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SunPower Maxeon3 410W Shade-Resistant All-Black Fixed Solar Panel

21.9% Efficient Gen 3 Cells - Black Frame - 1812x1046x40mm


Regular price $589.00
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Front view of SunPower Maxeon 3 410W all-black solar panel featuring 112 monocrystalline cells

SunPower Maxeon3 410W Shade-Resistant All-Black Fixed Solar Panel

DESCRIPTION

SunPower Maxeon 3 410W All-Black Solar Panel: Uncompromising Efficiency

Premium Monocrystalline Performance for Off-Grid, Marine, and Residential Energy

The SunPower Maxeon 3 410W solar panel delivers exceptional energy yield in a sleek, all-black profile. Engineered with third-generation Maxeon monocrystalline cells, this panel achieves an impressive 21.9% efficiency. By converting more sunlight into usable power within a compact footprint, it presents an ideal solution for spatial constraints on residential roofs, off-grid sheds, or marine vessels. Unlike conventional modules, this high efficiency solar panel ensures consistent performance across varied environmental conditions in Australia.

Innovative Back-Contact Cell Architecture

Traditional solar cells rely on front-facing metal grid lines that obstruct sunlight. The Maxeon 3 series utilises advanced back-contact technology, relocating electrical contacts to the rear of the cell. This design eliminates visual and physical barriers, allowing maximum light absorption. Beyond raw efficiency, the pristine black front surface integrates cleanly into modern architectural designs and premium vehicle power setups.

Structural Integrity for Harsh Conditions

Australia presents extreme weather challenges, from intense UV to severe coastal storms. To combat this, each cell features a solid metal backing that adds substantial structural strength. This heavy-duty reinforcement actively resists corrosion from environmental elements and prevents microcracking, a common failure point in standard modules. Furthermore, the panel incorporates thick, triple-redundant connectors with built-in strain relief. These connectors effortlessly manage the physical stress of thermal expansion and contraction during daily temperature cycles. Paired with a Class 1 black anodised aluminium frame and high-transmission tempered glass, the module readily withstands heavy wind and snow loads.

Sustained Power with Ultra-Low Degradation

Long-term power retention is critical for any renewable energy investment. The SunPower Maxeon 3 exhibits an exceptionally low annual degradation rate of just 0.2%, significantly outperforming the standard 0.75% seen in conventional modules. This translates to vastly more power generated over the system's lifespan. Additionally, the panel maintains stability in high heat, featuring an outstanding power temperature coefficient of -0.27% / °C. When ambient temperatures rise, energy loss is kept to a minimum, ensuring battery banks receive optimal charge even during peak summer days.

System Compatibility and Installation Flexibility

Generating up to 410W with a rated maximum power voltage (Vmp) of 35.3V and an open-circuit voltage (Voc) of 40.7V, this fixed solar panel pairs perfectly with high-quality MPPT charge controllers. Whether you are building a mobile 4WD setup or a robust off-grid home plant, it configures seamlessly into 12V, 24V, and 48V solar panel systems. The integrated IP-68 Stäubli MC4 connectors provide reliable, weatherproof terminations, while the shade-resistant split-circuit design ensures partial shading from trees or antennas does not cripple the entire string's electrical output.

Key Technical Benefits

  • Impressive 21.9% panel efficiency powered by 112 Maxeon Gen 3 monocrystalline cells
  • Back-contact cell construction removes front grid lines for increased sunlight capture
  • Solid metal backing prevents microcracks and provides superior marine-grade corrosion resistance
  • Ultra-low 0.2% annual degradation ensures reliable power generation for decades
  • Excellent high-temperature performance with a -0.27% / °C power temperature coefficient
  • Shade-resistant design mitigates power loss in partially obstructed environments

Upgrade Your Power System Today

Secure reliable, high-yield energy for your next project with the SunPower Maxeon 3 410W solar panel. Whether outfitting a marine vessel, upgrading an off-grid cabin, or maximising residential roof space, this module provides unmatched durability and performance. Add this premium solar panel to your setup to experience resilient, sustained power generation in any environment.

