웽양 공업구 웨칭 원저우 325000
근무 시간
월요일~금요일: 오전 7시~오후 7시
주말: 주말: 오전 10시 - 오후 5시
웽양 공업구 웨칭 원저우 325000
근무 시간
월요일~금요일: 오전 7시~오후 7시
주말: 주말: 오전 10시 - 오후 5시

3+1과 4+0 SPD 비교는 종종 외관에서 시작되는데, 두 구성 모두 특히 4개의 DIN 레일 모듈을 차지할 경우 외부에서 보기에 거의 동일해 보일 수 있기 때문입니다.
그러나 전기적으로는 동일하지 않습니다.
주요 차이점은 다음과 같습니다. 서지 보호 경로.
일반적인 3+1 서지 보호 장치는 상 도체에서 중성선으로 이어지는 세 개의 보호 경로를 사용합니다.
L1 → N
L2 → N
L3 → N
추가 보호 경로 1개:
N → PE
일반적인 4+0 구성은 PE에 직접 연결된 보호 경로를 제공하며, 일반적으로 다음과 같습니다:
L1 → PE
L2 → PE
L3 → PE
N → PE
이러한 차이는 선로, 중성선 및 보호 접지 간의 서지 전압이 제어되는 방식에 영향을 미치므로 3+1과 4+0은 단순히 모듈이나 극 수를 세어 선택해서는 안 됩니다..
올바른 구성은 접지 시스템, 필요한 보호 모드, 설치 지점 및 SPD 제조업체가 명시한 실제 내부 회로에 따라 달라집니다.
빠른 답변: 3+1은 TT 시스템에 일반적으로 사용되며 TN-S 시스템에서도 사용할 수 있습니다. 4+0은 적절한 TN-S 애플리케이션에 일반적으로 사용됩니다. 모든 4극 SPD가 전기적으로 동일하다고 가정하지 말고 항상 배선도와 적용 가능한 설치 요구 사항을 확인하십시오.
| 기능 | 3+1 SPD | 4+0 SPD |
|---|---|---|
| 일반적인 상 보호 경로 | L1-N, L2-N, L3-N | L1-PE, L2-PE, L3-PE |
| 중성선 보호 | 분리된 N-PE 경로 | 4극 구성의 일부로서의 N-PE 경로 |
| 일반적인 내부 설계 | L-N의 MOV + N-PE의 스위칭 소자/GDT | 종종 PE를 기준으로 하는 전압 제한 소자 |
| 직접적인 L-N 보호 | 예 | 전용 L-N 요소일 필요는 없음 |
| 직접적인 L-PE 경로 | 조정된 L-N + N-PE 경로를 통한 방식 | 예 |
| 일반적인 적용 | TT 및 일부 TN-S 계통 | TN-S 계통 |
| 물리적 모듈 | 흔히 4 | 흔히 4 |
| “4P”와 동일한가? | 자동 아님 | 자동 아님 |
| 주요 선정 기준 | 접지 시스템 + 배선도 + 정격 | 접지 시스템 + 배선도 + 정격 |
가장 중요한 점은 다음과 같습니다:
4개의 가시적 모듈만으로는 SPD가 3+1 방식인지 4+0 방식인지 알 수 없습니다.
항상 결선도를 확인하십시오.
3+1과 4+0 SPD 선정의 핵심은 단순히 눈에 보이는 모듈 개수를 세는 것이 아니라 내부 보호 경로를 이해하는 것입니다.
일반적인 3상 4선식에서 3+1 SPD 구성, 3상 도체는 중성선에 대해 보호됩니다.
보호 경로는 다음과 같습니다:
| 보호 요소 | 경로 |
|---|---|
| 요소 1 | L1 → N |
| 요소 2 | L2 → N |
| 요소 3 | L3 → N |
| 추가 요소 | N → PE |

처음 세 개의 보호 소자는 일반적으로 다음과 같은 전압 제한 장치입니다. MOV — 금속 산화물 바리스터.
추가적인 N-PE 보호 소자는 일반적으로 다음과 같습니다. 스파크 갭 또는 가스 방전 기반 스위칭 소자, 제품 설계에 따라 다릅니다.
예를 들어, KUANGYA의 3+1 Type 2 AC SPD L1/L2/L3와 N 사이에 3개의 MOV 보호 경로를 사용하며, N과 PE 사이에는 GDT 보호 경로를 함께 사용합니다.
