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4114R-1-563

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Manufacturer Part Number:
4114R-1-563
Manufacturer / Brand
Bourns Inc.
Part of Description:
RES ARRAY 7 RES 56K OHM 14DIP
Datasheets:
4114R-1-563(1).pdf4114R-1-563(2).pdf
Lead Free Status / RoHS Status:
RoHS non-compliant
Stock Condition:
New original, 80151 pcs Stock Available.
ECAD Model:
Ship From:
Hong Kong
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Part Number 4114R-1-563
Manufacturer / Brand Bourns Inc.
Stock Quantity 80151 pcs Stock
Category Resistors > Resistor Networks, Arrays
Description RES ARRAY 7 RES 56K OHM 14DIP
Lead Free Status / RoHS Status: RoHS non-compliant
Tolerance ±2%
Temperature Coefficient ±100ppm/°C
Supplier Device Package 14-DIP
Size / Dimension 0.765' L x 0.300' W (19.43mm x 7.62mm)
Series 4100R
Resistor-Ratio-Drift 50ppm/°C
Resistor Matching Ratio -
Resistance (Ohms) 56k
Power Per Element 250mW
Package / Case 14-DIP (0.300', 7.62mm)
Package Tube
Operating Temperature -55°C ~ 125°C
Number of Resistors 7
Number of Pins 14
Mounting Type Through Hole
Height - Seated (Max) 0.185' (4.69mm)
Circuit Type Isolated
Base Product Number 4114R
Applications -

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4114R-1-563 Product Details:

The Bourns Inc. 4114R-1-563 is an isolated resistor network delivering seven independent 56kΩ resistive elements in a compact 14-DIP through-hole package. This resistor array architecture provides multiple matched resistance values within a single component footprint, reducing board space requirements and simplifying assembly processes in multichannel circuit implementations.

Each resistive element is rated for 250mW continuous power dissipation with ±2% tolerance, offering predictable performance across signal conditioning, voltage division, and pull-up/pull-down configurations. The isolated circuit topology ensures that each resistor operates independently without shared terminals, enabling flexible network design where electrical isolation between channels must be maintained. This configuration suits applications requiring multiple discrete resistive paths without cross-coupling effects.

The temperature coefficient specification of ±100ppm/°C indicates stable resistance behavior across the full -55°C to 125°C operating range, with additional 50ppm/°C resistor-ratio-drift performance that maintains relative matching between elements during thermal transitions. These thermal characteristics support precision analog circuits, multichannel sensor interfaces, and instrumentation designs where thermal tracking between parallel signal paths affects overall system accuracy.

The 14-pin dual in-line package with 0.300" (7.62mm) row spacing follows standard DIP dimensional conventions, providing compatibility with conventional PCB layouts, prototyping breadboards, and automated through-hole insertion equipment. The 0.765" × 0.300" body dimensions and 0.185" maximum seated height allow integration into dense board assemblies while maintaining clearance requirements for adjacent components.

As part of the Bourns 4100R series, this resistor network shares common electrical and mechanical specifications with related array configurations, facilitating design scalability across product variants. The active production status and tube packaging format support both prototype development and volume manufacturing requirements. The component operates within -55°C to 125°C ambient conditions, addressing industrial, automotive, and extended-temperature commercial applications where environmental extremes are encountered.

This resistor array serves multichannel data acquisition systems, multi-output power supply feedback networks, LED current limiting arrays, and interface termination circuits where multiple resistive elements with consistent electrical characteristics are required. The isolated architecture eliminates the constraint of common-node configurations, providing circuit designers with greater topological flexibility compared to bussed or ladder network alternatives.

4114R-1-563 Image
4114R-1-563 (1)

4114R-1-563 Replacement Overview: Equivalent and Alternative Part Numbers

When a design uses the Bourns Inc. 4114R-1-563 resistor network, replacement demand usually comes from one of four situations: sustaining a legacy through-hole assembly, resolving stock shortages, improving environmental compliance, or consolidating approved vendor lists for maintenance purchasing. In each case, the replacement decision is not only about matching 56 kOhm resistance. The selected part also has to preserve the electrical behavior of an isolated 7-resistor SIP/DIP network, fit the 14-DIP footprint, and remain acceptable for thermal, tolerance, and assembly constraints in the original circuit.