SPECIFICATIONS

Electrical DataSPR-MAX3-410-BLK-R
Nominal Power (Pnom)410 W
Power Tolerance+5/0%
Panel Efficiency21.9%
Rated Voltage (Vmpp)35.3 V
Rated Current (Impp)11.75 A
Open-Circuit Voltage (Voc) (+/−3)40.7 V
Short-Circuit Current (Isc) (+/−3)12.64 A
Max. System Voltage1000 V IEC
Maximum Series Fuse25 A
Power Temp Coef.−0.27% / °C
Voltage Temp Coef.−0.236% / °C
Current Temp Coef.0.058% / °C
Certifications and ComplianceSPR-MAX3-415-BLK-R
Standard TestsIEC 61215, IEC 61730
Quality Management CertsISO 9001:2015, ISO 14001:2015
Available ListingsTUV
IFLI Declare LabelFirst solar panel labeled for ingredient transparency and LBC-compliance. 4
Cradle to Cradle CertifiedTM SilverFirst solar panel line certified for material health, water stewardship, material reutilization, renewable energy & carbon management, and social fairness. 5
Green Building Certification ContributionPanels can contribute additional points toward LEED and BREEAM certifications.
EHS ComplianceRoHS, ISO 45001:2018, Recycle Scheme, REACH SVHC-163
Operating Condition And Mechanical DataSpecification
Temperature Range−40°C to +85°C
Impact Resistance25 mm diameter hail at 23 m/s
Solar Cells112 Monocrystalline Maxeon Gen 3
Front GlassHigh-transmission tempered glass with antireflective coating
Junction BoxIP-68, Stäubli (MC4), 2 bypass diodes
Weight21.2 kg
Max. LoadWind: 2400 Pa, 244 kg/m² front & back Snow: 5400 Pa, 550 kg/m² front
FrameClass 1 black anodized (highest AAMA rating)

SKU: SPR-MAX3-410-BLK-R
Model #: SPR-MAX3-410-BLK-R
MPN: SPR-MAX3-410-BLK-R
HS code: 854143
Country of origin: MY
Package weight: 20.0 kg
Package length: 1.75 m
Package width: 1.05 m
Package height: 0.05 m

WARRANTY

SunPower Warranty Policy

SunPower Limited Product and Power Warranty for Residential PV Modules

This Limited Warranty is effective for SunPower photovoltaic modules with “SPR” in the product model number and sold after April 1, 2013 (the “PV Modules”). SunPower photovoltaic modules which include “COM” in the model number are for commercial installations and have a different warranty.

1. Limited Warranty

SunPower Corporation Australia Pty Limited (ACN 009 066 380), an Australian proprietary company limited by shares, with its principal place of business at Level 4, 973 Nepean Highway, Bentleigh, Victoria, 3204; telephone number 1.800.SUNPOWER (1.800.786.769) and email address customercare@sunpowercorp.com (“SunPower”) warrants that for 25 years beginning on the Warranty Start Date (the “Warranty Period”), its PV Modules shall be free from defects in materials and workmanship under normal application, installation, use and service conditions, and the power output of the PV Modules will be at least 95% of the Minimum Peak Power rating for the first 5 years, and declining by no more than 0.4% per year for the following 20 years, so the power output at the end of the final year of the 25 year warranty period will be at least 87% of the Minimum Peak Power rating (the “Limited Warranty”).

If any PV Module fails to conform to this Limited Warranty, subject to these terms and conditions (the “Limited Warranty Terms”), SunPower will repair, replace (new or refurbished) or refund the defective PV Modules as follows: SunPower will make all reasonable efforts to repair or replace the PV Module with an electrically and mechanically compatible PV Module with an equal or greater power rating but if this is not commercially feasible (as determined by SunPower in its sole discretion), then SunPower will refund the purchase price of the defective PV Module as paid by the customer (the “Remedy”). The repair, replacement or refund Remedy provided herein shall be the sole and exclusive remedy of the customer under the Limited Warranty and provision of the Remedy is all that SunPower is required to do in order to honour the Limited Warranty.

The Limited Warranty for any repaired or replaced PV Module shall not extend beyond the Warranty Period that commenced on the Warranty Start Date for the first PV Module the subject of the original warranty claim. In the case of a valid claim for repair or replacement of a PV Module under the Limited Warranty Terms, provided the repaired or replacement PV Module is installed by SunPower, an affiliate of SunPower or an authorised SunPower installer, the Limited Warranty covers: (i) reasonable and customary transportation costs for return of the PV Modules; (ii) reshipment of any repaired or replaced PV Modules; and (iii) costs associated with installation, removal or reinstallation of the PV Modules.