르그랑(Legrand) 역시 자사의 3P+N / 3+1 구성을 L-N 및 N-PE 보호를 제공하며, 중성극은 밀폐형 스파크 갭으로 보호된다고 설명합니다.
L1 ──[MOV]──┐
이는 간소화된 예시입니다. 실제 내부 회로 및 보호 기술은 반드시 제조사의 데이터시트를 통해 확인해야 합니다.
일반적인 4+0 SPD 보호 접지를 기준으로 4개의 보호 경로를 사용합니다.
일반적인 구성은 다음과 같습니다:
L1 ──[SPD]── PE

이 구성에서는 3상과 중성선 각각이 PE를 향한 보호 경로를 가집니다.
예를 들어, KUANGYA의 VSP1S40 4+0 모델은 TN-S 시스템용으로 설계되었으며 L-PE 및 N-PE 보호 모드를 제공합니다.
DEHN 또한 자사의 4경로 TN-S 모델을 다음과 같이 정의합니다. 4+0 구성, 반면 TT 및 TN-S 시스템을 위한 별도의 3+1 제품도 제공합니다.
하지만 이 부분에서 구매자는 주의가 필요합니다.
제조사마다 다음과 같은 용어를 다르게 사용할 수 있습니다:
4P
3P+N
4+0
3+1
카탈로그 제목에서 약간씩 다른 방식으로 사용됩니다.
따라서
제품명만으로 내부 SPD 토폴로지를 식별하지 마십시오. 회로도를 확인하십시오.
실제 차이점은 모듈의 개수가 아닙니다.
그것은 서지 전압이 제어되는 위치와 서지 전류가 분기되는 위치입니다..

3+1 구성은 다음 사이의 직접적인 보호를 제공합니다:
L1-N
L2-N
L3-N
이어서 다음 사이의 별도 경로를 제공합니다:
N-PE
이는 상(phase)과 중성선(neutral) 사이에 연결된 부하에 대해 직접적인 선간-중성선 보호를 제공합니다.
일반적인 4+0 배열은 활선과 보호 접지(PE) 사이의 직접적인 보호 기능을 제공합니다:
L1-PE
L2-PE
L3-PE
N-PE
The line-to-neutral voltage may also be influenced during a surge through the combined operation of protection elements, but this is not the same topology as providing a dedicated L-N protective element.
This is why two SPDs with:
can still have very different internal circuits.
이해 common-mode and differential-mode surge voltage makes the 3+1 vs 4+0 difference easier to understand.
A differential-mode surge appears between active conductors.
예를 들면 다음과 같습니다:
L-N
L1-L2
L2-L3
For a single-phase load connected between L and N, the L-N voltage is particularly important.
A typical 3+1 topology provides a direct L-N protective path.
A common-mode surge appears between an active conductor and earth.
예를 들면 다음과 같습니다:
L1-PE
L2-PE
L3-PE
N-PE
Lightning-induced transients can create significant common-mode voltage relative to earth.
A typical 4+0 configuration provides direct active-conductor-to-PE paths.
A 3+1 configuration handles the surge through its coordinated L-N and N-PE protection network.
Therefore, when comparing SPDs, asking:
“How many poles does it have?”
is less useful than asking:
“Which protection modes does it provide?”

This is one of the most important differences buyers notice when opening a 3+1 SPD.
The N-PE module may look different from the three L-N modules.
That is not necessarily a manufacturing inconsistency.
It may use a different protection technology because it performs a different electrical function.
In many 3+1 designs:
L-N = MOV
while:
N-PE = GDT or spark-gap-based element
DEHN, for example, offers dedicated N-PE spark-gap arresters intended for 1+1 and 3+1 configurations in TT systems.
KUANGYA’s Type 2 3+1 AC SPD similarly uses MOV protection between the phases and neutral, with a GDT between neutral and PE.
One advantage of a suitable switching N-PE element is that it does not create the same continuous leakage path between N and PE as a permanently voltage-limiting element might.
However, the exact technology, follow-current capability, TOV behavior and ratings remain product-specific.
Never assume that every 3+1 SPD uses exactly the same internal components.
For 3+1 vs 4+0 SPD selection, the earthing system is one of the most important factors to confirm. For a typical IEC-based TT earthing system, a 3+1 configuration is widely used.