For projects looking for a 4114R-1-563 equivalent, the most relevant alternative part numbers typically include:

  • Bourns Inc. 4608X-101-563LF
  • CTS Electronic Components 742C083563JP
  • Vishay / Dale 4610X-101-563LF style equivalents where footprint and network style are checked carefully
  • Yageo YC164-JR-0756KL style alternatives for redesign cases only, not direct through-hole drop-in use
  • Discrete resistor substitution using 7 pieces of 56 kOhm axial or SMD resistors when package interchangeability is not available

Some of these options are true form-fit-function substitutes for a through-hole resistor array, while others are redesign alternatives suitable only when layout updates or assembly method changes are acceptable.

Understanding the Bourns Inc. 4114R-1-563 in a Replacement Context

The Bourns Inc. 4114R-1-563 belongs to the 4100R series and is an isolated resistor network with 7 independent resistors, each rated at 56 kOhm. The package is a 14-DIP through-hole body with 0.300 inch width, and the network does not use a common bus. That isolated topology is the first filter when identifying an equivalent resistor array.

In real designs, this style of resistor network is often used to:

  • provide multiple pull-up or pull-down paths with identical nominal values
  • terminate low-speed logic or control lines
  • bias comparator, transistor, optocoupler, or interface inputs
  • reduce assembly count in industrial and telecom boards
  • maintain matched placement density in legacy DIP-based layouts

The main engineering meaning of 4114R-1-563 is not just “a 56k resistor pack.” It is specifically a 7-element isolated resistor network in a through-hole 14-DIP package. Any replacement that changes network topology, pinout convention, package family, or resistor count can introduce layout or functional errors even if the nominal resistance remains 56 kOhm.

Selection Criteria Before Choosing a 4114R-1-563 Equivalent

Check the Network Topology for 4114R-1-563 Replacements

The original Bourns Inc. 4114R-1-563 uses isolated resistors. Each resistor is independent from the others. This matters because many resistor arrays in similar packages use bussed or dual-terminator configurations. A bussed network may look mechanically similar, but it cannot replace the 4114R-1-563 in circuits where each channel must remain electrically separate.

For a valid 4114R-1-563 replacement, the circuit diagram or PCB pad numbering should confirm:

  • 7 separate resistor elements
  • no shared common pin
  • 14-pin mapping compatible with isolated pair structure

Verify Mechanical Interchangeability

The original package is a through-hole 14-DIP, 0.300 inch body width. In service and maintenance environments, package compatibility often decides whether a part is a direct substitute or a redesign candidate.

Mechanical checks should include:

  • pin count: 14
  • row spacing: 7.62 mm
  • lead pitch and lead shape
  • overall body length tolerance relative to board keepout
  • seating height if the board fits into a chassis or card cage

Evaluate Resistance, Tolerance, and Temperature Drift

The 56 kOhm nominal value is straightforward, but replacement suitability depends on circuit role:

  • If the network is used for pull-up or pull-down biasing, ±2% may be relaxed in some systems.
  • If used in timing, threshold setting, or multi-channel bias consistency, tolerance and tempco become more relevant.
  • If all channels feed analog comparators or multiplexed sensing nodes, channel-to-channel stability may matter more than in simple digital biasing.

The original 4114R-1-563 is rated at ±2% and ±100 ppm/°C. Any substitute with broader tolerance should be reviewed in the context of threshold margins and operating temperature range.

Review Power Dissipation and Voltage Stress

The 250 mW per element rating is adequate for many bias functions, but not all legacy designs use these arrays lightly. If each 56 kOhm resistor is connected across moderate supply rails, power may still be low. However, fault conditions, surge events, or long-duration high-voltage bias should be checked.