2. General Conditions for Warranty Claims

  1. The defect in the PV Module must arise in, and the warranty claim must in all events be notified to SunPower in accordance with the procedure set out in Section 5, within the Warranty Period;
  2. Warranty claims may only be made by, or on the behalf of (i) the original end customer, as named in the certificate of guarantee or invoice, as applicable (the “End Customer”), and (ii) any subsequent title holder of the PV Modules upon satisfactory proof to SunPower of succession or transfer from the original End Customer.
  3. Notwithstanding any other provision of these Limited Warranty Terms, when PV Modules are used on a mobile platform of any type, such as a vehicle, the Warranty Period shall be limited to 12 years.
  4. In cases of PV Module replacement, any replaced PV Module shall pass into the ownership of SunPower.

1 “Warranty Start Date” is the earlier of (i) date of array interconnection and (ii) 6 months following the date of SunPower delivery. If the delivery date cannot be verified, manufacturing date will be used in its place.

2 “Minimum Peak Power” is defined as Peak Power minus peak power tolerance or the minimum rated power, as shown on the label. Peak Power is defined as the watt peak at Standard Test Conditions, as described in IEC61215, measured per IEC60904, and accounting for tolerances per EN50380. SunPower modules shall, in any event, require a sweep rate of no less than 200ms to ensure an accurate power measurement. SunPower can provide a detailed testing procedure or a list of recognised testing agencies upon request.

Document#: 503131 Rev B 1.800.SUNPOWER (1.800.786.769) | www.sunpowercorp.com.au

3. Exclusions and Limitations

The Limited Warranty does not apply to any of the following:

  1. PV Modules subjected to: misuse, abuse, neglect or accident; alteration, improper installation, application or removal (including but not limited to installation, application or removal by any party other than SunPower, a SunPower authorised dealer or technician approved by SunPower in writing); non-observance of the applicable SunPower installation, users and/or maintenance instructions or non-compliance with national and local electric codes; repair or modifications by someone other than an approved service technician of SunPower; conditions exceeding the voltage, wind, or snow load specifications; power failure surges, lightning, flood, or fire; damage from persons, insects, animals, or industrial chemical exposure; glass breakage from impact or other events outside SunPower’s control.
  2. Cosmetic effects stemming from normal wear and tear of PV Module materials or other cosmetic variations which do not cause power output lower than what is guaranteed by the Limited Warranty. Normal wear and tear of PV Module materials can include, but is not limited to, fading of frame colour, weathering of glass coatings, and areas of discolouration around or over individual solar cells or any part of the PV Module.
  3. PV Modules installed in locations, which in SunPower’s absolute judgment may be subject to direct contact with bodies of salt water.
  4. PV Modules for which the labels containing product type or serial number have been altered, removed or made illegible.
  5. PV Modules which have been moved from their original installation location without the express written approval of SunPower.
  6. SunPower modules which include “COM” in the model number.

SunPower shall not be held responsible or liable to the customer or any third-party arising out of any non-performance or delay in performance of any terms and conditions of sale, including this Limited Warranty, due to acts of God, war, riots, strikes, fire, flood or any other cause or circumstance beyond the reasonable control of SunPower.

4. Limitation of Warranty Scope

Subject to the limitations under applicable law, the Limited Warranty set forth herein is expressly in lieu of and excludes all other express or implied warranties, including but not limited to warranties of merchantability and of fitness for particular purpose, use, or application, and all other obligations or liabilities on the part of SunPower, unless such other warranties, obligations or liabilities are expressly agreed to in writing, signed and approved by SunPower.

SunPower shall have no responsibility or liability whatsoever for damage or injury to persons or property or for other loss or injury resulting from any cause whatsoever arising out of or related to the PV Modules, including, without limitation, any defects in the PV Module, or from use or installation. Under no circumstances shall SunPower be liable for incidental, consequential or special damages, howsoever caused. Loss of use, loss of profits, loss of production, and loss of revenues are therefore specifically but without limitation excluded.

SunPower’s aggregate liability, if any, in damages or otherwise, shall not exceed the purchase price paid to SunPower by the customer, for the unit of product or service furnished or to be furnished, as the case may be, which gave rise to the warranty claim.