In a TT system:
A 3+1 SPD provides:
L1 → N
L2 → N
L3 → N
plus:
N → PE
This topology is commonly used to coordinate surge protection with the TT earthing arrangement.
DEHN’s technical guidance shows the 3+1 circuit for TT systems, and current DEHN products are specifically offered for TT and TN-S installations using this configuration.
It is tempting to remember:
TT = 3+1
That is useful as a starting point, but it is not a complete SPD specification.
You must still check:
TN-S systems have separate:
N — Neutral
및
PE — Protective Earth
conductors.
Both 3+1 and suitable 4+0 products can be found for TN-S applications.
For example, DEHN currently offers:
4+0 products specifically for TN-S
and:
3+1 products for TT and TN-S systems.
KUANGYA follows a similar product distinction: the VSP1S40 4+0 version is specified for TN-S, while the corresponding 3+1 configuration is available for TT and TN-S systems.
Therefore, it is not technically correct to say:
“TN-S always needs 4+0.”
또는:
“3+1 is only for TT.”
Instead, the required protection modes, installation rules and manufacturer-approved configuration should determine the selection.

This is where pole-count mistakes become particularly common.
In a TN-C section of an installation, neutral and protective-earth functions are combined in a single:
PEN conductor
A typical three-phase arrangement therefore uses:
L1-PEN
L2-PEN
L3-PEN
often described as a 3+0 configuration.
There is no separate N conductor and PE conductor at that point, so a separate N-PE protection path would not describe the conductor arrangement correctly.
A TN-C-S installation contains two different sections.
Before the PEN conductor is separated:
TN-C principles apply.
After PEN is separated into:
N + PE
the downstream section behaves as TN-S.
따라서
The correct SPD configuration depends on where the SPD is installed relative to the PEN separation point.
Do not select a 3P or 4P SPD simply because the overall building supply is described as TN-C-S.
Check the actual conductor arrangement at the SPD installation point.
The easiest way to identify a 3+1 vs 4+0 SPD configuration is to check the manufacturer’s wiring diagram rather than count the cartridges.

Look at the wiring diagram.
L1 ── SPD ── N
L2 ── SPD ── N
L3 ── SPD ── N
N ── SPD ── PE
Look for three phase-to-neutral paths plus one neutral-to-earth path.
The N-PE element may also have a different symbol from the L-N elements.
L1 ── SPD ── PE
L2 ── SPD ── PE
L3 ── SPD ── PE
N ── SPD ── PE
Look for four protection paths referenced toward PE.
When requesting a quotation, do not write only:
“Need 4P SPD.”
Instead, provide:
System: 230/400 V AC
Earthing system: TT / TN-S / TN-C / TN-C-S
Required SPD type: Type 1 / Type 2 / Type 1+2
Topology: 3+1 / 4+0 if known
Uc: required value
In / Imax / Iimp: required values
Remote signal: 예 / 아니요
This greatly reduces the chance of receiving a product with the correct number of modules but the wrong internal connection.
Neither topology is universally “better.”
They solve surge-protection paths differently.
A correctly selected 4+0 SPD can be appropriate for a suitable TN-S application.
A correctly selected 3+1 SPD can be appropriate for TT and suitable TN-S applications.
The important question is not:
Which one is stronger?
올바른 질문은 다음과 같습니다.
Which topology matches the electrical network and the protection modes required at this installation point?
Performance must then be evaluated using the actual electrical specifications.
여기에는 다음이 포함됩니다:
| 매개변수 | What to check |
|---|---|
| Uc | 최대 연속 동작 전압 |
| Up | 전압 보호 레벨 |
| In | 공칭 방전 전류 |
| Imax | Maximum discharge current for applicable Type 2 products |
| Iimp | Lightning impulse current for applicable Type 1 products |
| Isccr / short-circuit rating | Compatibility with available fault current |
| Backup protection | Required fuse or circuit breaker |
| TOV performance | Behavior under temporary overvoltage |
| Remote contact | Whether remote monitoring is required |
Do not judge SPD performance simply by the largest kA number on the label.
아니요.
This is an easy naming mistake.
3+1 describes the SPD protection topology.
It does not mean:
Type 3 + Type 1.