For each channel:

  • P = V² / R

At 24 V across 56 kOhm, power is about 10.3 mW, well below the original rating. At 48 V, power is about 41 mW, still modest. This means most control and interface uses remain far from the 250 mW limit, but the calculation should still be repeated for the actual application before approving a lower-rated alternative.

Best Direct Replacement Candidate: Bourns Inc. 4608X-101-563LF

Among practical alternatives, Bourns Inc. 4608X-101-563LF is often the strongest candidate when a direct through-hole resistor network replacement is needed.

Why Bourns Inc. 4608X-101-563LF Can Replace 4114R-1-563

The 4608X-101-563LF is part of a Bourns resistor network family widely used for isolated resistor pack applications. It matches the key replacement requirements:

  • isolated resistor topology
  • 7 resistors
  • 56 kOhm nominal value
  • through-hole DIP-style package
  • industry-familiar pin mapping for isolated networks

It is also a useful option when the replacement objective includes RoHS-oriented sourcing, because LF suffix variants are commonly selected for lead-free compliance programs.

Differences Between Bourns Inc. 4608X-101-563LF and 4114R-1-563

Although functionally close, the 4608X-101-563LF should not be treated as automatically identical without footprint verification. The review should focus on:

  • package family differences between 4100R and 4600X series
  • lead forming details
  • body dimensions
  • exact pin numbering convention from the manufacturer drawing
  • tolerance and power rating variant by specific suffix

In many maintenance cases, these differences do not prevent substitution, but engineering release should be based on the actual datasheet drawing rather than family-level assumptions.

Suitable Use Cases for Bourns Inc. 4608X-101-563LF

This replacement is suitable for:

  • legacy industrial controller boards
  • I/O conditioning circuits
  • pull-up and pull-down resistor banks
  • relay driver interface biasing
  • optocoupler input/output bias structures

Limitations of Bourns Inc. 4608X-101-563LF

It is less suitable if:

  • the board has unusually tight mechanical clearance around the original 4114R-1-563
  • qualification documents lock the design to the 4100R series only
  • the design depends on exact thermal drift or assembly geometry across multiple approved lots

Alternative Through-Hole Option: CTS Electronic Components 742C083563JP

The CTS Electronic Components 742C083563JP is another realistic option when sourcing a 4114R-1-563 equivalent resistor network.

Why CTS Electronic Components 742C083563JP Can Serve as an Alternative

This part is from a resistor network family used in similar multi-resistor package applications. It is often considered where the required configuration is:

  • isolated resistor array
  • 56 kOhm value
  • DIP or SIP-style through-hole integration
  • comparable channel count

Its value proposition is usually second-source diversification rather than exact same-series continuity.

Key Differences Compared to Bourns Inc. 4114R-1-563

The differences that should be checked include:

  • package dimensions and seating profile
  • tolerance grade, often ±5% or other variants depending on suffix
  • power-per-element rating
  • material system and compliance status
  • lead finish and solderability profile for mixed-technology assembly lines

If the original 4114R-1-563 is used in a threshold-sensitive analog section, a ±5% alternative may require circuit-level review. In a digital input bias network, that same variation may be acceptable.

Applicable Scenarios for CTS Electronic Components 742C083563JP

This alternative fits best in:

  • service replacement for mature equipment
  • approved-vendor-list expansion
  • applications where resistor absolute tolerance has reasonable design margin
  • procurement cases where Bourns lead time is longer than alternate suppliers

Limitations of CTS Electronic Components 742C083563JP

This option is not ideal if:

  • the original design relies on tighter tolerance consistency
  • documentation requires the same resistor array family style
  • assembly process qualification is sensitive to package geometry variation

Vishay / Dale Style Alternatives for 4114R-1-563

Vishay / Dale resistor network families are frequently reviewed when engineers search for a Bourns 4114R-1-563 replacement. Depending on the exact series and suffix, comparable isolated network parts may be available in DIP-compatible formats.