Some jurisdictions do not allow limitations on implied warranties or the exclusion of damages, so the above limitations or exclusions may not apply to you. If any provision of this Limited Warranty is held unenforceable or illegal by a court or other body of competent jurisdiction, such provisions shall be modified to the minimum extent required such that the rest of this Limited Warranty will continue in full force and effect.

To the extent that you, the customer, have acquired our goods as a consumer as defined in the Competition and Consumer Act 2010 (Cth) or applicable state and territory fair trading legislation:

  1. The benefits given to you under the Limited Warranty are in addition to other rights and remedies under laws relating to the products;
  2. SunPower’s goods come with guarantees that cannot be excluded under the Australian Consumer Law. You are entitled to replacement or refund for a major failure and compensation for any other reasonably foreseeable loss or damage. You are also entitled to have the goods repaired or replaced if the goods fail to be of acceptable quality and the failure does not amount to a major failure.
  3. Subject to subparagraph (D) below, nothing contained in these Limited Warranty Terms excludes, restricts or modifies any condition, warranty, guarantee or other obligation in relation to the supply of goods which, pursuant to the Acts or any of them, is applicable or is conferred on you (the “Statutory Obligations”) where to do so is unlawful; and
  4. To the full extent permitted by law, the sole liability of SunPower and its related bodies corporate for breach of any such Statutory Obligations will be limited, except as otherwise specifically set forth herein, to: (i) the replacement of the goods or the supply of equivalent goods or payment of the cost of replacing the goods or acquiring equivalent goods; or (ii) the repair of the goods or the payment of the cost of having the goods repaired, in each case as SunPower may select.

If any provision of these Limited Warranty Terms is held unenforceable or illegal by a court or other body of competent jurisdiction, such provision(s) shall be modified, or if necessary severed, to the minimum extent required such that the rest of these Limited Warranty Terms will continue in full force and effect.

5. Procedure to Make a Warranty Claim

If you feel you have a justified claim covered by this Limited Warranty, immediately notify, and in any event within the applicable Warranty Period: (a) the seller and installer of the PV Modules, or (b) any authorised SunPower installer, or (c) contact SunPower directly at the contacts set out above and shown below.

Your installer, or SunPower, will give advice on handling the claim and the requirements for supporting your claim, which shall include, without limitation, the provision of the warranty card, online warranty registration information, invoice, and/or evidence of the date of delivery of the PV Module, serial number and product number of affected modules, and evidence of claim.

The return of any PV Modules will not be accepted unless prior written authorisation has been given by SunPower.

The Limited Warranty does not cover any expenses incurred by you in making and supporting a warranty claim in accordance with these Limited Warranty Terms and all such expenses are to be borne by you.

6. Governing Law

These Limited Warranty Terms are governed by and are to be construed in accordance with the laws in force in Victoria. SunPower and the customer irrevocably and unconditionally submit to the non-exclusive jurisdiction of the courts of Victoria and any courts which have jurisdiction to hear appeals from any of those courts, and waive any right to object to any proceedings being brought in those courts.

WIRING INSTALLATION

SOLAR 4 RVS

OFF-GRID, EXTRA LOW VOLTAGE SOLAR PANEL WIRING GUIDE

Please read this document in full before commencing installation.

 

To maximise the efficiency and longevity of your new solar panels, please ensure you follow the instructions in this guide carefully. Failure to do so WILL result in shortened panel lifespan AND void your warranty.  

While it seems simple to connect solar panels to your battery, common installations practices such as using non-waterproof connectors as permanent connection points CAN damage the solar panel AND void your warranty, please continue reading the guide for more details.

Whilst due care has been taken to ensure the recommended wiring practices will provide a safe and efficient installation, we cannot guarantee these methods will be suitable in every scenario due to variations in cable, connectors, solar charge controllers, environment, and installation practices.  It is the duty of the installer to verify the installation is installed to local standards and refer to each manufacturer’s instructions.

This guide is limited to 12 and 24V battery systems.