If you are unsure about the difference between SPD classifications, see our guide to Type 1, Type 2 and Type 3 SPDs.
SPD classification and topology are separate characteristics.
AC power SPDs are covered by IEC 61643-11, which specifies performance and safety requirements, tests and ratings for surge protective devices connected to AC low-voltage power systems.
For example, a 3+1 SPD may be:
유형 1
유형 2
또는
유형 1+2
depending on its tested performance.
Likewise, a 4+0 product can also be offered in different SPD Types.
따라서
3+1 tells you how the protection paths are arranged. Type 1, Type 2 and Type 1+2 tell you about the SPD’s test classification and surge-current duty.
Not automatically.
Even if both products have:
their protection modes can be different.
Before replacing one topology with another, verify:
The replacement should be based on the complete electrical design, not only mechanical compatibility.
Circuit breakers and SPDs should not be interpreted in exactly the same way.
A four-pole circuit breaker normally refers to conductors passing through switching/protection poles.
An SPD generally works in parallel with the circuit and provides a temporary low-impedance surge path.
So “four-pole SPD” does not automatically tell you everything about:
If you are unfamiliar with this difference, see our guide 왜 SPD는 직렬이 아닌 병렬로 연결됩니까?
The circuit diagram remains more important than the number of visible modules.
Four cartridges do not automatically mean a particular topology.
Check the internal diagram.
A four-module product can use different internal protection arrangements.
“4P” and “3+1” should not be treated as synonyms without checking the manufacturer’s circuit.
3+1 products are widely used for TT, but manufacturers such as DEHN and KUANGYA also specify certain 3+1 products for TN-S systems.
The network arrangement before and after the PEN separation point is different.
Confirm where the SPD will actually be installed.
A 40 kA SPD is not automatically more suitable than a 20 kA product simply because the number is larger.
Topology, SPD Type, Uc, Up, In, Iimp, fault-current conditions and coordination must all be considered.
The SPD’s surge-current rating is not the same thing as the rating of its backup fuse or circuit breaker.
Do not calculate:
Imax 40 kA = 40 A backup fuse.
That is incorrect.
Backup protection must be selected according to the manufacturer requirements and the installation’s overcurrent and prospective short-circuit conditions.
For a detailed explanation, see our guide SPD 백업 퓨즈: 올바른 선정을 위한 7가지 규칙.
SPD selection and installation should also follow applicable requirements such as IEC 60364-5-53 and local electrical regulations.
During a fast surge event, conductor inductance creates additional voltage.
Long or looped connecting wires can therefore increase the effective voltage reaching the protected equipment.
Use the shortest practical routing permitted by the installation design and applicable requirements.
Never create an unauthorized N-PE connection simply to make SPD wiring easier.
This is particularly important in TT and TN-C-S systems.
The neutral, PE and PEN arrangement is part of the earthing system itself.
The SPD manufacturer may specify:
Follow the product data rather than estimating the backup device from In or Imax.
In installations containing RCDs or RCCBs, SPD location and topology can affect the current path during transient or fault conditions.
TT systems require particular attention to the relationship among:
SPD + RCD + N + PE
Follow the applicable installation rules and manufacturer guidance.

Before ordering or approving an AC SPD, confirm the following:
| 확인 | 질문 |
|---|---|
| 시스템 전압 | Is it 230/400 V, 120/208 V or another system? |
| 빈도 | 50 Hz or 60 Hz? |
| 접지 시스템 | TT, TN-S, TN-C, TN-C-S or IT? |
| Installation point | Before or after the PEN split? |
| 중립 | Is N distributed at the SPD location? |
| PE/PEN | Is the protective conductor PE or PEN? |
| 토폴로지 | 3+0, 4+0, 3+1 or another configuration? |
| 보호 모드 | L-N, L-PE, N-PE and/or L-L? |
| SPD 유형 | Type 1, Type 2 or Type 1+2? |
| Uc | Is the maximum continuous voltage suitable? |
| Up | Is the protection level suitable for downstream equipment? |
| In / 아이맥스 | Are the Type 2 discharge ratings suitable? |
| Iimp | If Type 1 is required, is Iimp specified? |
| Short-circuit rating | Is the SPD compatible with available fault current? |
| Backup device | Is the required fuse/MCB confirmed? |
| TOV | Is temporary-overvoltage behavior specified? |
| Remote signal | Is remote monitoring required? |
| Wiring diagram | Has the actual manufacturer circuit been checked? |
A buyer who completes this checklist is much less likely to purchase the wrong SPD simply because two products look similar.