Why Vishay / Dale Alternatives Are Considered

Vishay / Dale has long-standing coverage in resistor networks for industrial and mil-oriented procurement channels. These parts are commonly evaluated because they can offer:

  • established quality history
  • multiple resistance values and tolerance bins
  • stable sourcing through broad distribution
  • familiar through-hole package styles

Differences That Must Be Confirmed

The main issue is that Vishay resistor arrays often span several topologies. A mechanically similar part may be bussed, split, or terminator style instead of isolated. For that reason, a Vishay / Dale candidate should only be approved after confirming:

  • isolated circuit configuration
  • 7-resistor count
  • 14-DIP footprint compatibility
  • acceptable tolerance and tempco
  • comparable channel power capability

Applicable Scenarios

A Vishay / Dale isolated network is a reasonable replacement path when:

  • a long-life industrial maintenance strategy prefers multi-source approval
  • the original Bourns Inc. 4114R-1-563 is not available
  • the production or repair organization already stocks Vishay resistor networks

Limitations

Series-level comparison alone is not sufficient. A specific Vishay / Dale part number should be matched against the original pinout drawing before release.

Redesign Alternative: Yageo YC164-JR-0756KL and Other SMD Resistor Arrays

A surface-mount resistor network such as Yageo YC164-JR-0756KL may appear in search results for 56 kOhm 4-resistor or similar array replacements, but it is not a direct substitute for the Bourns Inc. 4114R-1-563.

Why Yageo YC164-JR-0756KL May Still Be Relevant

In redesign programs, the goal sometimes shifts from one-to-one package replacement to function retention with improved manufacturability. In that context, SMD resistor arrays can reduce board area, improve automated assembly flow, and support RoHS-aligned product refreshes.

Why It Is Not a Direct 4114R-1-563 Equivalent

The limitations are clear:

  • different mounting type
  • different package and footprint
  • different resistor count depending on array family
  • different thermal and rework behavior
  • no drop-in compatibility for a 14-DIP through-hole footprint

Applicable Scenarios

This route is suitable only when:

  • the PCB is being revised
  • through-hole content is being reduced
  • product life extension includes a formal requalification cycle
  • procurement wants to move from legacy DIP resistor packs to mainstream SMD sourcing

Last-Resort Functional Replacement: Seven Discrete 56 kOhm Resistors

When no resistor network package is available, seven discrete 56 kOhm resistors can reproduce the electrical function of the Bourns Inc. 4114R-1-563.

Why Discrete Resistors Can Replace 4114R-1-563 Functionally

Because the original network uses isolated elements, each of the seven internal resistors is electrically independent. That means the function can be replicated channel by channel using separate resistors of suitable value, tolerance, and power rating.

Differences from the Original 4114R-1-563

The tradeoffs are usually:

  • more board area
  • higher placement count
  • less uniform thermal coupling between channels
  • more assembly labor in manual repair
  • possible layout parasitic changes if flying leads or daughter repairs are used

Applicable Scenarios

This method is practical for:

  • depot repair
  • field service
  • low-volume maintenance builds
  • emergency shortages where restoring function matters more than BOM uniformity

Limitations

It is generally unsuitable for:

  • production lines optimized for the original 14-DIP package
  • compact layouts with no spare board area
  • products requiring cosmetic or mechanical conformity to the original assembly

Comparison Summary for 4114R-1-563 Alternative Part Numbers

Bourns Inc. 4608X-101-563LF vs. Bourns Inc. 4114R-1-563

  • Best fit for direct replacement workflow
  • Same manufacturer family ecosystem
  • Similar isolated resistor network intent
  • Requires drawing-level package and pinout confirmation
  • Strong option when lead-free sourcing is needed

CTS Electronic Components 742C083563JP vs. Bourns Inc. 4114R-1-563

  • Useful second-source path
  • Often acceptable in bias and pull network applications
  • Tolerance and package details should be reviewed carefully
  • Better suited to AVL expansion than blind one-to-one replacement

Vishay / Dale Isolated Network Equivalent vs. Bourns Inc. 4114R-1-563

  • Good option for industrial procurement flexibility
  • Strong brand familiarity in resistor networks
  • Requires exact topology verification
  • Series naming alone does not guarantee interchangeability