 

Contents

Safety. 3

Selecting an Appropriate Solar Panel based on the Specifications. 4

Series, Parallel and Combination Wiring Installations. 4

Installation Type 1 – Parallel Wiring. 5

Installation Type 2 – Series Wiring. 6

Installation Type 3 – Series/Parallel Combination Wiring. 7

Paralleling and Series of Different Solar Panels. 8

Cable Size. 8

Solar Array Performance. 8

Bypass, Blocking Diodes and Shading. 9

Sizing a Solar Charge Controller. 10

Solar Panel Efficiency. 10

Maintenance. 12

Ongoing Support. 12

Safety

  • All work should be carried out in shade or inside out of direct sunlight. Use a towel or blanket on top of the panel to reduce light exposure;
  • Ladder indicating safety Work safely at heights.  Ensure you have a sturdy, secure ladder;
  • Use insulated tools;
  • Ensure the panels are kept covered during installation;
  • Wear appropriate footwear;
  • Exotronic 200W solar panel specifications Use gloves and other PPE where appropriate;
  • Seek help where needed.
  • This guide is only relevant for installations installed at below 120V DC using the Open Circuit Voltage (Voc) rating of the solar panel.

Example: Model Exo-SP-F4-200, the Voc is 24.1V, therefore 5 panels in series is 120.5V and would require a licensed electrician to complete an installation.

  • Extra low voltage solar arrays CAN cause fires AND/OR injury/death if adequate precautions are not taken. 
  • Do not leave the solar panel short-circuited (i.e. the MC4 connectors should NOT be connected together) and exposed to the sun, this can cause failure of the bypass diodes, hot-spots and permanent damage to the solar panel within minutes.

 

Selecting an Appropriate Solar Panel based on the Specifications

Solar panel, MPPT and battery wiring showing cable sizes, connections, battery fuse and solar isolation switch The wattage of the solar panel is calculated by Max Power Voltage (Vmp) x Max Power Current (Imp), i.e. 10.2A x 19.8V = 202W. 

When no power is being drawn from the solar panel, the Voc will be present.

To charge a 12V battery bank, dependent on the charge controller, approximately 7V is required between the absorption voltage requirement of the battery and the solar panel Voc.  I.e. a calcium 12V battery that requires 14.8V absorption voltage, will need a panel with at least 21.8Voc.  Most solar panels are approx. 23Voc.  When calculating the array current, use the short circuit current (Isc).

The diagram to the right shows a simple photovoltaic (PV) / solar array connected to a 12V battery.

Never install a solar panel in a permanently shaded location, this can damage the bypass diode and cause hot spots.

If a solar isolation switch is used, it should be sized to handle the full short circuit current of the array, plus ~20% to avoid nuisance tripping. I.e. if an array is rated to 30Asc, then the circuit breaker should be at least 36A, the closest match will be a 40A circuit breaker.

 

Series, Parallel and Combination Wiring Installations

When more than one solar panel is used, each solar panel can be connected to an individual solar charge controller, this will generally lead to the best performance but at the highest cost and complexity.  

An alternative is to wire the panels in either series or parallel or a combination of both.

two solar panels wired in parallel Installation Type 1 – Parallel Wiring

This type of installation, most common for off-grid 12V systems, each solar panel positive is connected together, and each negative connected together.  In this case, the array voltage will remain the same as a single solar panel, however the array current will increase. 

three solar panels wired in parallel with string fusing

If a solar panel were to fail by an internal fault, such as an internal bypass diode short circuit, the fault current of the array would all flow through the failed diode.  There are many examples of this causing fires, string fusing has been designed to minimise the risk.

In the example (above) of three solar panels, if the left panel were to fail from a shorted bypass diode, the middle and right solar panels would each pass 10A into the left solar panel. Therefore, 20A would pass through the 15A fuse, and cause it to disconnect the failed solar panel from the array.

The fuses should be located close to 3 to 1 branch connector.

Fusing is not required when two or fewer solar panel are used because it is not possible for the fuse to reach the required tripping current.  

Parallel arrays provide good tolerance to shade and keeps the voltage low, and thus safer.

 

Installation Type 2 – Series Wiring

two solar panels wired in series In this type of installation, commonly used in 24V systems, one solar panel positive is connected to the next solar panel negative.  In this case, the array current will remain the same as a single solar panel, however the array voltage will increase.  Typically, 24V systems require an open circuit array voltage of at least 36.6V.

Each group of panels wired in series is called a “string”. 