Consider two Type 2 AC SPDs.
Internal paths:
L1-N
L2-N
L3-N
N-PE
Internal paths:
L1-PE
L2-PE
L3-PE
N-PE
From the front, these two devices may appear very similar.
Their surge-current ratings may even be identical.
But their protection topology is different.
That is why:
Same voltage + same kA + same number of modules does not mean the SPDs are electrically interchangeable.
KUANGYA offers a range of AC 서지 보호 장치 for different low-voltage distribution systems.
For example, the VSP1S40 Type 2 series includes:
| 구성 | Typical network application | Protection arrangement |
|---|---|---|
| 3+0 | TN-C | L-PEN |
| 4+0 | TN-S | L-PE / N-PE |
| 1+1 | TT / TN-S single phase | L-N + N-PE |
| 3+1 | TT / TN-S three phase | L1/L2/L3-N + N-PE |
The 3+1 design uses high-energy MOV elements for the L-N paths together with a GDT in the N-PE path, while the 4+0 version uses a different protection arrangement suited to its declared network application.
When requesting a model, provide the actual:
network voltage + earthing system + SPD Type + required surge ratings + remote contact requirement
rather than ordering only by the number of poles.
Physically, a 3+1 SPD may use four positions or modules, but “3+1” describes the protection topology rather than merely the mechanical pole count.
Check the product wiring diagram.
Not universally.
The correct choice depends on the earthing system, required protection modes, installation rules and product design.
A correctly selected 4+0 device can be suitable for TN-S applications, while 3+1 is widely used in TT and also in suitable TN-S systems.
In many 3+1 designs, the three phase-to-neutral protection elements use MOV technology, while the N-PE path uses a GDT or spark gap.
The fourth module therefore performs a different electrical function.
Potentially, yes.
Manufacturers including DEHN and KUANGYA offer 3+1 products declared for TT and TN-S applications. Final selection should still follow the product datasheet and applicable installation requirements.
Do not assume that a generic 4+0 product is suitable.
TT systems require careful consideration of the protection arrangement, N-PE path, RCD location and applicable installation requirements.
Use an SPD specifically declared by the manufacturer for the intended TT configuration.
아니요.
3+1 is a connection topology.
Type 1, Type 2 and Type 3 are SPD classifications associated with different test and application requirements.
They are separate concepts.
아니요.
Manufacturers may use terms such as 4P, 3P+N, 3+1 and 4+0 differently in short product descriptions.
Always verify the internal wiring diagram and declared protection modes.
Start with the earthing system and actual conductor arrangement at the installation point.
Then check:
protection topology → SPD Type → Uc → Up → surge-current ratings → short-circuit conditions → backup protection → installation requirements.
Do not start with the largest kA value.
The most important point in a 3+1 vs 4+0 SPD comparison is that the difference is not simply the number of modules.
A typical 3+1 SPD provides three phase-to-neutral protection paths plus a separate neutral-to-earth path:
L1-N + L2-N + L3-N + N-PE
A typical 4+0 SPD instead provides four protection paths referenced toward PE:
L1-PE + L2-PE + L3-PE + N-PE
3+1 is widely used in TT systems and can also be used in suitable TN-S applications. 4+0 is commonly available for TN-S systems.
However, the earthing system alone is not the complete specification.
Before selecting an SPD, verify the actual wiring diagram, protection modes, Uc, Up, In, Imax or Iimp, short-circuit conditions, backup protection and manufacturer installation requirements.
The most useful rule is simple:
Do not choose an SPD by counting modules. Choose it by checking the network, protection paths and electrical ratings.
Technical references used to verify the concepts in this guide include:
IEC/EN 61643-11 — Low-voltage surge protective devices for AC power systems.
IEC 60364-5-53 — Selection and erection of electrical equipment, including SPD connection and application principles.
DEHN — Technical documentation for 3+1 TT/TN-S and 4+0 TN-S surge arrester configurations.
Legrand — Technical documentation identifying 3P+N / 3+1 L-N and N-PE protection modes.
쿠앙야 — VSP1S40 Type 2 AC SPD technical data and internal connection configurations.