Yageo YC164-JR-0756KL and Similar SMD Arrays vs. Bourns Inc. 4114R-1-563

  • Suitable for redesign, not direct replacement
  • Supports SMT migration and updated manufacturing strategy
  • Footprint, resistor count, and assembly method differ substantially

Seven Discrete 56 kOhm Resistors vs. Bourns Inc. 4114R-1-563

  • Functionally valid fallback because the original network is isolated
  • Helpful for repair and shortage mitigation
  • Least elegant option for production due to space and labor impact

Practical Validation Methods After Replacing 4114R-1-563

Using Bourns Inc. 4608X-101-563LF as the primary example, practical validation should move beyond nominal resistance matching.

Verify Pinout and Channel Mapping

Before soldering:

  • compare the original 4114R-1-563 datasheet internal schematic to the 4608X-101-563LF schematic
  • map each resistor pair pin-to-pin
  • inspect PCB land pattern spacing and insertion direction markings
  • confirm there is no hidden common node or reversed numbering convention

A continuity meter can quickly validate that each resistor is isolated and connected between the expected two pins.

Check Driver Compatibility and Bias Current Impact

If the resistor network is used on digital inputs, transistor bases, MOSFET gates with static bias, or optocoupler interfaces:

  • calculate the expected current with the substitute tolerance range
  • compare logic high/low thresholds under worst-case supply voltage
  • review RC timing if the resistor works with line capacitance or input capacitance
  • confirm startup behavior remains inside reset and enable timing margins

Example:

  • If the 56 kOhm resistor is used as a pull-up on an open-collector signal with 100 pF total node capacitance, the RC constant is about 5.6 µs. A substitute with wider tolerance may shift that edge timing slightly. In slow control logic this is usually acceptable, but multiplexed sensing or sampled interrupt lines may need oscilloscope confirmation.

Evaluate Thermal Performance Changes

Even if the replacement has similar resistance, thermal performance should be checked in the installed environment:

  • estimate per-element power from applied voltage
  • compare to the replacement element rating
  • inspect whether adjacent hot components warm the resistor pack body
  • confirm drift at high ambient temperature does not shift analog thresholds outside design margin

For most 24 V or 5 V bias applications, the 56 kOhm dissipation is low. The practical concern is often not self-heating, but ambient heating from nearby regulators, relays, or power resistors.

Review Waveform and Signal Integrity Effects

In many boards, resistor arrays are treated as static parts, yet replacement can still affect waveforms if:

  • the node is high impedance
  • multiple channels switch together
  • trace routing differs in a redesign
  • discrete resistor replacement increases loop area and noise pickup

Practical checks include:

  • scope the rise/fall shape on representative channels
  • compare analog threshold crossing timing before and after replacement
  • watch for noise susceptibility on long control lines
  • verify no unintended coupling exists if a different package style changes lead geometry

Confirm Assembly and Reliability Behavior

For through-hole replacements:

  • inspect lead wetting after soldering
  • check seating height and body stress
  • verify cleaning process compatibility if the line uses wash chemistry
  • perform pull or handling checks on repaired boards if the substitute body is mechanically different

Field experience with DIP resistor networks shows that electrical equivalence alone does not always guarantee reliable service outcome. Lead form mismatch, insertion stress, or marginal solder fill can become the actual failure mechanism in maintenance builds.

Procurement and Lifecycle Considerations for 4114R-1-563 Alternatives

For buyers and sustaining engineers, replacing the Bourns Inc. 4114R-1-563 also involves non-electrical screening:

  • RoHS non-compliance of the original may drive selection toward lead-free alternatives such as LF-suffixed families
  • REACH exposure review may be needed depending on end-market requirements
  • active lifecycle status should be confirmed for any new approved part number
  • tube packaging compatibility may matter for repair cells or selective solder fixtures
  • vendor documentation should preserve traceability for regulated or industrial service programs

A replacement that is electrically acceptable but poorly documented can create recurring qualification work. In many organizations, the more sustainable path is to approve one direct through-hole alternative and one redesign path for future PCB revisions.