The advantages of series wiring are:

  • Reduced wiring cost
  • Reduced power losses in cables
  • Typically improved performance in MPPT solar charge controllers

The disadvantages are:

  • Poor shade tolerance
  • High voltage rated solar controllers often required
  • Less safe

 

Installation Type 3 – Series/Parallel Combination Wiring

This type of installation, commonly used in larger systems, two or more solar panels are connected in series to make a string, and two or more strings are paralleled together. In this case, the array current AND the array voltage will increase.

A note on MC4 solar connectors, these types of connectors are waterproof, affordable, high voltage rated, are pre-installed on most solar panels and are usually disconnectable.  The current rating is typically limited to approx. 30A when 6mm2 or larger PV1-F solar cable is used, therefore they would not be suitable for four 10A solar panels wired in parallel without overloading the connector.  Series/parallel wiring arrangements are a good way to overcome this while still being able to use these types of connectors

4 solar panels wired in series parallel combination

The advantages of this type of system wiring are:

  • Partially reduced wiring cost
  • Partially reduced power losses in cables
  • Typically improved performance in MPPT solar charge controllers
  • Avoids the need of string fuses when less than two strings are paralleled
  • Reasonable shade tolerance

The disadvantages are:

  • High voltage rated solar controllers often required

Paralleling and Series of Different Solar Panels

Panels can typically be wired in parallel when the same type of solar cell and voltage is used.  I.e. two solar panels using P-type mono-PERC cells and both 24Voc can be paralleled, but if a P-type mono-PERC cell and n-type IBC cell are paralleled, differing coefficients of performance will cause a mismatch in voltages, causing the higher voltage panel to be “dragged down” to the lower voltage panel and increasing the risk of panel failure.  Consult your distributor for verification before paralleling different types of solar panels.

At the time of writing, the Exotronic PERC series of solar panels are all designed to use the exact same cell cut into 36 pieces and therefore the voltage and performance will be nearly identical, and will thus provide good performance when paralleled.

Panels can only be wired in series when the cell type and current are the same, this is quite rare.  Therefore typically only the same solar panel make and model can be wired in series.

Example: 2x 200W Exotronic Solar fixed solar panels can be wired in series, and 2x 30W Exotronic fixed solar panels can be wired in series, and each string can be wired in parallel.  But the 30W and 200W panel cannot be wired in series.

Cable Size

The most practical wire for solar panels is PV1-F solar cable, this cable is most common in 4mm2 and 6mm2.  A very rough rule of thumb is for arrays of less than 20A can use 4mm2, and 20A or larger should use 6mm2.  If a larger size is required, it is recommended to run two runs from the array to the solar controller.  There is no harm in using larger size cable except for practicality and cost considerations.

PV1-F cable is highly UV resistant, durable, high voltage rated, designed to fit MC4 connectors, highly stranded, and tinned copper.  It’s properties mean the cable is well suited for most applications including marine, and it is also cost effective.

Solar Array Performance

Solar panels are rated at Standard Test Conditions (STC), this means solar panels are placed on a bed of light rated at 1000W/m2 at 25C and at sea level.  This is why it is not typical to see the solar panel output in typical conditions, combined with the other losses (dirt on panel, cable/connection losses, sun orientation, panel temperature, solar controller losses, battery efficiency losses) the actual output that will be seen will likely be much lower.

Often a rule of thumb is you will see up to 75% of the STC rating of the solar panel at midday in summer.  I.e. 150W from a 200W solar panel.

In some rare cases you may see close to full output, i.e. the solar panel has been stored in a cool garage, and suddenly exposed to full midday summer sun. As the panel heats up, performance will drop to the more typical 75% output.

For the best performance, the solar panel should be perpendicular to the sun, however normally brackets to make the solar panel face the sun provide minimal performance improvement at a much higher complexity and cost. 

Bypass, Blocking Diodes and Shading

internal view of how a bypass diode works Each solar panel will have one or more bypass diodes.  Despite the marketing claims, the main purpose of bypass diodes is to protect the cells from overheating.  When a cell is shaded it causes the cell to increase resistance, as current flows through the resistance, the cell heats up, and if the current is not bypassed around the cell, it will cause a hot spot and subsequent failure of the cell, and as each cell is wired in series, failure of the whole solar panel.

In 12V arrays, the bypass diodes, while necessary for the purpose of protection of the cells, provide minimal performance improvement.

3 panels wired in parallel with string fusing and blocking diodes

When a solar panel is completely shaded, it can become a resistance, causing the power flow of other solar panels to flow through it in reverse thus causing power loss in the system. 

