year 2024, is expected to reach US$107.5 Million by 2030, growing at a CAGR of 13.5% over the analysis period 2024-2030. Isolated, one of the segments analyzed in the report, is expected to record a 14.9% CAGR and reach US$74.7 Million by the end of the analysis period. Growth in the Non-Isolated segment is estimated at 10.6% CAGR over the analysis period.

The U.S. Market is Estimated at US$13.3 Million While China is Forecast to Grow at 12.6% CAGR

The Space DC-DC Converters market in the U.S. is estimated at US$13.3 Million in the year 2024. China, the world's second largest economy, is forecast to reach a projected market size of US$16.6 Million by the year 2030 trailing a CAGR of 12.6% over the analysis period 2024-2030. Among the other noteworthy geographic markets are Japan and Canada, each forecast to grow at a CAGR of 12.6% and 11.4% respectively over the analysis period. Within Europe, Germany is forecast to grow at approximately 9.7% CAGR.

Global Space DC-DC Converter Market - Key Trends & Drivers Summarized

Why Are DC-DC Converters Critical to the Future of Space Missions?

Space DC-DC converters are essential components within spacecraft power management systems, enabling efficient voltage regulation across subsystems that require varying levels of electrical input. Whether it’s a satellite payload, propulsion system, thermal management device, or onboard data processor, each subsystem requires precise power delivery, which these converters facilitate. Unlike terrestrial converters, space-grade DC-DC converters are built to operate under extreme conditions including vacuum, wide temperature ranges, radiation exposure, and vibration during launch. As space missions become increasingly complex, miniaturized, and reliant on electronic autonomy, the demand for reliable, lightweight, and highly efficient DC-DC converters continues to rise. From LEO and GEO satellites to deep-space probes and crewed missions, stable power distribution is non-negotiable. The rise of high-throughput satellites, cube and nano-satellites, and onboard AI-powered platforms further underscores the growing role of power electronics. These converters are also crucial for electric propulsion systems, which are now common in long-duration missions due to their efficiency. As space systems move toward digital, modular, and networked architectures, DC-DC converters are no longer just passive components-they are key enablers of system-wide performance, energy optimization, and mission success.

How Are Technological Advancements Transforming Converter Design and Performance?

The design of space DC-DC converters has evolved significantly in response to both performance expectations and space qualification requirements. Traditional bulky converters are being replaced by miniaturized, high-density units that offer enhanced power-to-weight ratios-critical for optimizing payload space and reducing launch costs. The integration of wide bandgap semiconductor materials, especially gallium nitride (GaN) and silicon carbide (SiC), is one of the most transformative trends. These materials enable higher switching frequencies, lower heat generation, and improved radiation resistance, making them ideal for space-grade applications. Advanced thermal management techniques, including embedded heat spreaders and phase change materials, are being integrated to ensure long-term reliability in harsh orbital environments. Moreover, digital control interfaces are being embedded within converters to enable real-time diagnostics, telemetry, and adaptability to load fluctuations. Innovations in EMI shielding, redundant architecture, and fault-tolerant circuitry are also advancing the reliability and operational longevity of DC-DC converters for high-risk missions. As missions push further into deep space, where in-situ maintenance is not possible, these technological innovations ensure that converters deliver consistent, autonomous power regulation over long mission lifecycles.

Which End-Use Applications Are Driving the Market's Expansion?

Demand for space DC-DC converters is being driven by a rapidly diversifying portfolio of missions across civil, defense, and commercial sectors. The ongoing satellite mega-constellation race for broadband internet delivery-led by companies like SpaceX, Amazon, and OneWeb-has triggered a surge in demand for low-cost, radiation-hardened converters suitable for LEO platforms. Meanwhile, GEO communications satellites and earth observation spacecraft continue to demand high-reliability converters with thermal and radiation robustness. In defense applications, space DC-DC converters support ISR (intelligence, surveillance, reconnaissance) satellites, early-warning systems, and space situational awareness platforms. Scientific exploration missions-such as NASA’s Mars probes or ESA’s planetary studies-require ultra-high-reliability converters to support sensors, propulsion, and communication systems over multi-year journeys. Crewed missions and the development of lunar infrastructure (Artemis, Gateway, etc.) are also introducing new power complexity and demand for modular, scalable power electronics. Additionally, space robotics, interplanetary navigation, and orbital servicing vehicles are emerging as new high-growth categories. Each of these applications imposes strict performance, redundancy, and durability requirements on converters, thereby fueling innovation and specialization among suppliers.

What Is Fueling the Long-term Growth of the Space DC-DC Converter Market?

The growth in the space DC-DC converter market is driven by several factors tied to space system complexity, satellite platform proliferation, material innovation, and power management demands. A key driver is the exponential growth of satellite deployments, particularly smallsats and cube satellites, which require compact, efficient, and affordable converters tailored to size and mass constraints. Advancements in semiconductor packaging and thermal design are allowing for higher power density converters that meet these demands. Another major factor is the push toward full electric propulsion and distributed power systems, especially in long-duration and deep-space missions, where energy efficiency and voltage conversion stability are paramount. The increasing integration of electronics-heavy payloads, including synthetic aperture radar (SAR), high-resolution cameras, and onboard AI systems, is also boosting the need for robust DC-DC conversion to prevent performance degradation or mission failure. Space agencies and private firms alike are investing in redundant power architectures, which require multiple converter units per mission, further scaling demand. Additionally, the standardization of space electronics through organizations like NASA, ESA, and ISRO is streamlining procurement and qualification processes, facilitating broader adoption. Lastly, the entrance of commercial NewSpace players is bringing cost-efficiency and high-volume manufacturing to converter production, transforming what was once a bespoke, low-volume niche into a scalable global market poised for robust long-term expansion.

SCOPE OF STUDY:

The report analyzes the Space DC-DC Converters market in terms of units by the following Segments, and Geographic Regions/Countries:

Segments:

Type (Isolated, Non-Isolated); Form Factor (Chassis Mount, Enclosed, Brick, Discrete); Platform (Satellites, Capsules / Cargos, Interplanetary Spacecraft & Probes, Rovers / Spacecraft Landers, Launch Vehicles); Application (Altitude & Orbital Control Systems Application, Surface Mobility & Navigation Systems Application, Command & Data Handling Systems Application, Environmental Monitoring Systems Application, Satellite Thermal Power Box Application, Electric Power Subsystems Application, Other Applications)

Geographic Regions/Countries:

World; United States; Canada; Japan; China; Europe (France; Germany; Italy; United Kingdom; and Rest of Europe); Asia-Pacific; Rest of World.

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TABLE OF CONTENTS

I. METHODOLOGY

II. EXECUTIVE SUMMARY

III. MARKET ANALYSIS

IV. COMPETITION

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