How to Choose the Right 4114R-1-563 Replacement for Different Scenarios

For Direct Board-Level Replacement

Preferred path:

  • Bourns Inc. 4608X-101-563LF

Reason:

  • closest alignment with original function, package style, and sourcing expectations

For Second-Source Procurement Flexibility

Preferred path:

  • CTS Electronic Components 742C083563JP
  • a verified Vishay / Dale isolated network equivalent

Reason:

  • broadens supply options while keeping the design in the same general through-hole resistor network class

For Product Refresh or Manufacturing Modernization

Preferred path:

  • Yageo YC164-JR-0756KL or similar SMD resistor array, only after PCB redesign

Reason:

  • fits transition from legacy through-hole designs toward SMT-oriented production

For Emergency Repair

Preferred path:

  • seven discrete 56 kOhm resistors with suitable tolerance and power rating

Reason:

  • electrically reproduces the isolated network when package-matched stock is unavailable

Conclusion

For most cases, the fastest decision path starts by confirming that the original Bourns Inc. 4114R-1-563 is a 7-element isolated 56 kOhm resistor network in a 14-DIP through-hole package. Once that is established, Bourns Inc. 4608X-101-563LF is usually the leading replacement candidate because it stays closest to the original mechanical and functional model. CTS Electronic Components 742C083563JP and verified Vishay / Dale isolated network parts are reasonable alternatives when second-source approval is the main objective. Yageo YC164-JR-0756KL and similar SMD arrays belong to redesign projects rather than direct substitution, while seven discrete 56 kOhm resistors remain a workable fallback for repair situations.

A practical replacement flow is:

  • confirm isolated topology
  • verify 14-DIP footprint and pin mapping
  • review tolerance and power margin in the actual circuit
  • check bias timing, thermal exposure, and assembly fit
  • approve the part according to whether the need is direct replacement, second-source procurement, redesign, or emergency repair

That approach reduces the risk of selecting a resistor array that matches in value but not in circuit behavior, package compatibility, or long-term sourcing suitability.