Blocking diodes can be installed to prevent this.  However, this event is rare, and the diodes will cause power loss at all times.  Therefore, unless specifically required by the manufacturer, blocking diodes should be avoided.  Most good quality solar controllers should have their own blocking diode installed, and therefore an additional blocking diode is not necessary for single panel installations. They are also not a replacement for string fusing.

 

Sizing a Solar Charge Controller

The solar charge controller or solar regulator must be sized appropriately for the array.  A too small charge controller can be damaged, and too large can be unnecessary. 

If using a PWM controller, typically you must use a larger controller than required. You must also use a 30-36 cell (17 to 20Vmp) solar panel on a 12V battery or 60-72 cell (34 to 40Vmp) solar panel on a 24V battery.  To size a PWM controller, a simple calculation is: Power of Array in Watts / Battery Bank Voltage x 0.8 for losses, i.e. 400W / 12V x 0.8 = 26.7A controller required.

If using an MPPT controller, you can often size the controller smaller to reduce costs, while still allowing maximum performance in winter.  When using an MPPT, ideally use a 36 cell or more (19Vmp+ limited by the maximum input voltage rating of the PV input of the solar controller) solar panel on a 12V battery.  To size an MPPT controller, a simple calculation is: Power of Array in Watts / Battery Bank Voltage x 0.8 for losses, i.e. 400W / 12V x 0.8 = 26.7A controller required.  However you can often downsize to a 20 or 25A controller as it is often only in summer when the most power is available, that the controller will reach the maximum output, and therefore oversizing is not necessary.

MPPTs will have significantly improved performance when it is required the most, i.e. during the cooler months where there is more likely to be shading, and low light conditions.

Solar Panel Efficiency

two identical vans, side by side, one with a large panel, and one with many smaller panels Solar cell efficiency is effectively how much light is converted to power in terms of m2 of the solar cell.

Solar panel efficiency is the same measurement, but takes into account the entire panel, i.e. the space between the cells and the frame.  Therefore solar panel panels can be more efficient simply by decreasing the space between the cells, and to the frame.  This is why larger solar panels are more efficient then smaller panels; less borders/gaps to cell ratio.

Practically speaking, when useable area is limited, a 22% efficient 300W solar panel could take up most of the available space, limiting the room for future panels and increasing the complexity of wiring, whereas it could be possible to install 2x 200W modules plus a 160W solar panel on a single controller, greatly increasing the total power of the array and keeping the wiring relatively simple. There are many different solar technologies, the most common is monocrystalline. While the highest cost, it is higher in efficiency compared to polycrystalline and amorphous, and therefore reduces the quantity of solar panels needed and simplifies the system.  Amorphous, while having improved shade tolerance, is very low efficiency, therefore even when compared to a shaded monocrystalline module, the overall output can often be worse.

Cells get exponentially more expensive as the efficiency increases, the easiest way for unscrupulous retailers to increase profits is to overstate the rated output of the solar panel.  In the example below, the solar panel is 18V and advertised to be 350W, therefore it should have an Imp of approximately 19.4A.  The cells, based on the specifications and appearance are ¾ cut 156mm cells with 5 wire busbars.  The highest output possible on cells of this nature is approximately 7.5A.  Therefore it is not physically possible for this solar panel to exist.  A true output of a panel this size will be approximately 120 to 130W based on several reasonable assumptions.  As Sunpower uses interdigitated back contact cells, there are no busbars on the front, so the cells type stated below is also incorrect.

competitors solar panel with misleading specifications

The highest cost and most efficient solar cells commercially available at the time of writing are approximately 24% efficient, and therefore the maximum efficiency for a very large module could approach 23% efficient. 

Maintenance

To ensure your solar panels are performing optimally, be sure to keep on top of this simple maintenance checklist.

  • Clean on a regular basis with neutral soap & clean water, using a soft sponge or cloth;
  • If in a marine environment, wash regularly with fresh water to avoid damage caused by saltwater;
  • Periodically inspect the mechanical and electrical connections;
  • Denatured alcohol (methylated spirit) can be used to remove grease etc.

Ongoing Support

Solar 4 RVs are proud to offer a support service beyond the purchase of your solar panels. If you require further technical support, please feel free to contact us. We are happy to help!

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