Frequently Asked Questions

Can I use Bourns 4114R-1-563 as a pull-up or pull-down network for multiple digital lines in one package?
Yes, Bourns 4114R-1-563 is commonly used for grouped pull-up or pull-down functions when you want seven separate 56k ohm resistors in a single 14-DIP package. In a 4114R-1-563 design, each resistor is isolated, so it works well for buses, GPIO lines, and signal conditioning where the nets must not be tied together internally. The 56k value is typically suited to biasing, weak pull-up/down, and high-impedance sensing rather than fast edge shaping or strong bus loading.
Is Bourns 4114R-1-563 suitable for replacing individual through-hole resistors on a legacy PCB?
Bourns 4114R-1-563 is a practical replacement when the PCB already supports a 14-DIP, 0.300-inch through-hole footprint and you want to reduce part count. The main design check is pin mapping: because the network is isolated, each resistor must be routed correctly to the corresponding pins, and the package pinout must match the original layout. If the board used single discrete resistors with different values or orientations, the 4114R-1-563 may require trace changes or jumper adjustments.
What should I check before using Bourns 4114R-1-563 on an input protection or biasing circuit?
For Bourns 4114R-1-563, verify that the 56k ohm value provides the bias current you need under worst-case leakage, input threshold, and noise conditions. In high-impedance circuits, the resistor network can be appropriate for biasing, but it is not a substitute for dedicated protection against surges, ESD, or overvoltage events. If the circuit must clamp transients, the 4114R-1-563 should usually be paired with protection devices rather than used alone.
Can Bourns 4114R-1-563 be used in 3.3 V and 5 V logic designs?
Yes, Bourns 4114R-1-563 can be used in both 3.3 V and 5 V logic designs when the intended function is a passive resistor network such as pull-ups, pull-downs, or bias resistors. The key consideration is the resulting current through the 56k ohm elements and whether the receiving device’s input leakage and threshold levels remain compatible. In some 3.3 V systems, 56k may be too weak for noisy environments, while in low-power designs it can be a good fit.
Is Bourns 4114R-1-563 a good choice for replacing SIP resistor arrays or bussed resistor networks?
Bourns 4114R-1-563 is not a direct drop-in replacement for bussed networks, because it is an isolated 7-resistor array rather than a common-node resistor pack. If the original part had one shared pin and multiple resistors tied to that node, the circuit behavior will differ and the replacement may fail to bias the lines correctly. It is best used when each resistor must remain independent, or when the schematic is being revised to match the isolated topology.
How does Bourns 4114R-1-563 behave in industrial temperature ranges and long-term use?
Bourns 4114R-1-563 is specified for operation from -55°C to 125°C, which makes it suitable for many industrial and embedded environments. Over temperature, the 56k ohm elements will drift within the stated temperature coefficient, so circuits that rely on precise threshold positioning should account for resistor variation in addition to the input device tolerances. For long-term stability, the package and through-hole construction are often convenient in systems that experience vibration or service access, provided the PCB and solder joints are designed accordingly.
Can I use Bourns 4114R-1-563 for analog signal conditioning or sensor interfaces?
Bourns 4114R-1-563 can be used in analog interfaces where a moderately high-value, isolated resistor network is acceptable, such as biasing, reference loading, or simple attenuation networks. For precision analog scaling, the 56k ohm tolerance and tracking characteristics should be reviewed against the system error budget, especially if multiple channels must remain matched. If the design depends on tight ratio matching between resistors, a network with guaranteed matching specs may be more appropriate than the 4114R-1-563.
What footprint and assembly issues should I watch for when placing Bourns 4114R-1-563 on a PCB?
Bourns 4114R-1-563 uses a 14-DIP through-hole package with a 0.300-inch body width, so the PCB hole spacing, row spacing, and component height must be checked before release. In dense layouts, the package size can influence routing around adjacent connectors or tall components. Because it is a tube-packaged through-hole part, wave soldering or hand assembly may be preferred depending on your manufacturing flow.
How do I decide whether Bourns 4114R-1-563 or discrete 56k resistors are better for my design?
Bourns 4114R-1-563 is usually preferred when you want to reduce assembly steps, simplify BOM handling, and keep several identical resistors in one package. Discrete resistors may still be better if each channel needs a different value, different power rating, or a layout that spreads heat and spacing more freely. The 4114R-1-563 also makes service replacement easier when the board already supports the DIP footprint and the channels share a common design intent.
Are there practical alternatives to Bourns 4114R-1-563 if I need a different resistor network style?
If your design needs a common-node resistor pack rather than isolated resistors, you would look at a different network topology from Bourns or another vendor instead of Bourns 4114R-1-563. If you need surface-mount assembly, a similar-value network in SOIC or SIP format may fit better. For applications that need better ratio control, lower drift, or tighter absolute resistance tolerance, compare the network’s matching specifications and package type rather than selecting by resistance value alone.
Can Bourns 4114R-1-563 be used in designs that require high reliability or field replacement?
Bourns 4114R-1-563 is often a convenient choice for serviceable hardware because the through-hole DIP package is easier to inspect, rework, and replace than many small surface-mount alternatives. In field-repairable equipment, that can simplify maintenance, especially when several identical resistors are consolidated into one part. For high-reliability use, verify solder joint quality, board stress, and environmental exposure, since the network itself is only one part of the overall reliability chain.
Does Bourns 4114R-1-563 make sense for low-power or battery-powered systems?
Bourns 4114R-1-563 can fit low-power designs because 56k ohm resistors draw relatively little current when used as bias or pull networks. That said, the actual power and current depend on the applied voltage, duty cycle, and how many of the seven resistors are active at once. In battery-powered products, the network is often a reasonable choice when the design needs weak biasing without adding significant static load.

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4114R-1-563

4114R-1-563

Bourns Inc.

RES ARRAY 7 RES 56K OHM 14DIP

In Stock: 80151

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